CA2524399C - Optimized fc variants and methods for their generation - Google Patents

Optimized fc variants and methods for their generation Download PDF

Info

Publication number
CA2524399C
CA2524399C CA2524399A CA2524399A CA2524399C CA 2524399 C CA2524399 C CA 2524399C CA 2524399 A CA2524399 A CA 2524399A CA 2524399 A CA2524399 A CA 2524399A CA 2524399 C CA2524399 C CA 2524399C
Authority
CA
Canada
Prior art keywords
antibody
variants
protein
polypeptide
antibodies
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
CA2524399A
Other languages
French (fr)
Other versions
CA2524399A1 (en
Inventor
Gregory Alan Lazar
Arthur J. Chirino
Wei Dang
John Rudolph Desjarlais
Stephen Kohl Doberstein
Robert J. Hayes
Sher Bahadur Karki
Omid Vafa
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Xencor Inc
Original Assignee
Xencor Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Family has litigation
First worldwide family litigation filed litigation Critical https://patents.darts-ip.com/?family=33437072&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=CA2524399(C) "Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Application filed by Xencor Inc filed Critical Xencor Inc
Priority to CA2766627A priority Critical patent/CA2766627C/en
Publication of CA2524399A1 publication Critical patent/CA2524399A1/en
Application granted granted Critical
Publication of CA2524399C publication Critical patent/CA2524399C/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/28Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
    • C07K16/2803Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily
    • C07K16/283Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily against Fc-receptors, e.g. CD16, CD32, CD64
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P9/00Drugs for disorders of the cardiovascular system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K39/00Medicinal preparations containing antigens or antibodies
    • A61K39/395Antibodies; Immunoglobulins; Immune serum, e.g. antilymphocytic serum
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K39/00Medicinal preparations containing antigens or antibodies
    • A61K39/395Antibodies; Immunoglobulins; Immune serum, e.g. antilymphocytic serum
    • A61K39/39533Antibodies; Immunoglobulins; Immune serum, e.g. antilymphocytic serum against materials from animals
    • A61K39/3955Antibodies; Immunoglobulins; Immune serum, e.g. antilymphocytic serum against materials from animals against proteinaceous materials, e.g. enzymes, hormones, lymphokines
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K39/00Medicinal preparations containing antigens or antibodies
    • A61K39/395Antibodies; Immunoglobulins; Immune serum, e.g. antilymphocytic serum
    • A61K39/39533Antibodies; Immunoglobulins; Immune serum, e.g. antilymphocytic serum against materials from animals
    • A61K39/39566Antibodies; Immunoglobulins; Immune serum, e.g. antilymphocytic serum against materials from animals against immunoglobulins, e.g. anti-idiotypic antibodies
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P25/00Drugs for disorders of the nervous system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P29/00Non-central analgesic, antipyretic or antiinflammatory agents, e.g. antirheumatic agents; Non-steroidal antiinflammatory drugs [NSAID]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • A61P37/04Immunostimulants
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/22Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against growth factors ; against growth regulators
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/24Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against cytokines, lymphokines or interferons
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/28Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
    • C07K16/2863Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against receptors for growth factors, growth regulators
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/28Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
    • C07K16/2875Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the NGF/TNF superfamily, e.g. CD70, CD95L, CD153, CD154
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/28Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
    • C07K16/2887Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against CD20
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/28Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
    • C07K16/2893Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against CD52
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/28Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
    • C07K16/2896Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against molecules with a "CD"-designation, not provided for elsewhere
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/32Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against translation products of oncogenes
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/42Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against immunoglobulins
    • C07K16/4283Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against immunoglobulins against an allotypic or isotypic determinant on Ig
    • C07K16/4291Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against immunoglobulins against an allotypic or isotypic determinant on Ig against IgE
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12PFERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
    • C12P21/00Preparation of peptides or proteins
    • C12P21/005Glycopeptides, glycoproteins
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16BBIOINFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR GENETIC OR PROTEIN-RELATED DATA PROCESSING IN COMPUTATIONAL MOLECULAR BIOLOGY
    • G16B15/00ICT specially adapted for analysing two-dimensional or three-dimensional molecular structures, e.g. structural or functional relations or structure alignment
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16BBIOINFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR GENETIC OR PROTEIN-RELATED DATA PROCESSING IN COMPUTATIONAL MOLECULAR BIOLOGY
    • G16B30/00ICT specially adapted for sequence analysis involving nucleotides or amino acids
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16BBIOINFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR GENETIC OR PROTEIN-RELATED DATA PROCESSING IN COMPUTATIONAL MOLECULAR BIOLOGY
    • G16B30/00ICT specially adapted for sequence analysis involving nucleotides or amino acids
    • G16B30/10Sequence alignment; Homology search
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16BBIOINFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR GENETIC OR PROTEIN-RELATED DATA PROCESSING IN COMPUTATIONAL MOLECULAR BIOLOGY
    • G16B35/00ICT specially adapted for in silico combinatorial libraries of nucleic acids, proteins or peptides
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16BBIOINFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR GENETIC OR PROTEIN-RELATED DATA PROCESSING IN COMPUTATIONAL MOLECULAR BIOLOGY
    • G16B5/00ICT specially adapted for modelling or simulations in systems biology, e.g. gene-regulatory networks, protein interaction networks or metabolic networks
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16CCOMPUTATIONAL CHEMISTRY; CHEMOINFORMATICS; COMPUTATIONAL MATERIALS SCIENCE
    • G16C20/00Chemoinformatics, i.e. ICT specially adapted for the handling of physicochemical or structural data of chemical particles, elements, compounds or mixtures
    • G16C20/60In silico combinatorial chemistry
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K39/00Medicinal preparations containing antigens or antibodies
    • A61K2039/505Medicinal preparations containing antigens or antibodies comprising antibodies
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/10Immunoglobulins specific features characterized by their source of isolation or production
    • C07K2317/14Specific host cells or culture conditions, e.g. components, pH or temperature
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/20Immunoglobulins specific features characterized by taxonomic origin
    • C07K2317/21Immunoglobulins specific features characterized by taxonomic origin from primates, e.g. man
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/20Immunoglobulins specific features characterized by taxonomic origin
    • C07K2317/24Immunoglobulins specific features characterized by taxonomic origin containing regions, domains or residues from different species, e.g. chimeric, humanized or veneered
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/30Immunoglobulins specific features characterized by aspects of specificity or valency
    • C07K2317/33Crossreactivity, e.g. for species or epitope, or lack of said crossreactivity
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/30Immunoglobulins specific features characterized by aspects of specificity or valency
    • C07K2317/34Identification of a linear epitope shorter than 20 amino acid residues or of a conformational epitope defined by amino acid residues
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/40Immunoglobulins specific features characterized by post-translational modification
    • C07K2317/41Glycosylation, sialylation, or fucosylation
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/51Complete heavy chain or Fd fragment, i.e. VH + CH1
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/52Constant or Fc region; Isotype
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/52Constant or Fc region; Isotype
    • C07K2317/522CH1 domain
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/52Constant or Fc region; Isotype
    • C07K2317/524CH2 domain
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/52Constant or Fc region; Isotype
    • C07K2317/526CH3 domain
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/56Immunoglobulins specific features characterized by immunoglobulin fragments variable (Fv) region, i.e. VH and/or VL
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/71Decreased effector function due to an Fc-modification
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/72Increased effector function due to an Fc-modification
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/73Inducing cell death, e.g. apoptosis, necrosis or inhibition of cell proliferation
    • C07K2317/732Antibody-dependent cellular cytotoxicity [ADCC]
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/73Inducing cell death, e.g. apoptosis, necrosis or inhibition of cell proliferation
    • C07K2317/734Complement-dependent cytotoxicity [CDC]
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/76Antagonist effect on antigen, e.g. neutralization or inhibition of binding
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/77Internalization into the cell
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/90Immunoglobulins specific features characterized by (pharmaco)kinetic aspects or by stability of the immunoglobulin
    • C07K2317/92Affinity (KD), association rate (Ka), dissociation rate (Kd) or EC50 value
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2319/00Fusion polypeptide
    • C07K2319/30Non-immunoglobulin-derived peptide or protein having an immunoglobulin constant or Fc region, or a fragment thereof, attached thereto
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16BBIOINFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR GENETIC OR PROTEIN-RELATED DATA PROCESSING IN COMPUTATIONAL MOLECULAR BIOLOGY
    • G16B15/00ICT specially adapted for analysing two-dimensional or three-dimensional molecular structures, e.g. structural or functional relations or structure alignment
    • G16B15/20Protein or domain folding

Abstract

The present invention relates to optimized Fc variants, methods for their generation, and antibodies and Fc fusions comprising optimized Fc variants.

Description

DEMANDES OU BREVETS VOLUMINEUX
LA PRESENTE PARTIE DE CETTE DEMANDE OU CE BREVETS
COMPREND PLUS D'UN TOME.
CECI EST LE TOME DE _2 NOTE: Pour les tomes additionels, veillez contacter le Bureau Canadien des Brevets.

JUMBO APPLICATIONS / PATENTS

THIS SECTION OF THE APPLICATION / PATENT CONTAINS MORE
THAN ONE VOLUME.

NOTE: For additional volumes please contact the Canadian Patent Office.

52620-2(S) OPTIMIZED Fc VARIANTS-AND METHODS FOR THEIR GENERATION
FIELD OF THE INVENTION
[002] The present invention relates to novel optimized Fc variants, engineering methods for their generation, and their application, particularly for therapeutic purposes.

BACKGROUND OF THE INVENTION
[003] Antibodies are immunological proteins that bind a specific antigen. In most mammals, Including humans and mice, antibodies are constructed from paired heavy and light polypeptide chains. Each chain is made up of individual immunoglobulin (Ig) domains, and thus the generic term immunoglobulin is used for such proteins. Each chain is made up of two distinct regions, referred to as the variable and constant regions. The light and heavy chain variable regions show significant sequence diversity between antibodies, and are responsible for binding the target antigen. The constant regions show less sequence diversity, and are responsible for binding a number of natural proteins to elicit important biochemical events. In humans there are five different classes of antibodies including IgA (which Includes subclasses IgA1 and IgA2), IgD, IgE, IgG (which includes subclasses IgG1, IgG2, IgG3, and IgG4), and lgM. The distinguishing features between these antibody classes are their constant regions, although subtler differences may exist in the V region.
Figure 1 shows an IgG1 antibody, used here as an example to describe the general structural features of immunoglobulins. IgG antibodies are tetrameric proteins composed of two heavy chains and two light chains. The IgG heavy chain is composed of four immunoglobulin domains linked from N- to C-terminus in the order VH-Cy1-Cy2-Cy3, referring to the heavy chain variable domain, constant gamma I domain, constant gamma 2 domain, and constant gamma 3 domain respectively. The IgG
light chain is composed of two immunoglobulin domains linked from N- to C-terminus In the order V1-CL, referring to the light chain variable domain and the light chain constant domain respectively.
[004] The variable region of an antibody contains the antigen binding determinants of the molecule, and thus determines the specificity of an antibody for its target antigen. The variable region is so named because it is the most distinct in sequence from other antibodies within the same class. The majority of sequence variability occurs in the complementarity determining regions (CDRs). Thdre are 6 CDRs total, three each per heavy and light chain, designated VH CDR1, VH
CDR2, VH CDR3, VL
CDRI, VL CDR2, and V1 CDR3. The variable region outside of the CDRs is referred to as the framework (FR) region. Although not as diverse as the CDRs, sequence variability does occur in the FR region between different antibodies. Overall, this, characteristic architecture of antibodies provides I

a stable scaffold (the FR region) upon which substantial antigen binding diversity (the CDRs) can be explored by the immune system to obtain specificity for a broad array of antigens. A number of high-resolution structures are available for a variety of variable region fragments from different organisms, some unbound and some in complex with antigen. The sequence and structural features of antibody variable regions are well characterized (Morea et al., 1997, Biophys Chem 68:9-16; Morea et al., 2000, Methods 20:267-279), and the conserved features of antibodies have enabled the development of a wealth of antibody engineering techniques (Maynard et al., 2000, Annu Rev Biomed Eng 2:339-376). For example, it is possible to graft the CDRs from one antibody, for example a murine antibody, onto the framework region of another antibody, for example a human antibody.
This process, referred to in the art as "humanization", enables generation of less immunogenic antibody therapeutics from nonhuman antibodies. Fragments comprising the variable region can exist in the absence of other regions of the antibody, including for example the antigen binding fragment (Fab) comprising VH-Cy1 and VH-CL, the variable fragment (Fv) comprising VH and VL, the single chain variable fragment (scFv) comprising VH and VL linked together in the same chain, as well as a variety of other variable region fragments (Little et aL, 2000, Immunol Today 21:364-370).
[005] The Fc region of an antibody interacts with a number of Fc receptors and ligands, imparting an array of important functional capabilities referred to as effector functions. For IgG the Fe region, as shown in Figure 1, comprises Ig domains Cy2 and Cy3 and the N-terminal hinge leading into Cy2. An important family of Fe receptors for the IgG class are the Fc gamma receptors (FcyRs). These receptors mediate communication between antibodies and the cellular arm of the immune system (Raghavan et al., 1996, Annu Rev Cell Dev Biol 12:181-220; Ravetch et al., 2001, Annu Rev Immunol 19:275-290). In humans this protein family includes FcyRl (CD64), including isoforms FcyRla, FcyRlb, and FcyRIc; FcyRll (CD32), including isoforms FcyRIla (including allotypes H131 and R131), FcyRIIb (including FcyRIIb-1 and FcyRllb-2), and FcyRIIc; and FcyRIII (CD16), including isoforms FcyRllla (including allotypes V158 and F158) and FcyRlllb (including allotypes FcyRIIIb-NA1 and FcyRlllb-NA2) (Jefferis et al., 2002, Immunol Lett 82:57-65). These receptors typically have an extracellular domain that mediates binding to Fc, a membrane spanning region, and an intracellular domain that may mediate some signaling event within the cell. These receptors are expressed in a variety of immune cells including monocytes, macrophages, neutrophils, dendritic cells, eosinophils, mast cells, platelets, B cells, large granular lymphocytes, Langerhans' cells, natural killer (NK) cells, and yy T
cells. Formation of the Fc/FcyR complex recruits these effector cells to sites of bound antigen, typically resulting in signaling events within the cells and important subsequent immune responses such as release of inflammation mediators, B cell activation, endocytosis, phagocytosis, and cytotoxic attack. The ability to mediate cytotoxic and phagocytic effector functions is a potential mechanism by which antibodies destroy targeted cells. The cell-mediated reaction wherein nonspecific cytotoxic cells that express FcyRs recognize bound antibody on a target cell and subsequently cause lysis of the target cell is referred to as antibody dependent cell-mediated cytotoxicity (ADCC) (Raghavan et al., 1996, Annu Rev Cell Dev Biol 12:181-220; Ghetie et al., 2000, Annu Rev Immunol 18:739-766;
Ravetch et aL, 2001, Annu Rev Immunol 19:275-290). The cell-mediated reaction wherein nonspecific cytotoxic cells that express FcyRs recognize bound antibody on a target cell and subsequently cause phagocytosis of the target cell is referred to as antibody dependent cell-mediated phagocytosis (ADCP). A number of structures have been solved of the extracellular domains of human FcyRs, including FcyRl Ia (pdb accession code 1 H9V)(Sondermann et al., 2001, J Mol Biol 309:737-749) (pdb accession code I FCG)(Maxwell et al., 1999, Nat Struct Biol 6:437-442), FcyRllb (pdb accession code 2FCB)(Sondermann et al., 1999, Embo J 18:1095-1103); and FcyRlllb (pdb accession code 1 E4J)(Sondermann et al., 2000, Nature 406:267-273.). All FcyRs bind the same region on Fc, at the N-terminal end of the Cy2 domain and the preceding hinge, shown in Figure 2.
This interaction is well characterized structurally (Sondermann et al., 2001, J Mol Biol 309:737-749), and several structures of the human Fc bound to the extracellular domain of human FcyRlllb have been solved (pdb accession code 1 E4K)(Sondermann et a1., 2000, Nature 406:267-273.) (pdb accession codes 1 IIS and 1 IIX)(Radaev et al., 2001, J Biol Chem 276:16469-16477), as well as has the structure of the human IgE Fc/FccRlcc complex (pdb accession code I
F6A)(Garman et aL, 2000, Nature 406:259-266).

[006] The different IgG subclasses have different affinities for the FcyRs, with IgGI and IgG3 typically binding substantially better to the receptors than IgG2 and IgG4 (Jefferis et al., 2002, /mmunol Lett 82:57-65). All FcyRs bind the same region on IgG Fc, yet with different affinities: the high affinity binder FcyRI has a Kd for IgGI of 10-8 M"1, whereas the low affinity receptors FcyRll and FcyRlll generally bind at 10-8 and 10-5 respectively. The extracellular domains of FcyRllla and FcyRlllb are 96% identical, however FcyRlllb does not have a intracellular signaling domain.
Furthermore, whereas FcyRl, FcyRlla/c, and FcyRllla are positive regulators of immune complex-triggered activation, characterized by having an intracellular domain that has an immunoreceptor tyrosine-based activation motif (ITAM), FcyRllb has an immunoreceptor tyrosine-based inhibition motif (ITIM) and is therefore inhibitory. Thus the former are referred to as activation receptors, and FcyRllb is referred to as an inhibitory receptor. The receptors also differ in expression pattern and levels on different immune cells. Yet another level of complexity is the existence of a number of Fc'R
polymorphisms in the human proteome. A particularly relevant polymorphism with clinical significance is VI58/F158 FcyRllla. Human IgG1 binds with greater affinity to the VI 58 allotype than to the F158 allotype. This difference in affinity, and presumably its effect on ADCC
and/or ADCP, has been shown to be a significant determinant of the efficacy of the anti-CD20 antibody rituximab (Rituxan , a registered trademark of IDEC Pharmaceuticals Corporation). Patients with the V158 allotype respond favorably to rituximab treatment; however, patients with the lower affinity F158 allotype respond poorly (Cartron et al., 2002, Blood 99:754-758). Approximately 10-20% of humans are homozygous, 45% are VI58/F158 heterozygous, and 35-45% of humans are F1 58/17158 homozygous (Lehrnbecher et al., 1999, Blood 94:4220-4232; Cartron at al., 2002, Blood 99:754-758). Thus 80-90% of humans are poor responders, that is they have at least one allele of the F158 FcyRllla.
[007] An overlapping but separate site on Fc, shown in Figure 1, serves as the interface for the complement protein C1q. In the same way that Fc/FcyR binding mediates ADCC, Fc/Clq binding mediates complement dependent cytotoxicity (CDC). C1 q forms a complex with the serine proteases C1 r and C1 s to form the C1 complex. C1 q is capable of binding six antibodies, although binding to two IgGs is sufficient to activate the complement cascade. Similar to Fc interaction with FcyRs, different IgG subclasses have different affinity for C1 q, with IgG1 and IgG3 typically binding substantially better to the FcyRs than IgG2 and IgG4 (Jefferis et al., 2002, Immunol Lett 82:57-65).
There is currently no structure available for the Fc/Cl q complex; however, mutagenesis studies have mapped the binding site on human IgG for Clq to a region involving residues D270, K322, K326, P329, and P331, and E333 (Idusogie et al., 2000, J Immunol 164:4178-4184;
Idusogie et al., 2001, J
Immunol 166:2571-2575).
[008] A site on Fc between the Cy2 and Cy3 domains, shown in Figure 1, mediates interaction with the neonatal receptor FcRn, the binding of which recycles endocytosed antibody from the endosome back to the bloodstream (Raghavan et al., 1996, Annu Rev Cell Dev Biol 12:181-220; Ghetie at al., 2000, Annu Rev Immunol 18:739-766). This process, coupled with preclusion of kidney filtration due to the large size of the full length molecule, results in favorable antibody serum half-lives ranging from one to three weeks. Binding of Fc to FcRn also plays a key role in antibody transport. The binding site for FcRn on Fc is also the site at which the bacterial proteins A and G
bind. The tight binding by these proteins is typically exploited as a means to purify antibodies by employing protein A or protein G affinity chromatography during protein purification. Thus the fidelity of this region on Fc is important for both the clinical properties of antibodies and their purification.
Available structures of the rat Fc/FcRn complex (Martin et al., 2001, Mol Cell 7:867-877), and of the complexes of Fc with proteins A
and G (Deisenhofer, 1981, Biochemistry 20:2361-2370; Sauer-Eriksson et al., 1995, Structure 3:265-278; Tashiro et al., 1995, Curr Opin Struct Biol 5:471-481) provide insight into the interaction of Fc with these proteins.
[009] A key feature of the Fc region is the conserved N-linked glycosylation that occurs at N297, shown in Figure 1. This carbohydrate, or oligosaccharide as it is sometimes referred, plays a critical structural and functional role for the antibody, and is one of the principle reasons that antibodies must be produced using mammalian expression systems. While not wanting to be limited to one theory, it is believed that the structural purpose of this carbohydrate may be to stabilize or solubilize Fc, determine a specific angle or level of flexibility between the Cy3 and Cy2 domains, keep the two Cy2 domains from aggregating with one another across the central axis, or a combination of these.
Efficient Fc binding to FcyR and Clq requires this modification, and alterations in the composition of the N297 carbohydrate or its elimination affect binding to these proteins (Umana at al., 1999, Nat Biotechnol 17:176-180; Davies et al., 2001, Biotechnol Bioeng 74:288-294;
Mimura et al., 2001, J Biol Chem 276:45539-45547.; Radaev at al., 2001, J Biol Chem 276:16478-16483;
Shields at a/., 2001, J
Biol Chem 276:6591-6604; Shields et al., 2002, J Biol Chem 277:26733-26740;
Simmons et aL, 2002, J Immuno! Methods 263:133-147). Yet the carbohydrate makes little if any specific contact with FcyRs (Radaev et aL, 2001, J Biol Chem 276:16469-16477), indicating that the functional role of the N297 carbohydrate in mediating Fc/FcyR binding may be via the structural role it plays in determining the Fc conformation. This is supported by a collection of crystal structures of four different Fc glycoforms, which show that the composition of the oligosaccharide impacts the conformation of Cy2 and as a result the Fc/FcyR interface (Krapp at al., 2003, J Mol Biol 325:979-989).
[010] The features of antibodies discussed above - specificity for target, ability to mediate immune effector mechanisms, and long half-life in serum - make antibodies powerful therapeutics. Monoclonal antibodies are used therapeutically for the treatment of a variety of conditions including cancer, inflammation, and cardiovascular disease. There are currently over ten antibody products on the market and hundreds in development. In addition to antibodies, an antibody-like protein that is finding an expanding role in research and therapy is the Fc fusion (Chamow et al., 1996, Trends Biotechnol 14:52-60; Ashkenazi at aL, 1997, Curr Opin lmmunol 9:195-200). An Fc fusion is a protein wherein one or more polypeptides is operably linked to Fc. An Fc fusion combines the Fc region of an antibody, and thus its favorable effector functions and pharmacokinetics, with the target-binding region of a receptor, ligand, or some other protein or protein domain. The role of the latter is to mediate target recognition, and thus it is functionally analogous to the antibody variable region.
Because of the structural and functional overlap of Fc fusions with antibodies, the discussion on antibodies in the present invention extends directly to Fc fusions.
[011] Despite such widespread use, antibodies are not optimized for clinical use. Two significant deficiencies of antibodies are their suboptimal anticancer potency and their demanding production requirements. These deficiencies are addressed by the present invention [012] There area number of possible mechanisms by which antibodies destroy tumor cells, including anti-proliferation via blockage of needed growth pathways, intracellular signaling leading to apoptosis, enhanced down regulation and/or turnover of receptors, CDC, ADCC, ADCP, and promotion of an adaptive immune response (Cragg at aL, 1999, Curr Opin lmmunol 11:541-547;
Glennie et a/., 2000, Immuno! Today 21:403-410). Anti-tumor efficacy may be due to a combination of these mechanisms, and their relative importance in clinical therapy appears to be cancer dependent.
Despite this arsenal of anti-tumor weapons, the potency of antibodies as anti-cancer agents is unsatisfactory, particularly given their high cost. Patient tumor response data show that monoclonal antibodies provide only a small improvement in therapeutic success over normal single-agent cytotoxic chemotherapeutics. For example, just half of all relapsed low-grade non-Hodgkin's lymphoma patients respond to the anti-CD20 antibody rituximab (McLaughlin at al., 1998, J Clin Oncol 16:2825-2833). Of 166 clinical patients, 6% showed a complete response and 42%
showed a partial response, with median response duration of approximately 12 months.
Trastuzumab (Herceptin , a registered trademark of Genentech), an anti-HER2/neu antibody for treatment of metastatic breast cancer, has less efficacy. The overall response rate using trastuzumab for the 222 patients tested was only 15%, with 8 complete and 26 partial responses and a median response duration and survival of 9 to 13 months (Cobleigh et al., 1999, J Clin Oncol 17:2639-2648).
Currently for anticancer therapy, any small improvement in mortality rate defines success. Thus there is a significant need to enhance the capacity of antibodies to destroy targeted cancer cells.
[013] A promising means for enhancing the anti-tumor potency of antibodies is via enhancement of their ability to mediate cytotoxic effector functions such as ADCC, ADCP, and CDC. The importance of FcyR-mediated effector functions for the anti-cancer activity of antibodies has been demonstrated in mice (Clynes et aL, 1998, Proc Natl Acad Sci U S A 95:652-656; Clynes et al., 2000, Nat Med 6:443-446), and the affinity of interaction between Fc and certain FcyRs correlates with targeted cytotoxicity in cell-based assays (Shields at aL, 2001, J Biol Chem 276:6591-6604; Presta et al., 2002, Biochem Soc Trans 30:487-490; Shields at aL, 2002, J Biol Chem 277:26733-26740).
Additionally, a correlation has been observed between clinical efficacy in humans and their allotype of high (V158) or low (F158) affinity polymorphic forms of FcyRllla (Cartron at al., 2002, Blood 99:754-758). Together these data suggest that an antibody with an Fc region optimized for binding to certain FcyRs may better mediate effector functions and thereby destroy cancer cells more effectively in patients. The balance between activating and inhibiting receptors is an important consideration, and optimal effector function may result from an Fc with enhanced affinity for activation receptors, for example FcyRI, FcyRlla/c, and FcyRIIIa, yet reduced affinity for the inhibitory receptor FcyRIIb.
Furthermore, because FcyRs can mediate antigen uptake and processing by antigen presenting cells, enhanced Fc/FcyR affinity may also improve the capacity of antibody therapeutics to elicit an adaptive immune response.
[014] Mutagenesis studies have been carried out on Fc towards various goals, with substitutions typically made to alanine (referred to as alanine scanning) or guided by sequence homology substitutions (Duncan et al., 1988, Nature 332:563-564; Lund at aL, 1991, J
Immunol 147:2657-2662;
Lund et al., 1992, Mol Immunol 29:53-59; Jefferis et al., 1995, Immunol Lett 44:111-117; Lund at aL, 1995, Faseb J 9:115-119; Jefferis et aL, 1996, Immunol Lett 54:101-104; Lund et al., 1996, J Immunol 157:4963-4969; Armour at al., 1999, Eur J Immunol 29:2613-2624; Shields at aL, 2001, J Biol Chem 276:6591-6604; Jefferis et al., 2002, Immunol Lett 82:57-65) (US 5,624,821; US
5,885,573; PCT WO
00/42072; PCT WO 99/58572). The majority of substitutions reduce or ablate binding with FcyRs.
However some success has been achieved at obtaining Fc variants with higher Fc'R affinity. (See for example US 5,624,821, and PCT WO 00/42072). For example, Winter and colleagues substituted the human amino acid at position 235 of mouse IgG2b antibody (a glutamic acid to leucine mutation) that increased binding of the mouse antibody to human FcyRl byl 00-fold (Duncan et al., 1988, Nature 332:563-564) (US 5,624,821). Shields at al. used alanine scanning mutagenesis to map Fe residues important to FcyR binding, followed by substitution of select residues with non-alanine mutations (Shields et al., 2001, J Biol Chem 276:6591-6604; Presta et al., 2002, Biochem Soc Trans 30:487-490) (PCT WO 00/42072). Several mutations disclosed in this study, including S298A, E333A, and K334A, show enhanced binding to the activating receptor FcyRllla and reduced binding to the inhibitory receptor FcyRllb. These mutations were combined to obtain double and triple mutation variants that show additive improvements in binding. The best variant disclosed in this study is a S298A/E333A/K334A triple mutant with approximately a 1.7-fold increase in binding to F158 FcyRlIla, a 5-fold decrease in binding to FcyRllb, and a 2.1-fold enhancement in ADCC.
[015] Enhanced affinity of Fc for FcyR has also been achieved using engineered glycoforms generated by expression of antibodies in engineered or variant cell lines (Umana et aL, 1999, Nat Biotechnol 17:176-180; Davies at al., 2001, Biotechnol Bioeng 74:288-294;
Shields et al., 2002, J Biol Chem 277:26733-26740; Shinkawa et al., 2003, J Biol Chem 278:3466-3473). This approach has generated substantial enhancements of the capacity of antibodies to bind FcyRIIIa and to mediate ADCC. Although there are practical limitations such as the growth efficiency of the expression strains under large scale production conditions, this approach for enhancing Fc/FcyR
affinity and effector function is promising. Indeed, coupling of these alternate glycoform technologies with the Fc variants of the present invention may provide additive or synergistic effects for optimal effector function.
[016] Although there is a need for greater effector function, for some antibody therapeutics reduced or eliminated effector function may be desired. This is often the case for therapeutic antibodies whose mechanism of action involves blocking or antagonism but not killing of the cells bearing target antigen. In these cases depletion of target cells is undesirable and can be considered a side effect.
For example, the ability of anti-CD4 antibodies to block CD4 receptors on T
cells makes them effective anti-inflammatories, yet their ability to recruit FcyR receptors also directs immune attack against the target cells, resulting in T cell depletion (Reddy et al., 2000, J
Immunol 164:1925-1933).
Effector function can also be a problem for radiolabeled antibodies, referred to as radioconjugates, and antibodies conjugated to toxins, referred to as immunotoxins. These drugs can be used to destroy cancer cells, but the recruitment of immune cells via Fe interaction with FcyRs brings healthy immune cells in proximity to the deadly payload (radiation or toxin), resulting in depletion of normal lymphoid tissue along with targeted cancer cells (Hutchins at al., 1995, Proc Natl Acad Sc! U S A
92:11980-11984; White et al., 2001, Annu Rev Med 52:125-145). This problem can potentially be circumvented by using IgG isotypes that poorly recruit complement or effector cells, for example IgG2 and IgG4. An alternate solution is to develop Fc variants that reduce or ablate binding (Alegre et al., 1994, Transplantation 57:1537-1543; Hutchins at al., 1995, Proc Natl Acad Sci U S A 92:11980-11984; Armour at al., 1999, Eur J Immunol 29:2613-2624; Reddy et al., 2000, J
Immunol 164:1925-1933; Xu et al., 2000, Cell Immunol 200:16-26; Shields et al., 2001, J Biol Chem 276:6591-6604) (US
6,194,551; US 5,885,573; PCT WO 99/58572). A critical consideration for the reduction or elimination of effector function is that other important antibody properties not be perturbed. Fc variants should be engineered that not only ablate binding to FcyRs and/or C1q, but also maintain antibody stability, solubility, and structural integrity, as well as ability to interact with other important Fc ligands such as FcRn and proteins A and G.
[017] The present invention addresses another major shortcoming of antibodies, namely their demanding production requirements (Garber, 2001, Nat Biotechnol 19:184-185;
Dove, 2002, Nat Biotechnol20:777-779). Antibodies must be expressed in mammalian cells, and the currently marketed antibodies together with other high-demand biotherapeutics consume essentially all of the available manufacturing capacity. With hundreds of biologics in development, the majority of which are antibodies, there is an urgent need for more efficient and cheaper methods of production. The downstream effects of insufficient antibody manufacturing capacity are three-fold. First, it dramatically raises the cost of goods to the producer, a cost that is passed on to the patient. Second, it hinders industrial production of approved antibody products, limiting availability of high demand therapeutics to patients. Finally, because clinical trials require large amounts of a protein that is not yet profitable, the insufficient supply impedes progress of the growing antibody pipeline to market.
[018] Alternative production methods have been explored in attempts at alleviating this problem.
Transgenic plants and animals are being pursued as potentially cheaper and higher capacity production systems (Chadd et aL, 2001, Curr Opin Biotechnol 12:188-194). Such expression systems, however, can generate glycosylation patterns significantly different from human glycoproteins. This may result in reduced or even lack of effector function because, as discussed above, the carbohydrate structure can significantly impact FcyR and complement binding. A
potentially greater problem with nonhuman glycoforms may be immunogenicity;
carbohydrates are a key source of antigenicity for the immune system, and the presence of nonhuman glycoforms has a significant chance of eliciting antibodies that neutralize the therapeutic, or worse cause adverse immune reactions. Thus the efficacy and safety of antibodies produced by transgenic plants and animals remains uncertain. Bacterial expression is another attractive solution to the antibody production problem. Expression in bacteria, for example E. coli, provides a cost-effective and high capacity method for producing proteins. For complex proteins such as antibodies there are a number of obstacles to bacterial expression, including folding and assembly of these complex molecules, proper disulfide formation, and solubility, stability, and functionality in the absence of glycosylation because proteins expressed in bacteria are not glycosylated. Full length unglycosylated antibodies that bind antigen have been successfully expressed in E. coli (Simmons et al., 2002, J Immunol Methods 263:133-147), and thus, folding, assembly, and proper disulfide formation of bacterially expressed antibodies are possible in the absence of the eukaryotic chaperone machinery. However the ultimate utility of bacterially expressed antibodies as therapeutics remains hindered by the lack of glycosylation, which results in lack effector function and may result in poor stability and solubility. This will likely be more problematic for formulation at the high concentrations for the prolonged periods demanded by clinical use.

52620-2(S) [019] An aglycosylated Fc with favorable solution properties and the capacity to mediate effector functions would be significantly enabling for the alternate production methods described above. By overcoming the structural and functional shortcomings of aglycosylated Fc, antibodies can be produced in bacteria and transgenic plants and animals with reduced risk of immunogenicity, and with effector function for clinical applications in which cytotoxicity is desired such as cancer. The present invention describes the utilization of protein engineering methods to develop stable, soluble Fc variants with effector function. Currently, such Fc variants do not exist in the art.
[020] In summary, there Is a need for antibodies with enhanced th erapeutic properties. Engineering of optimized or enhanced Fc variants is a promising approach to meeting this need. Yet a substantial obstacle to engineering Fc variants with the desired properties is the difficulty in predicting what amino acid modifications, out of the enormous number of possibilities, will achieve the desired goals, coupled with the inefficient production and screening methods for antibodies;
Indeed one of the principle reasons for the incomplete success of the prior art is that approaches to Fc engineering have thus far involved hit-or-miss methods such as alanine scans or production of glycoforms using different expression strains. In these studies, the Fc modifications that were made were fully or partly random in hopes of obtaining variants with favorable properties. The present invention provides a variety of engineering methods, many of which are based on more sophisticated and efficient techniques, which may be used to overcome these obstacles in order to develop Fc variants that are optimized for the desired properties. The described engineering methods provide design strategies to guide Fc modification, computational screening methods to design favorable Fc variants, library generation approaches for determining promising variants for experimental investigation, and an array of experimental production and screening methods for determining the Fc variants with favorable properties.

SUMMARY OF THE INVENTION
[021] The present invention provides Fc variants that are optimized for a number of therapeutically relevant properties. These Fc variants are generally contained within a variant protein, that preferably comprises an antibody or a Fc fusion protein.
[022] In an embodiment, present invention provides a polypeptide comprising an Fc variant of a parent Fc polypeptide, said parent Fc polypeptide comprising an Fc region, wherein said Fc variant comprises an amino acid modification in the Fc region of said parent Fc polypeptide at position 332, wherein said Fc variant exhibits an increase in affinity for an Fc gamma receptor (FcyR) as compared to the parent Fc polypeptide, wherein numbering is according to the EU index.
[023] It is a further object of the present invention to provide Fc variants that have been screened computationally. A computationally screened Fc variant is one that is predicted by the computational screening calculations described herein as having a significantly greater potential than random for 9a being optimized for a desired property. In this way, computational screening serves as a prelude to or surrogate for experimental screening, and thus said computationally screened Fc variants are considered novel.

[0241 It is a further object of the present invention to provide Fc variants that have been characterized using one or more of the experimental methods described herein.
In one embodiment, said Fe variants comprise at least one amino acid substitution at a position selected from the group consisting of: 230, 233, 234, 235, 239, 240, 241, 243, 244, 245, 247, 262, 263, 264, 265, 266, 267, 269, 270, 272, 273, 274, 275, 276, 278, 283, 296, 297, 298, 299, 302, 313, 318, 320, 323, 324, 325, 326, 327, 328, 329, 330, 331, 332, 333, 334, and 335, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In one embodiment, said Fc variants comprise at least one amino acid substitution at a position selected from the group consisting of: 221, 222, 224, 227, 228, 230, 231, 223, 233, 234, 235, 236, 237, 238, 239, 240, 241, 243, 244, 245, 246, 247, 249, 250, 258, 262, 263, 264, 265, 266, 267, 268, 269, 270, 271, 272, 273, 274, 275, 276, 278, 280, 281, 283, 285, 286, 288, 290, 291, 293, 294, 295, 296, 297, 298, 299, 300, 302, 313, 317, 318, 320, 322, 323, 324, 325, 326, 327, 328, 329, 330, 331, 332, 333, 334, 335 336 and 428,, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a preferred embodiment, said Fc variants comprise at least one substitution selected from the group consisting of P230A, E233D, L234D, L234E, L234N, L234Q, 1-234T, L234H, 1-234Y, L2341, L234V, L234F, L235D, 1-235S, 1-235N, 'L235Q, 1-235T, L235H, 1-235Y, L2351, L235V, 1-235F, S239D, S239E, S239N, S239Q, S239F, S239T, S239H, S239Y, V2401, V240A, V240T, V240M, F241 W, F241 L, F241 Y, F241 E, F241 R, F243W, F243L F243Y, F243R, F243Q, P244H, P245A, P247V, P247G, V2621, V262A, V262T, V262E, V2631, V263A, V263T, V263M, V264L, V2641, V264W, V264T, V264R, V264F, V264M, V264Y, V264E, D265G, D265N, D265Q, D265Y, D265F, D265V, D2651, D265L, D265H, D265T, V266I, V266A, V266T, V266M, S267Q, S267L, S267T, S267H, S267D, S267N, E269H, E269Y, E269F, E269R, E269T, E269L, E269N, D270Q, D270T, D270H, E272S, E272K, E2721, E272Y, V2731, K274T, K274E, K274R, K274L, K274Y, F275W, N276S, N276E, N276R, N276L, N276Y, Y278T, Y278E, Y278K, Y278W, E283R, Y296E, Y296Q, Y296D, Y296N, Y296S, Y296T, Y296L, Y2961, Y296H, N297S, N297D, N297E, A298H, T2991, T299L, T299A, T299S, T299V, T299H, T299F, T299E, V3021, W313F, E318R, K320T, K320D, K3201, K322T, K322H, V3231, S324T, S324D, S324R, S3241, S324V, S324L, S324Y, N325Q, N325L, N3251, N325D, N325E, N325A, N325T, N325V, N325H, K326L, K3261, K326T, A327N, A327L, A327D, A327T, 1-328M, L328D, L328E, 1-328N, L328Q, L328F, L3281, L328V, 1-328T, L328H, L328A, P329F, A330L, A330Y, A330V, A3301, A330F, A330R, A330H, A330S, A330W, A330M, P331 V, P331 H, 1332D, 1332E, 1332N, 1332Q, 1332T, 1332H, 1332Y, 1332A, E333T, E333H, E3331, E333Y, K3341, K334T, K334F, T335D, T335R, and T335Y, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a mostly preferred embodiment, said Fc variants are selected from the group consisting of V264L, V2641, F241 W, F241 L, F243W, F243L, F241 L/F243L/V262IN2641, F241W/F243W, F241 W/F243W/V262AN264A, F241 LN2621, F243W2641, F243LN2621N264W, F241Y/F243YN262TN264T, F24IE/F243R1V262EN264R, F241 E/F243Q/V262TN264E, F241 R/F243QN262T/V264R, F241 E/F243Y/V262TN264R, L328M, L328E, L328F, 1332E, L328M/1332E, P244H, P245A, P247V, W313F, P244H/P245A/P247V, P247G, V2641/1332E, F241 E/F243RN262EN264R/1332E, F241 E/F243QN262TN264E/1332E, F241 R/F243Q1V262T/V264R/1332E, F241 E/F243Y1V262TN264R/1332E, S298A/1332E, S239E/1332E, S239Q/1332E, S239E, D265G, D265N, 3239E/D265G, S239E/D265N, S239E/D265Q, Y296E, Y296Q, T2991, A327N, S267Q/A327S, S267L/A327S, A327L, P329F, A330L, A330Y, 1332D, N297S, N297D, N297S/1332E, N297D/1332E, N297E/1332E, D265Y/N297D/1332E, D265Y/N297D/T299L/1332E, D265F/N297E/1332E, L3281/1332E, L328Q/1332E, 1332N, 1332Q, V264T, V264F, V2401, V2631, V2661, T299A, T299S, T299V, N325Q, N325L, N3251, S239D, S239N, S239F, S239D/1332D, S239D/1332E, S239D/1332N, S239D/1332Q, S239E/1332D, S239E/1332N, S239E/1332Q, S239N/1332D, S239N/1332E, S239N/1332N, S239N/1332Q, S239Q/1332D, S239Q/1332N, S239Q/1332Q, Y296D, Y296N, F241Y/F243YN262TN264T/N297D/1332E, A330Y/1332E, V2641/A330Y/1332E, A330L/1332E, V2641/A330L/1332E, L234D, L234E, L234N, L234Q, L234T, L234H, L234Y, L2341, L234V, L234F, L235D, L235S, L235N, L235Q, L235T, L235H, L235Y, L2351, L235V, L235F, S239T, S239H, S239Y, V240A, V240T, V240M, V263A, V263T, V263M, V264M, V264Y, V266A, V266T, V266M, E269H, E269Y, E269F, E269R, Y296S, Y296T, Y296L, Y2961, A298H, T299H, A330V, A3301, A330F, A330R, A330H, N325D, N325E, N325A, N325T, N325V, N325H, L328D/1332E, L328E/1332E, L328N/1332E, L328Q/1332E, L328V/1332E, L328T/1332E, L328H/1332E, L3281/1332E, L328A, 1332T, 1332H, 1332Y, 1332A, S239EN2641/1332E, S2390N2641/1332E, S239EN2641/A330Y/1332E, S239E/V2641/S298A/A330Y/1332E, S239D/N297D/1332E, S239E/N297D/1332E, S239D/D265V/N297D/1332E, S239D/D2651/N297D/1332E, S239D/D265L/N297D/1332E, S239D/D265F/N297D/1332E, S239D/D265Y/N297D/1332E, S239D/D265H/N297D/1332E, S239D/D265T/N297D/1332E, V264E/N297D/1332E, Y296D/N297D/1332E, Y296E/N297D/1332E, Y296N/N297D/1332E, Y296Q/N297D/1332E, Y296H/N297D/1332E, Y296T/N297D/1332E, N297D/T299V/1332E, N297D/T2991/1332E, N297D/T299L/1332E, N297D/1299F/1332E, N297D/T299H/1332E, N297D/T299E/1332E, N297D/A330Y/1332E, N297D/S298A/A330Y/1332E, S239D/A330Y/1332E, S239N/A330Y/1332E, S239D/A330L/1332E, S239N/A330L/1332E, V2641/S298A/1332E, S239D/S298A/1332E, S239N/S298A/1332E, S239DN2641/1332E, S239DN2641/S298A/1332E, S239DN2641/A330L/1332E, L328N, L328H, S239D/1332E/A3301, N297D/1332E/S239D/A330L, P230A, E233D, P230A/E233D, P230A/E233D/1332E, S267T, S267H, S267D, S267N, E269T, E269L, E269N, D270Q, D270T, D270H, E272S, E272K, E2721, E272Y, V2731, K274T, K274E, K274R, K274L, K274Y, F275W, N276S, N276E, N276R, N276L, N276Y, Y278T, Y278E, Y278K, Y278W, E283R, V3021, E318R, K320T, K320D, K3201, K322T, K322H, V3231, S324T, S324D, S324R, S3241, S324V, S324L, S324Y, K326L, K3261, K326T, A327D, A327T, A330S, A330W, A330M, P331 V, P331 H, E333T, E333H, E3331, E333Y, K3341, K334T, K334F, T335D, T335R, T335Y, L2341/L235D, V2401N2661, S239D/A330Y/1332E/L2341, S239D/A330Y/1332E/L235D, S239D/A330Y/1332E1V2401, S239D/A330Y/1332EN264T, S239D/A330Y/1332EN2661, S239D/A330Y/1332E/K326E, S239D/A330Y/1332E/K326T, S239D/N297D/1332E/A330Y, S2390/N297D/1332E/A330Y/F24I S/F243HN262TN264T, S239D/N297D/1332E/L235D, and S239D/N297D/1332E/K326E, wherein the numbering of the residues in the Fc region is that of the EU
index as in Kabat.

[025] It is a further object of the present invention to provide Fc variants that are selected from the group consisting of D221K, D221Y, K222E, K222Y, T223E, T223K, H224E, H224Y, T225E, T225, T225K, T225W, P227E, P227K, P227Y, P227G, P228E, P228K, P228Y, P228G, P230E, P230Y, P230G, A231 E, A231 K, A231 Y, A231 P, A231 G, P232E, P232K, P232Y, P232G, E233N, E233Q, E233K, E233R, E233S, E233T, E233H, E233A, E233V, E233L, E2331, E233F, E233M, E233Y, E233W, E233G, 1-234K, L234R, 1-234S, 1-234A, 1-234M, L234W, 1-234P, 1-234G, 1-235E, 1-235K, 1-235R, 1-235A, 1-235M, L235W, 1-235P, 1-235G, G236D, G236E, G236N, G236Q, G236K, G236R, G236S, G236T, G236H, G236A, G236V, G236L, G2361, G236F, G236M, G236Y, G236W, G236P, G237D, G237E, G237N, G237Q, G237K, G237R, G237S, G237T, G237H, G237V, G237L, G2371, G237F, G237M, G237Y, G237W, G237P, P238D, P238E, P238N, P238Q, P238K, P238R, P238S, P238T, P238H, P238V, P238L, P2381, P238F, P238M, P238Y, P238W, P238G, S239Q, S239K, S239R, S239V, S239L, S2391, S239M, S239W, S239P, S239G, F241 D, F241 E, F241 Y, F243E, K246D, K246E, K246H, K246Y, D249Q, D249H, D249Y, R255E, R255Y, E258S, E258H, E258Y, T260D, T260E, T260H, T260Y, V262E, V262F, V264D, V264E, V264N, V264Q, V264K, V264R, V264S, V264H, V264W, V264P, V264G, D265Q, D265K, D265R, D265S, D265T, D265H, D265V, D265L, D2651, D265F, D265M, D265Y, D265W, D265P, S267E, S267Q, S267K, S267R, S267V, S267L, S2671, S267F, S267M, S267Y, S267W, S267P, H268D, H268E, H268Q, H268K, H268R, H268T, H268V, H268L, H2681, H268F, H268M, H268W, H268P, H268G, E269K, E269S, E269V, E2691, E269M, E269W, E269P, E269G, D270R, D270S, D270L, D2701, D270F, D270M, D270Y, D270W, D270P, D270G, P271 D, P271 E, P271 N, P271 Q, P271 K, P271 R, P271 S, P271 T, P271 H, P271 A, P271 V, P271 L, P271 I, P271 F, P271 M, P271 Y, P271 W, P271 G, E272D, E272R, E272T, E272H, E272V, E272L, E272F, E272M, E272W, E272P, E272G, K274D, K274N, K274S, K274H, K274V, K2741, K274F, K274M, K274W, K274P, K274G, F275L, N276D, N276T, N276H, N276V, N2761, N276F, N276M, N276W, N276P, N276G, Y278D, Y278N, Y278Q, Y278R, Y278S, Y278H, Y278V, Y278L, Y2781, Y278M, Y278P, Y278G, D280K, D280L, D280W, D280P, D280G, G281 D, G281 K, G281Y, G281 P, V282E, V282K, V282Y, V282P, V282G, E283K, E283H, E283L, E283Y, E283P, E283G, V284E, V284N, V284T, V284L, V284Y, H285D, H285E, H285Q, H285K, H285Y, H285W, N286E, N286Y, N286P, N286G, K288D, K288E, K288Y, K290D, K290N, K290H, K290L, K290W, P291 D, P291 E, P291 Q, P291 T, P291 H, P291 1, P291 G, R292D, R292E, R292T, R292Y, E293N, E293R, E293S, E293T, E293H, E293V, E293L, E2931, E293F, E293M, E293Y, E293W, E293P, E293G, E294K, E294R, E294S, E294T, E294H, E294V, E294L, E2941, E294F, E294M, E294Y, E294W, E294P, E294G, Q295D, Q295E, Q295N, Q295R, Q295S, Q295T, Q295H, Q295V, Q2951, Q295F, Q295M, Q295Y, Q295W, Q295P, Q295G, Y296K, Y296R, Y296A, Y296V, Y296M, Y296G, N297Q, N297K, N297R, N297T, N297H, N297V, N297L, N2971, N297F, N297M, N297Y, N297W, N297P, N297G, S298D, S298E, S298Q, S298K, S298R, S2981, S298F, S298M, S298Y, S298W, T299D, T299E, T299N, T299Q, T299K, T299R, T299L, T299F, T299M, T299Y, T299W, T299P, T299G, Y300D, Y300E, Y300N, Y300Q, Y300K, Y300R, Y300S, Y300T, Y300H, Y300A, Y300V, Y300M, Y300W, Y300P, Y300G, R301 D, R301 E, R301 H, R301 Y, V303D, V303E, V303Y, S304D, S304N, S304T, S304H, S304L, V305E, V305T, V305Y, K317E, K317Q, E318Q, E318H, E318L, E318Y, K320N, K320S, K320H, K320V, K320L, K320F, K320Y, K320W, K320P, K320G, K322D, K322S, K322V, K3221, K322F, K322Y, K322W, K322P, K322G, S324H, S324F, S324M, S324W, S324P, S324G, N325K, N325R, N325S, N325F, N325M, N325Y, N325W, N325P, N325G, K326P, A327E, A327K, A327R, A327H, A327V, A3271, A327F, A327M, A327Y, A327W, A327P, L328D, L328Q, L328K, L328R, L328S, L328T, L328V, L3281, L328Y, L328W, L328P, 1-328G, P329D, P329E, P329N, P329Q, P329K, P329R, P329S, P329T, P329H, P329V, P329L, P3291, P329M, P329Y, P329W, P329G, A330E, A330N, A330T, A330P, A330G, P331 D, P331 Q, P331 R, P331 T, P331 L, P331 I, P331 F, P331 M, P331 Y, P331 W, 1332K, 1332R, 1332S, 1332V, 1332L, 1332F, 1332M, 1332W, 1332P, 1332G, E333L, E33317, E333M, E333P, K334P, T335N, T335S, T335H, T335V, T335L, T3351, T335F, T335M, T335W, T335P, T335G, 1336E, 1336K, 1336Y, S337E, S337N, and S337H, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat.

[026] It is a further object of the present invention to provide an Fc variant that binds with greater affinity to one or more FcyRs. In one embodiment, said Fc variants have affinity for an FcyR that is more than 1-fold greater than that of the parent Fc polypeptide. In an alternate embodiment, said Fc variants have affinity for an FcyR that is more than 5-fold greater than that of the parent Fc polypeptide. In a preferred embodiment, said Fc variants have affinity for an Fc7R that is between 5-fold and 300-fold greater than that of the parent Fc polypeptide. In one embodiment, said Fc variants comprise at least one amino acid substitution at a position selected from the group consisting of: 230, 233, 234, 235, 239, 240, 243, 264, 266, 272, 274, 275, 276, 278, 302, 318, 324, 325, 326, 328, 330, 332, and 335, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a preferred embodiment, said Fc variants comprise at least one amino acid substitution selected from the group consisting of: P230A, E233D, L234E, L234Y, L2341, L235D, L235S, L235Y, L2351, S239D, S239E, S239N, S239Q, S239T, V2401, V240M, F243L, V2641, V264T, V264Y, V2661, E272Y, K274T, K274E, K274R, K274L, K274Y, F275W, N276L, Y278T, V3021, E318R, S324D, S3241, S324V, N325T, K3261, K326T, L328M, L3281, L328Q, L328D, L328V, L328T, A330Y, A330L, A3301, 1332D, 1332E, 1332N, 1332Q, T335D, T335R, and T335Y, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a mostly preferred embodiment, said Fe variants are selected from the group consisting of V2641, F243LN264I, L328M, 1332E, L328M/1332E, V2641/1332E, S298A/1332E, S239E/1332E, S239Q/1332E, S239E, A330Y, 1332D, L3281/1332E, L328Q/1332E, V264T, V2401, V2661, S239D, S239D/1332D, S239D/1332E, S239D/1332N, S239D/1332Q, S239E/1332D, S239E/1332N, S239E/1332Q, S239N/1332D, S239N/1332E, S239Q/1332D, A330Y/1332E, V2641/A330Y/1332E, A330L/1332E, V2641/A330L/1332E, L234E, L234Y, L2341, L235D, L235S, L235Y, L2351, S239T, V240M, V264Y, A3301, N325T, L328D/1332E, L328V/1332E, L328T/1332E, L3281/1332E, S239EN2641/1332E, S239QN2641/1332E, S239EN2641/A330Y/1332E, S239D/A330Y/1332E, S239N/A330Y/1332E, S2390/A330L/1332E, S239N/A330L/I332E, V2641/S298A/1332E, S239D/S298A/1332E, S239N/S298A/1332E, S239DN2641/1332E, S239DN26411S298A/1332E, S239DN2641/A330L/1332E, S239D/1332E/A330I, P230A, P230A/E233D/1332E, E272Y, K274T, K274E, K274R, K274L, K274Y, F275W, N276L, Y278T, V3021, E318R, S324D, S3241, S324V, K3261, K326T, T335D, T335R, T335Y, V240IN2661, S239D/A330Y/1332E/L2341, S239D/A330Y/1332E/L235D, S239D/A330Y/1332EN240I, S239D/A330Y/1332EN264T, S239D/A330Y/1332E/K326E, and S239D/A330Y/1332E/K326T, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat.

[027] It is a further object of the present invention to provide Fc variant that have a FcyRIIIa-fold:FcyRIIb-fold ratio greater than 1:1. In one embodiment, said Fc variants have a FcyRIlla-fold:FcyRllb-fold ratio greater than 11:1. In a preferred embodiment, said Fc variants have a FcyRIIIa-fold: FcyRI I b-fold ratio between 11:1 and 86:1. In one embodiment, said Fc variants comprise at least one amino acid substitution at a position selected from the group consisting of: 234, 235, 239, 240, 264, 296, 330, and 1332, wherein the numbering of the residues in the Fc region is that of the EU
index as in Kabat. In a preferred embodiment, said Fc variants comprise at least one amino acid substitution selected from the group consisting of: L234Y, L2341, L235I, S239D, S239E, S239N, S239Q, V240A, V240M, V2641, V264Y, Y296Q, A330L, A330Y, A3301, 1332D, and 1332E, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a mostly preferred embodiment, said Fc variants are selected from the group consisting of: 1332E, V264I/1332E, S239E/1332E, S239Q/1332E, Y296Q, A330L, A330Y, 1332D, S239D, S239D/1332E, A330Y/1332E, V2641/A330Y/1332E, A330L/1332E, V2641/A330L/1332E, L234Y, L2341, L2351, V240A, V240M, V264Y, A3301, S239D/A330L/1332E, S239D/S298A/1332E, S239N/S298A/I332E, S239DN2641/1332E, S239DN2641/S298A/1332E, and S239DN2641/A330L/1332E, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat.

[028] It is a further object of the present invention to provide Fc variants that mediate effector function more effectively in the presence of effector cells. In one embodiment, said Fc variants mediate ADCC that is greater than that mediated by the parent Fc polypeptide.
In a preferred embodiment, said Fc variants mediate ADCC that is more than 5-fold greater than that mediated by the parent Fc polypeptide. In a mostly preferred embodiment, said Fc variants mediate ADCC that is between 5-fold and 1000-fold greater than that mediated by the parent Fc polypeptide. In one embodiment, said Fc variants comprise at least one amino acid substitution at a position selected from the group consisting of: 230, 233, 234, 235, 239, 240, 243, 264, 266, 272, 274, 275, 276, 278, 302, 318, 324, 325, 326, 328, 330, 332, and 335, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat.. In a preferred embodiment, said Fc variants comprise at least one amino acid substitutions selected from the group consisting of:
P230A, E233D, L234E, L234Y, L2341, L235D, 1-235S, 1-235Y, L2351, S239D, S239E, S239N, S239Q, S239T, V2401, V240M, F243L, V2641, V264T, V264Y, V266I, E272Y, K274T, K274E, K274R, K274L, K274Y, F275W, N276L, Y278T, V3021, E318R, S324D, S3241, S324V, N325T, K3261, K326T, L328M, L3281, L328Q, L328D, L328V, 1-328T, A330Y, A330L, A3301, 1332D, 1332E, 1332N, 1332Q, T335D, T335R, and T335Y, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a mostly preferred embodiment, said Fc variants are selected from the group consisting of: V2641, F243L/V2641, L328M, 1332E, L328M/1332E, V2641/1332E, S298A/1332E, S239E/1332E, S239Q/1332E, S239E, A330Y, 1332D, L3281/1332E, L328Q/1332E, V264T, V2401, V2661, S239D, S239D/1332D, S239D/1332E, S239D/1332N, S239D/1332Q, S239E/1332D, S239E/1332N, S239E/1332Q, S239N/1332D, S239N/1332E, S239Q/1332D, A330Y/1332E, V2641/A330Y/1332E, A330L/1332E, V2641/A330L/1332E, L234E, L234Y, L2341, L235D, 1-235S, 1-235Y, L2351, S239T, V240M, V264Y, A3301, N325T, L328D/1332E, L328V/1332E, L328T/1332E, L3281/1332E, S239EN2641/1332E, S239Q/V2641/1332E, S239EN2641/A330Y/1332E, S239D/A330Y/1332E, S239N/A330Y/1332E, S239D/A330L/1332E, S239N/A330L/1332E, V2641/S298A/1332E, S239D/S298A/1332E, S239N/S298A/1332E, S239DN2641/1332E, S239DN2641/S298A/1332E, S239DN2641/A330U1332E, S239D/1332E/A3301, P230A, P230A/E233D/1332E, E272Y, K274T, K274E, K274R, K274L, K274Y, F275W, N276L, Y278T, V3021, E318R, S324D, S3241, S324V, K3261, K326T, T335D, T335R, T335Y, V2401N2661, S239D/A330Y/1332E/L2341, S239D/A330Y/1332E/L235D, S239D/A330Y/1332EN2401, S239D/A330Y/1332EN264T, S239D/A330Y/1332E/K326E, and S239D/A330Y/1332E/K326T, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat.

[029] It is a further object of the present invention to provide Fc variants that bind with weaker affinity to one or more FcyRs. In one embodiment, said Fc variants comprise at least one amino acid substitution at a position selected from the group consisting of: 230, 233, 234, 235, 239, 240, 241, 243, 244, 245, 247, 262, 263, 264, 265, 266, 267, 269, 270, 273, 276, 278, 283, 296, 297, 298, 299, 313, 323, 324, 325, 327, 328, 329, 330, 332, and 333, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a preferred embodiment, said Fc variants comprise an amino acid substitution at a position selected from the group consisting of: P230A, E233D, L234D, 1-234N, L234Q, 1-234T, L234H, L234V, L234F, L2341, 1-235N, 1-235Q, 1-235T, L235H, L235V, 1-235F, L235D, S239E, S239N, S239Q, S239F, S239H, S239Y, V240A, V240T, F241 W, F241 L, F241 Y, F241 E, F241 R, F243W, F243L F243Y, F243R, F243Q, P244H, P245A, P247V, P247G, V2621, V262A, V262T, V262E, V2631, V263A, V263T, V263M, V264L, V2641, V264W, V264T, V264R, V264F, V264M, V264E, D265G, D265N, D265Q, D265Y, D265F, D265V, D2651, D265L, D265H, D265T, V266A, V266T, V266M, S267Q, S267L, E269H, E269Y, E269F, E269R, E269T, E269L, E269N, D270Q, D270T, D270H, V2731, N276S, N276E, N276R, N276Y, Y278E, Y278W, E283R, Y296E, Y296Q, Y296D, Y296N, Y296S, Y296T, Y296L, Y2961, Y296H, N297S, N297D, N297E, A298H, T2991, T299L, T299A, T299S, T299V, T299H, T299F, T299E, W313F, V3231, S324R, S324L, S324Y, N325Q, N325L, N3251, N325D, N325E, N325A, N325V, N325H, A327N, A327L, L328M, 328E, L328N, L328Q, A327D, A327T, L328F, L328H, L328A, L328N, L328H, P329F, A330L, A330V, A330F, A330R, A330H, 1332N, 1332Q, 1332T, 1332H, 1332Y, 1332A, E333T, and E333H, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a mostly preferred embodiment, said Fc variants are selected from the group consisting of: V264L, F241 W, F241 L, F243W, F243L, F241 L/F243LN262IN264I, F241 W/F243W, F241 W/F243W/V262AN264A, F241 LN2621, F243LN2621N264W, F241 Y/F243YN262T/V264T, F241 E/F243RN262EN264R, F241 E/F243Q/V262TN264E, F241 R/F243QN262TN264R, F241 E/F243YN262TN264R, L328M, L328E, L328F, P244H, P245A, P247V, W313F, P244H/P245A/P247V, P247G, F241 E/F243RN262EN264R/1332E, F241 E/F243YN262TN264R/1332E, D265G, D265N, S239E/D265G, S239E/D265N, S239E/D265Q, Y296E, Y296Q, T2991, A327N, S267Q/A327S, S267L/A327S , A327L, P329F, A330L, N297S, N297D, N297S/1332E, 1332N, 1332Q, V264F, V2631, T299A, T299S, T299V, N325Q, N325L, N3251, S239N, S239F, S239N/1332N, S239N/1332Q, S239Q/1332N, S239Q/1332Q, Y296D, Y296N, L234D, L234N, L234Q, L234T, L234H, L234V, L234F, L235N, L235Q, L235T, L235H, L235V, L235F, S239H, S239Y, V240A, V263T, V263M, V264M, V266A, V266T, V266M, E269H, E269Y, E269F, E269R, Y296S, Y296T, Y296L, Y2961, A298H, T299H, A330V, A330F, A330R, A330H, N325D, N325E, N325A, N325V, N325H, L328E/1332E, L328N/1332E, L328Q/1332E, L328H/1332E, L328A, 1332T, 1332H, 1332Y, 1332A, L328N, L328H, E233D, P230A/E233D, E269T, E269L, E269N, D270Q, D270T, D270H, V2731, N276S, N276E, N276R, N276Y, Y278E, Y278W, E283R, V3231, S324R, S324L, S324Y, A327D, A327T, E333T, E333H, and L2341/L235D, wherein the numbering of the residues in the Fc region is that of the EU
index as in Kabat.

[030] It is a further object of the present invention to provide Fc variants that mediate ADCC in the presence of effector cells less effectively. In one embodiment, said Fc variants comprise at least one amino acid substitution at a position selected from the group consisting of:
230, 233, 234, 235, 239, 240, 241, 243, 244, 245, 247, 262, 263, 264, 265, 266, 267, 269, 270, 273, 276, 278, 283, 296, 297, 298, 299, 313, 323, 324, 325, 327, 328, 329, 330, 332, and 333, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a preferred embodiment, said Fc variants comprise at least one amino acid substitution at a position selected from the group consisting of: P230A, E233D, L234D, L234N, L234Q, L234T, L234H, L234V, L234F, L2341, L235N, L235Q, L235T, L235H, L235V, L235F, L235D, S239E, S239N, S239Q, S239F, S239H, S239Y, V240A, V240T, F241 W, F241 L, F241 Y, F241 E, F241 R, F243W, F243L F243Y, F243R, F243Q, P244H, P245A, P247V, P247G, V2621, V262A, V262T, V262E, V2631, V263A, V263T, V263M, V264L, V2641, V264W, V264T, V264R, V264F, V264M, V264E, D265G, D265N, D265Q, D265Y, D265F, D265V, D2651, D265L, D265H, D265T, V266A, V266T, V266M, S267Q, S267L, E269H, E269Y, E269F, E269R, E269T, E269L, E269N, D270Q, D270T, D270H, V2731, N276S, N276E, N276R, N276Y, Y278E, Y278W, E283R, Y296E, Y296Q, Y296D, Y296N, Y296S, Y296T, Y296L, Y2961, Y296H, N297S, N297D, N297E, A298H, T2991, T299L, T299A, T299S, T299V, T299H, T299F, T299E, W313F, V3231, S324R, S324L, S324Y, N325Q, N325L, N3251, N325D, N325E, N325A, N325V, N325H, A327N, A327L, L328M, 328E, L328N, L328Q, A327D, A327T, L328F, L328H, L328A, L328N, L328H, P329F, A330L, A330V, A330F, A330R, A330H, 1332N, 1332Q, 1332T, 1332H, 1332Y, 1332A, E333T, and E333H, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a mostly preferred embodiment, said Fc variants are selected from the group consisting of: V264L, F241 W, F241 L, F243W, F243L, F241 L/F243LN262IN2641, F241W/F243W, F241 W/F243WN262AN264A, F241 L/V2621, F243LN2621N264W, F241 Y/F243YN262TN264T, F241 E/F243R/V262E/V264R, F241 E/F243QN262TN264E, F241 R/F243Q/V262TN264R, F241 E/F243YN262TN264R, L328M, L328E, L328F, P244H, P245A, P247V, W313F, P244H/P245A/P247V, P247G, F241 E/F243RN262EN264R/1332E, F241 E/F243YN262TN264R/1332E, D265G, D265N, S239E/D265G, S239E/D265N, S239E/D265Q, Y296E, Y296Q, T2991, A327N, S267Q/A327S, S267L/A327S , A327L, P329F, A330L, N297S, N297D, N297S/1332E, 1332N, 1332Q, V264F, V2631, T299A, T299S, T299V, N325Q, N325L, N3251, S239N, S239F, S239N/1332N, S239N/1332Q, S239Q/1332N, S239Q/1332Q, Y296D, Y296N, L234D, L234N, L234Q, L234T, L234H, L234V, L234F, L235N, L235Q, L235T, L235H, L235V, L235F, S239H, S239Y, V240A, V263T, V263M, V264M, V266A, V266T, V266M, E269H, E269Y, E269F, E269R, Y296S, Y296T, Y296L, Y2961, A298H, T299H, A330V, A330F, A330R, A330H, N325D, N325E, N325A, N325V, N325H, L328E/1332E, L328N/1332E, L328Q/1332E, L328H/1332E, L328A, 1332T, 1332H, 1332Y, 1332A, L328N, L328H, E233D, P230A/E233D, E269T, E269L, E269N, D270Q, D270T, D270H, V2731, N276S, N276E, N276R, N276Y, Y278E, Y278W, E283R, V3231, S324R, S324L, S324Y, A327D, A327T, E333T, E333H, and L2341/L235D, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat.

[031] It is a further object of the present invention to provide Fc variants that have improved function and/or solution properties as compared to the aglycosylated form of the parent Fc polypeptide. Improved functionality herein includes but is not limited to binding affinity to an Fc ligand.
Improved solution properties herein includes but is not limited to stability and solubility. In one embodiment, said aglycosylated Fc variants bind to an FcyR with an affinity that is comparable to or better than the glycosylated parent Fc polypeptide. In an alternate embodiment, said Fc variants bind to an FcyR with an affinity that is within 0.4-fold of the glycosylated form of the parent Fc polypeptide.
In one embodiment, said Fc variants comprise at least one amino acid substitution at a position selected from the group consisting of: 239, 241, 243, 262, 264, 265, 296, 297, 330, and 332, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat. In a preferred embodiment, said Fc variants comprise an amino acid substitution selected from the group consisting of: S239D, S239E, F241Y, F243Y, V262T, V264T, V264E, D265Y, D265H, D265V, D2651, Y296N, N297D, A330Y, and 1332E, wherein the numbering of the residues in the Fc region is that of the EU
index as in Kabat. In a mostly preferred embodiment, said Fc variants are selected from the group consisting of: N297D/1332E, F241 Y/F243YN262TN264T/N297D/1332E, S239D/N297D/1332E, S239E/N297D/1332E, S239D/D265Y/N297D/1332E, S239D/D265H/N297D/1332E, V264E/N297D/1332E, Y296N/N297D/1332E, N297D/A330Y/1332E, S239D/D265V/N297D/1332E, S239D/D2651/N297D/I332E, and N297D/S298A/A330Y/1332E, wherein the numbering of the residues in the Fc region is that of the EU index as in Kabat.

[032] The present invention also provides methods for engineering optimized Fc variants. It is an object of the present invention to provide design strategies that may be used to guide Fc optimization.
It is a further object of the present invention to provide computational screening Methods that may be used to design Fc variants. It is a further object of the present invention to provide methods for generating libraries for experimental testing. It is a further object of the present invention to provide experimental production and screening methods for obtaining optimized Fc variants.

[033] The present invention provides isolated nucleic acids encoding the Fc variants described herein. The present invention provides vectors comprising said nucleic acids, optionally, operably linked to control sequences. The present invention provides host cells containing the vectors, and methods for producing and optionally recovering the Fc variants.

[034] The present invention provides novel antibodies and Fc fusions that comprise the Fc variants disclosed herein. Said novel antibodies and Fc fusions may find use in a therapeutic product.

[035] The present invention provides compositions comprising antibodies and Fc fusions that comprise the Fc variants described herein, and a physiologically or pharmaceutically acceptable carrier or diluent.

[036] The present invention contemplates therapeutic and-diagnostic uses for antibodies and Fc fusions that comprise the Fc variants disclosed herein.

BRIEF DESCRIPTION OF THE DRAWINGS

[037] Figure 1. Antibody structure and function. Shown is a model of a full length human IgG1 antibody, modeled using a humanized Fab structure from pdb accession code 1 CE1 (James et aL, 1999, J Mot Biol 289:293-301) and a human IgG1 Fc structure from pdb accession code 1 DN2 (DeLano at at., 2000, Science 287:1279-1283). The flexible hinge that links the Fab and Fc..regions is not shown. lgG1 is a homodimer of heterodimers, made up of two light chains and two heavy chains.

The Ig domains that comprise the antibody are labeled, and include VL and CL
for the light chain, and VH, Cgammal (Cyl), Cgamma2 (Cy2), and Cgamma3 (Cy3) for the heavy chain. The Fc region is labeled. Binding sites for relevant proteins are labeled, including the antigen binding site in the variable region, and the binding sites for FcyRs, FcRn, Cl q, and proteins A
and G in the Fc region.
[038] Figure 2. The Fc/FcyRlllb complex structure 1IIS. Fc is shown as a gray ribbon diagram, and FcyRiilb is shown as a black ribbon. The N297 carbohydrate is shown as black sticks.

[039] Figure 3. The amino acid sequence of the heavy chain of the antibody alemtuzumab (Campath , a registered trademark of Ilex Pharmaceuticals LP), illustrating positions numbered sequentially (2 lines above the amino acid sequence) and positions numbered according to the EU
index as in Kabat (2 lines below the amino acid sequence. The approximate beginnings of Ig domains VH1, Cy1, the hinge, Cy2, and Cy3 are also labeled above the sequential numbering.
Polymorphisms have been observed at a number of Fc positions, including but not limited to Kabat 18a 270, 272, 312, 315, 356, and 358, and thus slight differences between the presented sequence and sequences in the prior art may exist.

[040] Figure 4. Experimental library residues mapped onto the Fc/FcyRlllb complex structure I IIS.
Fc is shown as a gray ribbon diagram, and FcyRlllb is shown as a black ribbon.
Experimental library residues are shown in black, the N297 carbohydrate is shown in grey.

[041] Figure 5. The human IgG1 Fc sequence showing positions relevant to the design of the Fc variant experimental library. The sequence includes the hinge region, domain Cy2, and domain Cy3.
Residue numbers are according to the EU index as in Kabat. Positions relevant to the experimental library are underlined. Because of observed polymorphic mutations at a number of Fc positions, slight differences between the presented sequence and sequences in the literature may exist.

[042] Figure 6. Expression of Fc variant and wild type (WT) proteins of alemtuzumab in 293T cells.
Plasmids containing alemtuzumab heavy chain genes (WT or variants) were co-transfected with plasmid containing the alemtuzumab light chain gene. Media were harvested 5 days after transfection. For each transfected sample, I Oul medium was loaded on a SDS-PAGE gel for Western analysis. The probe for Western was peroxidase-conjugated goat-anti human IgG
(Jackson Immuno-Research, catalog # 109-035-088). WT: wild type alemtuzumab; 1-10: alemtuzumab variants. H and L indicate antibody heavy chain and light chain, respectively.

[043] Figure 7. Purification of alemtuzumab using protein A chromatography. WT
alemtuzumab proteins was expressed in 293T cells and the media was harvested 5 days after transfection. The media were diluted 1:1 with PBS and purified with protein A (Pierce, Catalog #
20334). 0: original sample before purification; FT: flow through; E: elution; C: concentrated final sample. The left picture shows a Simple Blue-stained SDS-PAGE gel, and the right shows a western blot labeled using peroxidase-conjugated goat-anti human IgG.

[044] Figure 8. Production of deglycosylated antibodies. Wild type and variants of alemtuzumab were expressed in 293T cells and purified with protein A chromatography.
Antibodies were incubated with peptide-N-glycosidase (PNGase F) at 37 C for 24h. For each antibody, a mock treated sample (-PNGase F) was done in parallel. WT: wild-type alemtuzumab; #15, #16, #17, #18, #22: alemtuzumab variants F241 E/F243R/V262E/V264R, F241 E/F243Q/V262TN264E, F241 R/F243Q/V262T/V264R, F241 E/F243YN262TN264R, and 1332E respectively. The faster migration of the PNGase F treated versus the mock treated samples represents the deglycosylated heavy chains.

[045] Figure 9. Alemtuzumab expressed from 293T cells binds its antigen. The antigenic CD52 peptide, fused to GST, was expressed in E. coli BL21 (DE3) under IPTG
induction. Both uninduced and induced samples were run on a SDS-PAGE gel, and transferred to PVDF
membrane. For western analysis, either alemtuzumab from Sotec (a-CD52, Sotec) (final concentration 2.5ng/ul) or media of transfected 293T cells (Campath, Xencor) (final alemtuzumab concentration approximately 0.1-0.2ng/ul) were used as primary antibody, and peroxidase-conjugated goat-anti human IgG was used as secondary antibody. M: pre-stained marker; U: un-induced sample for GST-CD52; I: induced sample for GST-CD52.

[046] Figure 10. Expression and purification of extracellular region of human V158 FcyRIIIa.
Tagged FcyRIIIa was transfected in 293T cells, and media containing secreted Fc'RIIIa were harvested 3 days later and purified using affinity chromatography. 1: media;
2: flow through; 3: wash;
4-8: serial elutions. Both simple blue-stained SDS-PAGE gel and western result are shown. For the western blot, membrane was probed with anti-GST antibody.

[047] Figure 11. Binding to human V158 FcyRIlla by select alemtuzumab Fc variants from the experimental library as determined by the AlphaScreenTM assay, described in Example 2. In the presence of competitor antibody (Fc variant or WT alemtuzumab) a characteristic inhibition curve is observed as a decrease in luminescence signal. Phosphate buffer saline (PBS) alone was used as the negative control. The binding data were normalized to the maximum and minimum luminescence signal for each particular curve, provided by the baselines at low and high antibody concentrations respectively. The curves represent the fits of the data to a one site competition model using nonlinear regression. These fits provide IC50s for each antibody, illustrated for WT and S239D by the dotted lines.

[048] Figures 12. AlphaScreenT"" assay showing binding of select alemtuzumab Fc variants to human FcyRllb. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS
was used as a negative control.

[049] Figures 13a and 13b. AlphaScreenTM assay showing binding of select alemtuzumab (Figure 13a) and trastuzumab (Figure 13b) Fc variants to human Va1158 FcyRIIIa. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model.' PBS was used as a negative control.

[050] Figures 14a and 14b. AlphaScreenTM assay measuring binding to human V158 FcyRlIla by select Fc variants in the context of trastuzumab. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.

[051] Figures 15a and 15b. AlphaScreenT"" assay measuring binding to human V158 FcyRIlla by select Fc variants in the context of rituximab (Figure 15a) and cetuximab (Figure 15b). The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.
[052] Figures 16a - 16b. AlphaScreenT"" assay comparing binding of select alemtuzumab Fc variants to human V158 FcyRllla (Figure 16a) and human FcyRIIb (Figure 16b).
The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.
[053] Figure 17. AlphaScreenT"' assay measuring binding to human V158 FcyRllla by select Fc variants in the context of trastuzumab. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.

[054] Figures 18. AlphaScreenT"' assay showing binding of select alemtuzumab Fc variants to human R131 FcyRlla. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model.
[055] Figures 19a and 19b. AlphaScreenT"^ assay showing binding of select alemtuzumab Fc variants to human V158 FcyRllla. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.

[056] Figure 20. AlphaScreenT"' assay showing binding of aglycosylated alemtuzumab Fc variants to human V158 FcyRllla. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model.
PBS was used as a negative control.

[057] Figure 21. AlphaScreenT"^ assay comparing human V158 FcyRllla binding by select alemtuzumab Fc variants in glycosylated (solid symbols, solid lines) and deglycosylated (open symbols, dotted lines). The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model.

[058] Figures 22a - 22b. AlphaScreenTM assay showing binding of select alemtuzumab Fc variants to the V158 (Figure 22a) and F158 (Figure 22b) allotypes of human FcyRllla.
The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.

[059] Figures 23a - 23d. Figures 23a and 23b show the correlation between SPR
Kd's and AlphaScreenTM IC50's from binding of select alemtuzumab Fc variants to V158 FcyRllla (Figure 23a) and F158 FcyRllla (Figure 23b). Figures 23c and 23d show the correlation between SPR and AlphaScreenT'" fold-improvements over WT for binding of select alemtuzumab Fc variants to V158 FcyRllla (Figure 23c) and F158 FcyRllla (Figure 23d). Binding data are presented in Table 63. The lines through the data represent the linear fits of the data, and the r2 values indicate the significance of these fits.

[060] Figures 24a - 24b. Cell-based ADCC assays of select Fc variants in the context of alemtuzumab. ADCC was measured using the DELFIA EuTDA-based cytotoxicity assay (Perkin Elmer, MA), as described in Example 7, using DoHH-2 lymphoma target cells and 50-fold excess human PBMCs. Figure 24a is a bar graph showing the raw fluorescence data for the indicated alemtuzumab antibodies at 10 ng/ml. The PBMC bar indicates basal levels of cytotoxicity in the absence of antibody. Figure 24b shows the dose-dependence of ADCC on antibody concentration for the indicated alemtuzumab antibodies, normalized to the minimum and maximum fluorescence signal for each particular curve, provided by the baselines at low and high antibody concentrations respectively. The curves represent the fits of the data to a sigmoidal dose-response model using nonlinear regression.

[061] Figures 25a - 25c. Cell-based ADCC assays of select Fc variants in the context of trastuzumab. ADCC was measured using the DELFIA EuTDA-based cytotoxicity assay, as described in Example 7, using BT474 and Sk-Br-3 breast carcinoma target cells and 50-fold excess human PBMCs. Figure 25a is a bar graph showing the raw fluorescence data for the indicated trastuzumab antibodies at 1 ng/ml. The PBMC bar indicates basal levels of cytotoxicity in the absence of antibody. Figures 25b and 25c show the dose-dependence of ADCC on antibody concentration for the indicated trastuzumab antibodies, normalized to the minimum and maximum fluorescence signal for each particular curve, provided by the baselines at low and high antibody concentrations respectively. The curves represent the fits of the data to a sigmoidal dose-response model using nonlinear regression.

[062] Figures 26a - 26c. Cell-based ADCC assays of select Fc variants in the context of rituximab.
ADCC was measured using the DELFIA EuTDA-based cytotoxicity assay, as described in Example 7, using WIL2-S lymphoma target cells and 50-fold excess human PBMCs. Figure 26a is a bar graph showing the raw fluorescence data for the indicated rituximab antibodies at I
ng/ml. The PBMC bar indicates basal levels of cytotoxicity in the absence of antibody. Figures 26b and 26c show the dose-dependence of ADCC on antibody concentration for the indicated rituximab antibodies, normalized to the minimum and maximum fluorescence signal for each particular curve, provided by the baselines at low and high antibody concentrations respectively. The curves represent the fits of the data to a sigmoidal dose-response model using nonlinear regression.

[063] Figures 27a - 27b. Cell-based ADCC assay of select trastuzumab (Figure 27a) and rituximab (Figure 27b) Fc variants showing enhancements in potency and efficacy. Both assays used homozygous F158/F158 FcyRllla PBMCs as effector cells at a 25-fold excess to target cells, which were Sk-Br-3 for the trastuzumab assay and WIL2-S for the rituximab assay.
Data were normalized according to the absolute minimal lysis for the assay, provided by the fluorescence signal of target cells in the presence of PBMCs alone (no antibody), and the absolute maximal lysis for the assay, provided by the fluorescence signal of target cells in the presence of Triton X1000, as described in Example 7.

[064] Figure 28. Cell-based ADCC assay of select trastuzumab Fc variants against different cell lines expressing varying levels of the Her2/neu target antigen. ADCC assays were run as described in Example 7, with various cell lines expressing amplified to low levels of Her2/neu receptor, including Sk-Br-3 (1x106 copies), SkOV3 (1x105), OVCAR3(-1x104), and MCF-7 (-3x103 copies). Human PBMCs allotyped as homozygous F1 58/1`158 FcyRIIIa were used at 25-fold excess to target cells.
The bar graph provides ADCC data for WT and Fc variant against the indicated cell lines, normalized to the minimum and maximum fluorescence signal provided by minimal lysis (PBMCs alone) and maximal lysis (Triton X1000).

[065] Figure 29. Cell-based ADCC assays of select Fc variants in the context of trastuzumab using natural killer (NK) cells as effector cells and measuring LDH release to monitor cell lysis. NK cells, allotyped as heterozygous VI58/F158 FcyRIIla, were at an 8-fold excess to Sk-Br-3 breast carcinoma target cells, and the level of cytotoxicity was measured using the LDH
Cytotoxicity Detection Kit, according to the manufacturer's protocol (Roche Diagnostics GmbH, Penzberg, Germany). The graph shows the dose-dependence of ADCC on antibody concentration for the indicated trastuzumab antibodies, normalized to the minimum and maximum fluorescence signal for each particular curve, provided by the baselines at.low and high antibody concentrations respectively. The curves represent the fits of the data to a sigmoidal dose-response model using nonlinear regression.

[066] Figure 30. Cell-based ADCP assay of select variants. The ADCP assay was carried out as described in Example 8, using a co-labeling strategy coupled with flow cytometry. Differentiated macrophages were used as effector cells, and Sk-Br-3 cells were used as target cells. Percent phagocytosis represents the number of co-labeled cells (macrophage + Sk-Br-3) over the total number of Sk-Br-3 in the population (phagocytosed + non-phagocytosed).

[067] Figures 31 a - 31 c. Capacity of select Fc variants to mediate binding and activation of complement. Figure 31 a shows an AlphaScreenTM assay measuring binding of select alemtuzumab Fc variants to C1 q. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model.
Figures 31 b and 31 c show a cell-based assay measuring capacity of select rituximab Fc variants to mediate CDC. CDC assays were performed using Alamar Blue to monitor lysis of Fc variant and WT
rituximab -opsonized WIL2-S lymphoma cells by human serum complement (Quidel, San Diego, CA).
The dose-dependence on antibody concentration of complement-mediated lysis is shown for the indicated rituximab antibodies, normalized to the minimum and maximum fluorescence signal for each particular curve, provided by the baselines at low and high antibody concentrations respectively. The curves represent the fits of the data to a sigmoidal dose-response model using nonlinear regression.
[068] Figure 32. AlphaScreenT"I assay measuring binding of select alemtuzumab Fc variants to bacterial protein A, as described in Example 10. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.

[069] Figure 33. AlphaScreenT"' assay measuring binding of select alemtuzumab Fc variants to human FcRn, as described in Example 10. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.

[070] Figures 34a and 34b. AlphaScreenTM assay measuring binding of select alemtuzumab (Figure 34a) and trastuzumab (Figure 34b) Fc variants to mouse FcyRIII, as described in Example 11.
The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a one site competition model. PBS
was used as a negative control.

[071] Figure 35. Cell-based ADCC assays of select Fc variants in the context of trastuzumab using mouse PBMCs as effector cells. ADCC was measured using the DELFIA EuTDA-based cytotoxicity assay using Sk-Br-3 breast carcinoma target cells and 8-fold excess mouse PBMCs. The bar graph shows the raw fluorescence data for the indicated trastuzumab antibodies at 10 ng/ml. The PBMC
bar indicates basal levels of cytotoxicity in the absence of antibody, and TX
indicates complete cell lysis in the presence of Triton X1000.

[072] Figure 36. AlphaScreenT"' assay measuring binding to human V158 FcyRlIla by select trastuzumab Fc variants expressed in 293T and CHO cells, as described in Example 12. The binding data were normalized to the upper and lower baselines for each particular antibody, and the curves represent the fits of the data to a ohe site competition model. PBS was used as a negative control.
[073] Figures 37a - 37b. Synergy of Fc variants and engineered glycoforms.
Figure 37a presents an AlphaScreenTM assay showing V158 FcyRllla binding by WT and Fc variant (V209, S239/1332E/A330L) trastuzumab expressed in 293T, CHO, and Lec-1 3 CHO cells.
The data were normalized to the upper and lower baselines for each antibody, and the curves represent the fits of the data to a one site competition model. PBS was used as a negative control.
Figure 37b presents a cell-based ADCC assay showing the ability of 239T, CHO, and Lec-1 3 CHO
expressed WT and V209 trastuzumab to mediate ADCC. ADCC was measured using the DELFIA EuTDA-based cytotoxicity assay as described previously, with Sk-Br-3 breast carcinoma target cells. The data show the dose-dependence of ADCC on antibody concentration for the indicated trastuzumab antibodies, normalized to the minimum and maximum fluorescence signal for each particular curve, provided by the baselines at low and high antibody concentrations respectively. The curves represent the fits of the data to a sigmoidal dose-response model using nonlinear regression.

[074] Figures 38a - 38c. Sequences showing improved anti-CD20 antibodies. The light and heavy chain sequences of rituximab are presented in Figure 38a and Figure 38b respectively, and are taken from translated Sequence 3 of US 5,736,137. Relevant positions in Figure 38b are bolded, including S239, V240, V2641, E272, K274, N297, S298, K326, A330, and 1332. Figure 38c shows the improved anti-CD20 antibody heavy chain sequences, with variable positions designated in bold as X1, X2, X3, X4, X5, X6, X7, X8, Z1, and Z2. The table below the sequence provides possible substitutions for these positions. The improved anti-CD20 antibody sequences comprise at least one non-WT amino acid selected from the group of possible substitutions for X1, X2, X3, X4, X5, X6, X7, and X8. These improved anti-CD20 antibody sequences may also comprise a substitution Zi and/or Z2. These positions are numbered according to the EU index as in Kabat, and thus do not correspond to the sequential order in the sequence.

DETAILED DESCRIPTION OF THE INVENTION

[075] In order that the invention may be more completely understood, several definitions are set forth below. Such definitions are meant to encompass grammatical equivalents.

[076] By "ADCC" or "antibody dependent cell-mediated cytotoxicitw' as used herein is meant the cell-mediated reaction wherein nonspecific cytotoxic cells that express FcyRs recognize bound antibody on a target cell and subsequently cause lysis of the target cell.

[077] By "ADCP" or antibody dependent cell-mediated phagocytosis as used herein is meant the cell-mediated reaction wherein nonspecific cytotoxic cells that express FcyRs recognize bound antibody on a target cell and subsequently cause phagocytosis of the target cell.

[078] By "amino acid modification" herein is meant an amino acid substitution, insertion, and/or deletion in a polypeptide sequence. The preferred amino acid modification herein is a substitution.
By "amino acid substitution" or "substitution" herein is meant the replacement of an amino acid at a particular position in a parent polypeptide sequence with another amino acid.
For example, the substitution 1332E refers to a variant polypeptide, in this case an Fc variant, in which the isoleucine at position 332 is replaced with a glutamic acid.

[079] By "antibod 'herein is meant a protein consisting of one or more polypeptides substantially encoded by all or part of the recognized immunoglobulin genes. The recognized immunoglobulin genes, for example in humans, include the kappa (K), lambda (k), and heavy chain genetic loci, which together comprise the myriad variable region genes, and the constant region genes mu (u), delta (S), gamma (y), sigma (s), and alpha (a) which encode the IgM, IgD, IgG, IgE, and IgA isotypes respectively. Antibody herein is meant to include full length antibodies and antibody fragments, and may refer to a natural antibody from any organism, an engineered antibody, or an antibody generated recombinantly for experimental, therapeutic, or other purposes as further defined below. The term "antibody" includes antibody fragments, as are known in the art, such as Fab, Fab', F(ab')2, Fv, scFv, or other antigen-binding subsequences of antibodies, either produced by the modification of whole antibodies or those synthesized de novo using recombinant DNA technologies.
Particularly preferred are full length antibodies that comprise Fc variants as described herein. The term "antibody"
comprises monoclonal and polyclonal antibodies. Antibodies can be antagonists, agonists, neutralizing, inhibitory, or stimulatory.
[080] The antibodies of the present invention may be nonhuman, chimeric, humanized, or fully human. For a description of the concepts of chimeric and humanized antibodies see Clark et al., 2000 and references cited therein (Clark, 2000, Immunol Today 21:397-402).
Chimeric antibodies comprise the variable region of a nonhuman antibody, for example VH and VL
domains of mouse or rat origin, operably linked to the constant region of a human antibody (see for example U.S. Patent No. 4,816,567). In a preferred embodiment, the antibodies of the present invention are humanized.
By "humanized" antibody as used herein is meant an antibody comprising a human framework region (FR) and one or more complementarity determining regions (CDR's) from a non-human (usually mouse or rat) antibody. The non-human antibody providing the CDR's is called the "donor' and the human immunoglobulin providing the framework is called the "acceptor".
Humanization relies principally on the grafting of donor CDRs onto acceptor (human) VL and VH
frameworks (Winter US
5225539). This strategy is referred to as "CDR grafting". "Backmutation" of selected acceptor framework residues to the corresponding donor residues is often required to regain affinity that is lost in the initial grafted construct (US 5530101; US 5585089; US 5693761; US
5693762; US 6180370;
US 5859205; US 5821337; US 6054297; US 6407213). The humanized antibody optimally also will comprise at least a portion of an immunoglobulin constant region, typically that of a human immunoglobulin, and thus will typically comprise a human Fc region. Methods for humanizing non-human antibodies are well known in the art, and can be essentially performed following the method of Winter and co-workers (Jones et al., 1986, Nature 321:522-525; Riechmann et aL,1988, Nature 332:323-329; Verhoeyen et al., 1988, Science, 239:1534-1536). Additional examples of humanized murine monoclonal antibodies are also known in the art, for example antibodies binding human protein C (O'Connor et al., 1998, Protein Eng 11:321-8), interleukin 2 receptor (Queen et aL, 1989, Proc Natl Acad Sci, USA 86:10029-33), and human epidermal growth factor receptor 2 (Carter et al., 1992, Proc Natl Acad Sci USA 89:4285-9). In an alternate embodiment, the antibodies of the present invention may be fully human, that is the sequences of the antibodies are completely or substantially human. A number of methods are known in the art for generating fully human antibodies, including the use of transgenic mice (Bruggemann et aL, 1997, Curr Opin Biotechnol 8:455-458) or human antibody libraries coupled with selection methods (Griffiths et al., 1998, Curr Opin Biotechnol 9:102-108).
[081] Specifically included within the definition of "antibody" are aglycosylated antibodies. By "aglycosylated antibody" as used herein is meant an antibody that lacks carbohydrate attached at position 297 of the Fc region, wherein numbering is according to the EU system as in Kabat. The aglycosylated antibody may be a deglycosylated antibody, that is an antibody for which the Fc carbohydrate has been removed, for example chemically or enzymatically.
Alternatively, the aglycosylated antibody may be a nonglycosylated or unglycosylated antibody, that is an antibody that was expressed without Fc carbohydrate, for example by mutation of one or residues that encode the glycosylation pattern or by expression in an organism that does not attach carbohydrates to proteins, for example bacteria.

[082] Specifically included within the definition of "antibody" are full-length antibodies that contain an Fc variant portion. By "full length antibody" herein is meant the structure that constitutes the natural biological form of an antibody, including variable and constant regions. For example, in most mammals, including humans and mice, the full length antibody of the IgG class is a tetramer and consists of two identical pairs of two immunoglobulin chains, each pair having one light and one heavy chain, each light chain comprising immunoglobulin domains VL and CL, and each heavy chain comprising immunoglobulin domains VH, Cy1, Cy2, and Cy3. In some mammals, for example in camels and llamas, IgG antibodies may consist of only two heavy chains, each heavy chain comprising a variable domain attached to the Fc region. By "Igg' as used herein is meant a polypeptide belonging to the class of antibodies that are substantially encoded by a recognized immunoglobulin gamma gene. In humans this class comprises IgG1, IgG2, IgG3, and IgG4. In mice this class comprises IgG1, IgG2a, IgG2b, IgG3.

[083] By "amino acid" and "amino acid identity" as used herein is meant one of the 20 naturally occurring amino acids or any non-natural analogues that may be present at a specific, defined position. By "protein" herein is meant at least two covalently attached amino acids, which includes proteins, polypeptides, oligopeptides and peptides. The protein may be made up of naturally occurring amino acids and peptide bonds, or synthetic peptidomimetic structures, i.e.
"analogs", such as peptoids (see Simon et aL, 1992, Proc Natl Acad Sci USA 89(20):9367) particularly when LC
peptides are to be administered to a patient. Thus "amino acid", or "peptide residue", as used herein means both naturally occurring and synthetic amino acids. For example, homophenylalanine, citrulline and noreleucine are considered amino acids for the purposes of the invention.
"Amino acid" also includes imino acid residues such as proline and hydroxyproline. The side chain may be in either the (R) or the (S) configuration. In the preferred embodiment, the amino acids are in the (S) or L-configuration. If non-naturally occurring side chains are used, non-amino acid substituents may be used, for example to prevent or retard in vivo degradation.

[084] By "computational screening method" herein is meant any method for designing one or more mutations in a protein, wherein said method utilizes a computer to evaluate the energies of the interactions of potential amino acid side chain substitutions with each other and/or with the rest of the protein. As will be appreciated by those skilled in the art, evaluation of energies, referred to as energy calculation, refers to some method of scoring one or more amino acid modifications. Said method may involve a physical or chemical energy term, or may involve knowledge-, statistical-, sequence-based energy terms, and the like. The calculations that compose a computational screening method are herein referred to as "computational screening calculations".

[085] By "effector function" as used herein is meant a biochemical event that results from the interaction of an antibody Fc region with an Fc receptor or ligand. Effector functions include but are not limited to ADCC, ADCP, and CDC. By "effector cell" as used herein is meant a cell of the immune system that expresses one or more Fc receptors and mediates one or more effector functions.
Effector cells include but are not limited to monocytes, macrophages, neutrophils, dendritic cells, eosinophils, mast cells, platelets, B cells, large granular lymphocytes, Langerhans' cells, natural killer (NK) cells, and yy T cells, and may be from any organism including but not limited to humans, mice, rats, rabbits, and monkeys. By "librar 'herein is meant a set of Fc variants in any form, including but not limited to a list of nucleic acid or amino acid sequences, a list of nucleic acid or amino acid substitutions at variable positions, a physical library comprising nucleic acids that encode the library sequences, or a physical library comprising the Fc variant proteins, either in purified or unpurified form.

[086] By "Fc", "Fc region", FC polypeptide", etc. as used herein is meant an antibody as defined herein that includes the polypeptides comprising the constant region of an antibody excluding the first constant region immunoglobulin domain. Thus Fc refers to the last two constant region immunoglobulin domains of IgA, lgD, and IgG, and the last three constant region immunoglobulin domains of IgE and IgM, and the flexible hinge N-terminal to these domains.
For IgA and IgM Fc may include the J chain. For IgG, as illustrated in Figure 1, Fc comprises immunoglobulin domains Cgamma2 andCgamma3 (Cy2 and Cy3) and the hinge between Cgammal (Cyl) and Cgamma2 (Cy2). Although the boundaries of the Fc region may vary, the human IgG heavy chain Fc region is usually defined to comprise residues C226 or P230 to its carboxyl-terminus, wherein the numbering is according to the EU index as in Kabat. Fc may refer to this region in isolation, or this region in the context of an antibody, antibody fragment, or Fc fusion. An Fc may be an antibody, Fc fusion, or an protein or protein domain that comprises Fc. Particularly preferred are Fc variants, which are non-naturally occurring variants of an Fc.

[087] By "Fc fusion" as used herein is meant a protein wherein one or more polypeptides is operably linked to an Fc region or a derivative thereof. Fc fusion is herein meant to be synonymous with the terms "immunoadhesin", "Ig fusion", "Ig chimera", and "receptor globulin" (sometimes with dashes) as used in the prior art (Chamow et al., 1996, Trends Biotechnol 14:52-60; Ashkenazi at al., 1997, Curr Opin Immunol 9:195-200). An Fc fusion combines the Fc region of an immunoglobulin with a fusion partner, which in general can be any protein or small molecule.
The role of the non-Fc part of an Fc fusion, i.e. the fusion partner, is to mediate target binding, and thus it is functionally analogous to the variable regions of an antibody. Virtually any protein or small molecule may be linked to Fc to generate an Fc fusion. Protein fusion partners may include, but are not limited to, the target-binding region of a receptor, an adhesion molecule, a ligand, an enzyme, a cytokine, a chemokine, or some other protein or protein domain. Small molecule fusion partners may include any therapeutic agent that directs the Fc fusion to a therapeutic target. Such targets may be any molecule, preferrably an extracellular receptor, that is implicated in disease. Two families of surface receptors that are targets of a number of approved small molecule drugs are G-Protein Coupled Receptors (GPCRs), and ion channels, including K+, Na+, Ca+ channels. Nearly 70% of all drugs currently marketed worldwide target GPCRs. Thus the Fc variants of the present invention may be fused to a small molecule that targets, for example, one or more GABA
receptors, purinergic receptors, adrenergic receptors, histaminergic receptors, opiod receptors, chemokine receptors, glutamate receptors, nicotinic receptors, the 5HT (serotonin) receptor, and estrogen receptors. A

fusion partner may be a small-molecule mimetic of a protein that targets a therapeutically useful target. Specific examples of particular drugs that may serve as Fc fusion partners can be found in L.
S. Goodman et aL, Eds., Goodman and Gilman's The Pharmacological Basis of Therapeutics (McGraw-Hill, New York, ed. 9, 1996). Fusion partners include not only small molecules and proteins that bind known targets for existing drugs, but orphan receptors that do not yet exist as drug targets.
The completion of the genome and proteome projects are proving to be a driving force in drug discovery, and these projects have yielded a trove of orphan receptors. There is enormous potential to validate these new molecules as drug targets, and develop protein and small molecule therapeutics that target them. Such protein and small molecule therapeutics are contemplated as Fc fusion partners that employ the Fc variants of the present invention. A variety of linkers, defined and described below, may be used to covalently link Fc to a fusion partner to generate an Fc fusion.

[088] By "Fc gamma receptor" or " FcyR" as used herein is meant any member of the family of proteins that bind the IgG antibody Fc region and are substantially encoded by the FcyR genes. In humans this family includes but is not limited to FcyRI (CD64), including isoforms FcyRla, FcyRlb, and FcyRlc; FcyRII (CD32), including isoforms FcyRIIa (including allotypes H131 and R131), FcyRllb (including FcyRIIb-1 and FcyRllb-2), and FcyRllc; and FcyRIll (CD16), including isoforms FcyRIIIa (including allotypes V158 and F158) and FcyRlllb (including allotypes FcyRlllb-NA1 and FcyRlllb-NA2) (Jefferis et aL, 2002, Immunol Lett 82:57-65), as well as any undiscovered human FcyRs or FcyR isoforms or allotypes. An FcyR may be from any organism, including but not limited to humans, mice, rats, rabbits, and monkeys. Mouse FcyRs include but are not limited to FcyRl (CD64), FcyRll (CD32), FcyRlll (CD16), and FcyRIII-2 (CD16-2), as well as any undiscovered mouse FcyRs or FcyR
isoforms or allotypes.

[089] By "Fc ligand" as used herein is meant a molecule, preferably a polypeptide, from any organism that binds to the Fc region of an antibody to form an Fc-ligand complex. Fc ligands include but are not limited to FcyRs, FcyRs, FcyRs, FcRn, C1 q, C3, mannan binding lectin, mannose receptor, staphylococcal protein A, streptococcal protein G, and viral FcyR. Fc ligands also include Fc receptor homologs (FcRH), which are a family of Fc receptors that are homologous to the FcyRs (Davis et al., 2002, Immunological Reviews 190:123-136). Fc ligands may include undiscovered molecules that bind Fc.

[090] By "" as used herein is meant a polypeptide belonging to the class of antibodies that are substantially encoded by a recognized immunoglobulin gamma gene. In humans this class comprises IgG1, IgG2, IgG3, and IgG4. In mice this class comprises IgG1, IgG2a, IgG2b, IgG3. By "immunoglobulin (1g)' herein is meant a protein consisting of one or more polypeptides substantially encoded by immunoglobulin genes. Immunoglobulins include but are not limited to antibodies.
Immunoglobulins may have a number of structural forms, including but not limited to full length antibodies, antibody fragments, and individual immunoglobulin domains. By "immunoglobulin (Ig) domain" herein is meant a region of an immunoglobulin that exists as a distinct structural entity as ascertained by one skilled in the art of protein structure. Ig domains typically have a characteristic ^-sandwich folding topology. The known Ig domains in the IgG class of antibodies are VH, C71, C72, C73, VL, and CL.

[091] By "parent polypeptide" or "precursor polypeptide" (including Fc parent or precursors) as used herein is meant a polypeptide that is subsequently modified to generate a variant. Said parent polypeptide may be a naturally occurring polypeptide, or a variant or engineered version of a naturally occurring polypeptide. Parent polypeptide may refer to the polypeptide itself, compositions that comprise the parent polypeptide, or the amino acid sequence that encodes it.
Accordingly, by "parent Fc polypeptide" as used herein is meant an unmodified Fc polypeptide that is modified to generate a variant, and by "parent antibody' as used herein is meant an unmodified antibody that is modified to generate a variant antibody.

[092] As outlined above, certain positions of the Fc molecule can be altered.
By " op sition" as used herein is meant a location in the sequence of a protein. Positions may be numbered sequentially, or according to an established format, for example the EU index as in Kabat. For example, position 297 is a position in the human antibody IgG1. Corresponding positions are determined as outlined above, generally through alignment with other parent sequences.

[093] By "residue" as used herein is meant a position in a protein and its associated amino acid identity. For example, Asparagine 297 (also referred to as Asn297, also referred to as N297) is a residue in the human antibody IgGI.

[094] By "target antigen" as used herein is meant the molecule that is bound specifically by the variable region of a given antibody. A target antigen may be a protein, carbohydrate, lipid, or other chemical compound.

[095] By "target cell" as used herein is meant a cell that expresses a target antigen.

[096] By "variable region" as used herein is meant the region of an immunoglobulin that comprises one or more Ig domains substantially encoded by any of the VK, VX, and/or VH
genes that make up the kappa, lambda, and heavy chain immunoglobulin genetic loci respectively.

[097] By "variant polypeptide" as used herein is meant a polypeptide sequence that differs from that of a parent polypeptide sequence by virtue of at least one amino acid modification. Variant polypeptide may refer to the polypeptide itself, a composition comprising the polypeptide, or the amino sequence that encodes it. Preferably, the variant polypeptide has at least one amino acid modification compared to the parent polypeptide, e.g. from about one to about ten amino acid modifications, and preferably from about one to about five amino acid modifications compared to the parent. The variant polypeptide sequence herein will preferably possess at least about 80%
homology with a parent polypeptide sequence, and most preferably at least about 90% homology, more preferably at least about 95% homology. Accordingly, by "Fc variant" as used herein is meant an Fc sequence that differs from that of a parent Fc sequence by virtue of at least one amino acid modification. An Fc variant may only encompass an Fc region, or may exist in the context of an antibody, Fc fusion, or other polypeptide that is substantially encoded by Fc.
Fc variant may refer to the Fc polypeptide itself, compositions comprising the Fc variant polypeptide, or the amino acid sequence that encodes it. In a preferred embodiment, the variant proteins of the invention comprise an Fc variant, as described herein, and as such, may comprise an antibody (and the corresponding derivatives) with the Fc variant, or an Fc fusion protein that comprises the Fc variant. In addition, in some cases, the Fc is a variant as compared to a wild-type Fc, or to a "parent' variant.

[098] For all positions discussed in the present invention, numbering of an immunoglobulin heavy chain is according to the EU index (Kabat et al., 1991, Sequences of Proteins of Immunological Interest, 5th Ed., United States Public Health Svice, National Institutes of Health, Bethesda). The "EU
index as in Kabat" refers to the residue numbering of the human IgG1 EU
antibody.

[099] The Fc variants of the present invention may be optimized for a variety of properties.
Properties that may be optimized include but are not limited to enhanced or reduced affinity for an FcyR. In a preferred embodiment, the Fc variants of the present invention are optimized to possess enhanced affinity for a human activating FcyR, preferably FcyRl, FcyRI la, FcyRI Ic, FcyRllla, and FcyRlllb, most preferably FcyRlIla. In an alternately preferred embodiment, the Fc variants are optimized to possess reduced affinity for the human inhibitory receptor FcyRllb. These preferred embodiments are anticipated to provide antibodies and Fc fusions with enhanced therapeutic properties in humans, for example enhanced effector function and greater anti-cancer potency. In an alternate embodiment, the Fc variants of the present invention are optimized to have reduced or ablated affinity for a human FcyR, including but not limited to FcyRI, FcyRlla, FcyRIIb, FcyRllc, FcyRIIIa, and FcyRI Ilb. These embodiments are anticipated to provide antibodies and Fc fusions with enhanced therapeutic properties in humans, for example reduced effector function and reduced .toxicity. Preferred embodiments comprise optimization of Fc binding to a human FcyR, however in alternate embodiments the Fc variants of the present invention possess enhanced or reduced affinity for FcyRs from nonhuman organisms, including but not limited to mice, rats, rabbits, and monkeys. Fc variants that are optimized for binding to a nonhuman FcyR may find use in experimentation. For example, mouse models are available for a variety of diseases that enable testing of properties such as efficacy, toxicity, and pharmacokinetics for a given drug candidate. As is known in the art, cancer cells can be grafted or injected into mice to mimic a human cancer, a process referred to as xenografting. Testing of antibodies or Fc fusions that comprise Fc variants that are optimized for one or more mouse FcyRs, may provide valuable information with regard to the efficacy of the antibody or Fc fusion, its mechanism of action, and the like. The Fc variants of the present invention may also be optimized for enhanced functionality and/or solution properties in aglycosylated form. In a preferred embodiment, the aglycosylated Fc variants of the present invention bind an Fc ligand with greater affinity than the aglycosylated form of the parent Fc polypeptide. Said Fc ligands include but are not limited to FcyRs, C1q, FcRn, and proteins A and G, and may be from any source including but not limited to human, mouse, rat, rabbit, or monkey, preferably human. In an alternately preferred embodiment, the Fc variants are optimized to be more stable and/or more soluble than the aglycosylated form of the parent Fc polypeptide. An Fc variant that is engineered or predicted to display any of the aforementioned optimized properties is herein referred to as an "optimized Fc variant".

[100] The Fc variants of the present invention may be derived from parent Fc polypeptides that are themselves from a wide range of sources. The parent Fc polypeptide may be substantially encoded by one or more Fc genes from any organism, including but not limited to humans, mice, rats, rabbits, camels, llamas, dromedaries, monkeys, preferably mammals and most preferably humans and mice.
In a preferred embodiment, the parent Fc polypeptide composes an antibody, referred to as the parent antibody. The parent antibody may be fully human, obtained for example using transgenic mice (Bruggemann et al., 1997, Curr Opin Biotechnol8:455-458) or human antibody libraries coupled with selection methods (Griffiths et al., 1998, Curr Opin Biotechnol 9:102-108). The parent antibody need not be naturally occurring. For example, the parent antibody may be an engineered antibody, including but not limited to chimeric antibodies and humanized antibodies (Clark, 2000, Immunol Today 21:397-402). The parent antibody may be an engineered variant of an antibody that is substantially encoded by one or more natural antibody genes. In one embodiment, the parent antibody has been affinity matured, as is known in the art. Alternatively, the antibody has been modified in some other way, for example as described in USSN 10/339788, filed on March 3, 2003.
[101] The Fc variants of the present invention may be substantially encoded by immunoglobulin genes belonging to any of the antibody classes. In a preferred embodiment, the Fc variants of the present invention find use in antibodies or Fc fusions that comprise sequences belonging to the IgG
class of antibodies, including IgG1, IgG2, IgG3, or IgG4. In an alternate embodiment the Fc variants of the present invention find use in antibodies, or Fc fusions that comprise sequences belonging to the IgA (including subclasses IgA1 and IgA2), IgD, IgE, IgG, or IgM classes of antibodies. The Fc variants of the present invention may comprise more than one protein chain.
That is, the present invention may find use in an antibody or Fc fusion that is a monomer or an oligomer, including a homo- or hetero-oligomer.

[102] In a preferred embodiment, the antibodies of the invention are based on human sequences, and thus human sequences are used as the "base" sequences, against which other sequences,- such as rat, mouse, and monkey sequences are compared. In order to establish homology to primary sequence or structure, the amino acid sequence of a precursor or parent Fc polypeptide is directly compared to the human Fc sequence outlined herein. After aligning the sequences, using one or more of the homology alignment programs known in the art (for example using conserved residues as between species), allowing for necessary insertions and deletions in order to maintain alignment (i.e., avoiding the elimination of conserved residues through arbitrary deletion and insertion), the residues equivalent to particular amino acids in the primary sequence of human Fc are defined. Alignment of conserved residues preferably should conserve 100% of such residues. However, alignment of greater than 75% or as little as 50% of conserved residues is also adequate to define equivalent residues (sometimes referred to as "corresponding residues"). Equivalent residues may also be defined by determining homology at the level of tertiary structure for an Fc polypeptide whose tertiary structure has been determined. Equivalent residues are defined as those for which the atomic coordinates of two or more of the main chain atoms of a particular amino acid residue of the parent or precursor (N on N, CA on CA, C on C and 0 on 0) are within 0.13 nm and preferably 0.1 nm after alignment. Alignment is achieved after the best model has been oriented and positioned to give the maximum overlap of atomic coordinates of non-hydrogen protein atoms of the Fc polypeptide.
[103] The Fc variants of the present invention may be combined with other Fc modifications, including but not limited to modifications that alter effector function or interaction with one or more Fc ligands. Such combination may provide additive, synergistic, or novel properties in antibodies or Fc fusions. In one embodiment, the Fc variants of the present invention may be combined with other known Fc variants (Duncan et al., 1988, Nature 332:563-564; Lund et al., 1991, J Immunol 147:2657-2662; Lund et al., 1992, Mol Immunol 29:53-59; Alegre et al., 1994, Transplantation 57:1537-1543;
Hutchins et al., 1995, Proc Nat/ Acad Sci U S A 92:11980-11984; Jefferis et al., 1995, Immunol Lett 44:111-117; Lund et al., 1995, Faseb J 9:115-119; Jefferis et al., 1996, Immunol Lett 54:101-104;
Lund et al., 1996, J Immunol 157:4963-4969; Armour et aL, 1999, Eur J Immunol 29:2613-2624;
Idusogie et al., 2000, J Immunol 164:4178-4184; Reddy et aL, 2000, J Immunol 164:1925-1933; Xu et al., 2000, Cell Immunol200:16-26; Idusogie et al., 2001, J Immunol 166:2571-2575; Shields et al., 2001, J BIo! Chem 276:6591-6604; Jefferis et al., 2002, Immunol Left 82:57-65;
Presta et al., 2002, Biochem Soc Trans 30:487-490; Hinton et al., 2004, J Biol Chem 279:6213-6216) (US 5,624,821; US
5,885,573; US 6,194,551; PCT WO 00/42072; PCT WO 99/58572; US 2004/0002587 Al). In an alternate embodiment, the Fc variants of the present invention are incorporated into an antibody or Fc fusion that comprises one or more engineered glycoforms. By "engineered glycoform" as used herein is meant a carbohydrate composition that is covalently attached to an Fc polypeptide, wherein said carbohydrate composition differs chemically from that of a parent Fc polypeptide. Engineered glycoforms may be useful for a variety of purposes, including but not limited to enhancing or reducing effector function. Engineered glycoforms may be generated by a variety of methods known in the art (Umana et al., 1999, Nat Biotechnol 17:176-180; Davies et al., 2001, Biotechnol Bioeng 74:288-294;
Shields et aL, 2002, J Blol Chem 277:26733-26740; Shinkawa et al., 2003, J
Biol Chem 278:3466-3473); (US 6,602,684; USSN 10/277,370; USSN 10/113,929; PCT WO 00/61739A1; PCT
WO
01/29246A1; PCT WO 02/31140A1; PCT WO 02/30954A1); (Potelligenttm technology [Biowa, Inc., Princeton, NJ]; GlycoMAbT"" glycosylation engineering technology [GLYCART
biotechnology AG, Zurich, Switzerland]). Many of these techniques are based on controlling the level of fucosylated and/or bisecting oligosaccharides that are covalently attached to the Fc region, for example by expressing an Fc polypeptide in various organisms or cell lines, engineered or otherwise (for example '33 Lec-1 3 CHO cells or rat hybridoma YB2/0 cells), by regulating enzymes involved in the glycosylation pathway (for example FUT8 [al,6-fucosyltranserase] and/or 131-4- N-acetylglucosaminyltransferase III
[GnT[II]), or by modifying carbohydrate(s) after the Fc polypeptide has been expressed. Engineered glycoform typically refers to the different carbohydrate or oligosaccharide;
thus an Fc polypeptide, for example an antibody or Fc fusion, may comprise an engineered glycoform.
Alternatively, engineered glycoform may refer to the Fc polypeptide that comprises the different carbohydrate or oligosaccharide. Thus combinations of the Fc variants of the present invention with other Fc modifications, as well as undiscovered Fc modifications, are contemplated with the goal of generating novel antibodies or Fc fusions with optimized properties.

[104] The Fc variants of the present invention may find use in an antibody. By "antibody of the present invention" as used herein is meant an antibody that comprises an Fc variant of the present invention. The present invention may, in fact, find use in any protein that comprises Fc, and thus application of the Fc variants of the present invention is not limited to antibodies. The Fc variants of the present invention may find use in an Fc fusion. By "Fc fusion of the present invention" as used herein refers to an Fc fusion that comprises an Fc variant of the present invention. Fc fusions may comprise an Fc variant of the present invention operably linked to a cytokine, soluble receptor domain, adhesion molecule, ligand, enzyme, peptide, or other protein or protein domain, and include but are not limited to Fc fusions described in US 5,843,725; US 6,018,026; US
6,291,212; US
6,291,646; US 6,300,099; US 6,323,323; PCT WO 00/24782; and in (Chamow et al., 1996, Trends Biotechnol 14:52-60; Ashkenazi et aL, 1997, Curr Opin Immunol 9:195-200).

[105] Virtually any antigen may be targeted by the antibodies and fusions of the present invention, including but not limited to the following list of proteins, subunits, domains, motifs, and epitopes belonging to the following list of proteins: CD2; CD3, CD3E, CD4, CDI 1, CD1Ia, CD14, CD16, CD18, CD19, CD20, CD22, CD23, CD25, CD28, CD29, CD30, CD32, CD33 (p67 protein), CD38, CD40, CD40L, CD52, CD54, CD56, CD80, CD147, GD3, IL-1, IL-1R, IL-2, IL-2R, IL-4, IL-5, IL-6, IL-6R, IL-8, IL-12, IL-15, IL-18, IL-23, interferon alpha, interferon beta, interferon gamma; TNF-alpha, TNFbeta2, TNFc, TNFalphabeta, TNF-RI, TNF-RIl, FasL, CD27L, CD30L, 4-1 BBL, TRAIL, RANKL, TWEAK, APRIL, BAFF, LIGHT, VEGI, OX40L, TRAIL Receptor-1, Al Adenosine Receptor, Lymphotoxin Beta Receptor, TACI, BAFF-R, EPO; LFA-3, ICAM-1, ICAM-3, EpCAM, integrin betal, integrin beta2, integrin alpha4/beta7, integrin alpha2, integrin alpha3, integrin alpha4, integrin alpha5, integrin alpha6, integrin alphav, alphaVbeta3 integrin, FGFR-3, Keratinocyte.
Growth Factor, VLA-1, VLA-4, L-selectin, anti-Id, E-selectin, HLA, HLA-DR, CTLA-4, T cell receptor, B7-1, B7-2, VNRintegrin, TGFbetal, TGFbeta2, eotaxinl, BLyS (B-lymphocyte Stimulator), complement C5, IgE, factor VII, CD64, CBL, NCA 90, EGFR (ErbB-1), Her2/neu (ErbB-2), Her3 (ErbB-3), Her4 (ErbB-4), Tissue Factor, VEGF, VEGFR, endothelin receptor, VLA-4, Hapten NP-cap or NIP-cap, T
cell receptor alpha/beta, E-selectin, digoxin, placental alkaline phosphatase (PLAP) and testicular PLAP-like alkaline phosphatase, transferrin receptor, Carcinoembryonic antigen (CEA), CEACAM5, HMFG

PEM, mucin MUC1, MUC18, Heparanase I, human cardiac myosin, tumor-associated glycoprotein-72 (TAG-72), tumor-associated antigen CA 125, Prostate specific membrane antigen (PSMA), High molecular weight melanoma-associated antigen (HMW-MAA), carcinoma-associated antigen, Gcoprotein Ilb/Illa (GPllb/Illa), tumor-associated antigen expressing Lewis Y
related carbohydrate, human cytomegalovirus (HCMV) gH envelope glycoprotein, HIV gpl20, HCMV, respiratory syncital virus RSV F, RSVF Fgp, VNRintegrin, IL-8, cytokeratin tumor-associated antigen, Hep B gp120, CMV, gpllbllla, HIV 1116 gp120 V3 loop, respiratory syncytial virus (RSV) Fgp, Herpes simplex virus (HSV) gD glycoprotein, HSV gB glycoprotein, HCMV gB envelope glycoprotein, and Clostridium perfringens toxin.

[106] One skilled in the art will appreciate that the aforementioned list of targets refers not only to specific proteins and biomolecules, but the biochemical pathway or pathways that comprise them.
For example, reference to CTLA-4 as a target antigen implies that the ligands and receptors that make up the T cell co-stimulatory pathway, including CTLA-4, B7-1, B7-2, CD28, and any other undiscovered ligands or receptors that bind these proteins, are also targets.
Thus target as used herein refers not only to a specific biomolecule, but the set of proteins that interact with said target and the members of the biochemical pathway to which said target belongs. One skilled in the art will further appreciate that any of the aforementioned target antigens, the ligands or receptors that bind them, or other members of their corresponding biochemical pathway, may be operably linked to the Fc variants of the present invention in order to generate an Fc fusion. Thus for example, an Fc fusion that targets EGFR could be constructed by operably linking an Fc variant to EGF, TGFa, or any other ligand, discovered or undiscovered, that binds EGFR. Accordingly, an Fc variant of the present invention could be operably linked to EGFR in order to generate an Fc fusion that binds EGF, TGFa, or any other ligand, discovered or undiscovered, that binds EGFR. Thus virtually any polypeptide, whether a ligand, receptor, or some other protein or protein domain, including but not limited to the aforementioned targets and the proteins that compose their corresponding biochemical pathways, may be operably linked to the Fc variants of the present invention to develop an Fc fusion.

[107] A number of antibodies and Fc fusions that are approved for use, in clinical trials, or in development may benefit from the Fc variants of the present invention. Said antibodies and Fc fusions are herein referred to as "clinical products and candidates". Thus in a preferred embodiment, the Fc variants of the present invention may find use in a range of clinical products and candidates.
For example, a number of antibodies that target CD20 may benefit from the Fc variants of the present invention. For example the Fc variants of the present invention may find use in an antibody that is substantially similar to rituximab (Rituxan , IDEC/Genentech/Roche) (see for example US
5,736,137), a chimeric anti-CD20 antibody approved to treat Non-Hodgkin's lymphoma; HuMax-CD20, an anti-CD20 currently being developed by Genmab, an anti-CD20 antibody described in US
5,500,362, AME-133 (Applied Molecular Evolution), hA20 (Immunomedics, Inc.), and HumaLYM
(Intracel). A number of antibodies that target members of the family of epidermal growth factor receptors, including EGFR (ErbB-1), Her2/neu (ErbB-2), Her3 (ErbB-3), Her4 (ErbB-4), may benefit from the Fc variants of the present invention. For example the Fc variants of the present invention may find use in an antibody that is substantially similar to trastuzumab (Herceptin , Genentech) (see for example US 5,677,171), a humanized anti-Her2/neu antibody approved to treat breast cancer;
pertuzumab (rhuMab-2C4, OmnitargTM), currently being developed by Genentech;
an anti-Her2 antibody described in US 4,753,894; cetuximab (Erbitux , Imclone) (US
4,943,533; PCT WO
96/40210), a chimeric anti-EGFR antibody in clinical trials for a variety of cancers,; ABX-EGF (US
6,235,883), currently being developed by Abgenix/lmmunex/Amgen; HuMax-EGFr (USSN
10/172,317), currently being developed by Genmab; 425, EMD55900, EMD62000, and (Merck KGaA) (US 5558864; Murthy et al. 1987, Arch Biochem Biophys. 252(2):549-60; Rodeck et al., 1987, J Cell Biochem. 35(4):315-20; Kettleborough et at., 1991, Protein Eng. 4(7):773-83); ICR62 (Institute of Cancer Research) (PCT WO 95/20045; Modjtahedi et al., 1993, J.
Cell Biophys. 1993, 22(1-3):129-46; Modjtahedi et al., 1993, BrJ Cancer. 1993, 67(2):247-53;
Modjtahedi et al, 1996, BrJ
Cancer, 73(2):228-35; Modjtahedi et at, 2003, Int J Cancer, 105(2):273-80);
TheraClM hR3 (YM
Biosciences, Canada and Centro de Immunologia Molecular, Cuba (US 5,891,996;
US 6, 506,883;
Mateo et al, 1997, Immunotechnology, 3(1):71-81); mAb-806 (Ludwig Institue for Cancer Research, Memorial Sloan-Kettering) (Jungbluth et al. 2003, Proc Nat! Acad Sci U S A.
100(2):639-44); KSB-1 02 (KS Biomedix); MR1-1 (IVAX, National Cancer Institute) (PCT WO 0162931A2); and (Scancell) (PCT WO 01/88138). In another preferred embodiment, the Fc variants of the present invention may find use in alemtuzumab (Campath , Millenium), a humanized monoclonal antibody currently approved for treatment of B-cell chronic lymphocytic leukemia. The Fc variants of the present invention may find use in a variety of antibodies or Fc fusions that are substantially similar to other clinical products and candidates, including but not limited to muromonab-CD3 (Orthoclone OKT3 ), an anti-CD3 antibody developed by Ortho Biotech/Johnson & Johnson, ibritumomab tiuxetan (Zevalin ), an anti-CD20 antibody developed by IDEC/Schering AG, gemtuzumab ozogamicin (Mylotarg ), an anti-CD33 (p67 protein) antibody developed by Celitech/Wyeth, alefacept (Amevive ), an anti-LFA-3 Fc fusion developed by Biogen), abciximab (ReoPro ), developed by Centocor/Lilly, basiliximab (Simulect ), developed by Novartis, palivizumab (Synagis ), developed by Medimmune, infliximab (Remicade ), an anti-TNFalpha antibody developed by Centocor, adalimumab (Humira ), an anti-TNFalpha antibody developed by Abbott, HumicadeN, an anti-TNFalpha antibody developed by Celltech, etanercept (Enbrel ), an anti-TNFalpha Fc fusion developed by Immunex/Amgen, ABX-CBL, an anti-CD147 antibody being developed by Abgenix, ABX-IL8, an anti-IL8 antibody being developed by Abgenix, ABX-MAI, an anti-MUC18 antibody being developed by Abgenix, Pemtumomab (R1549, 90Y-muHMFG1), an anti-MUC1 In development by Antisoma, Therex (RI 550), an anti-MUCI antibody being developed by Antisoma, AngioMab (AS1405), being developed by Antisoma, HuBC-1, being developed by Antisoma, Thioplatin (AS1407) being developed by Antisoma, Antegren (natalizumab), an anti-alpha-4-beta-1 (VLA-4) and alpha-4-beta-7 antibody being developed by Biogen, VLA-1 mAb, an anti-VLA-1 integrin antibody being developed by Biogen, LTBR mAb, an anti-lymphotoxin beta receptor (LTBR) antibody being developed by Biogen, CAT-152, an anti-TGF02 antibody being developed by Cambridge Antibody Technology, J695, an anti-IL-12 antibody being developed by Cambridge Antibody Technology and Abbott, CAT-192, an anti-TGFp1 antibody being developed by Cambridge Antibody Technology and Genzyme, CAT-213, an anti-Eotaxin1 antibody being developed by Cambridge Antibody Technology, LymphoStat-BTM an anti-Blys antibody being developed by Cambridge Antibody Technology and Human Genome Sciences Inc., TRAIL-RImAb, an anti-TRAIL-R1 antibody being developed by Cambridge Antibody Technology and Human Genome Sciences, Inc., AvastinTM
(bevacizumab, rhuMAb-VEGF), an anti-VEGF antibody being developed by Genentech, an anti-HER
receptor family antibody being developed by Genentech, Anti-Tissue Factor (ATF), an anti-Tissue Factor antibody being developed by Genentech, XolairTM (Omalizumab), an anti-IgE antibody being developed by Genentech, RaptivaTM (Efalizumab), an anti-CD11a antibody being developed by Genentech and Xoma, MLN-02 Antibody (formerly LDP-02), being developed by Genentech and Millenium Pharmaceuticals, HuMax CD4, an anti-CD4 antibody being developed by Genmab, HuMax-11_11 5, an anti-IL15 antibody being developed by Genmab and Amgen, HuMax-Inflam, being developed by Genmab and Medarex, HuMax-Cancer, an anti-Heparanase I antibody being developed by Genmab and Medarex and Oxford GcoSciences, HuMax-Lymphoma, being developed by Genmab and Amgen, HuMax-TAC, being developed by Genmab, IDEC-131, and anti-CD40L antibody being developed by IDEC Pharmaceuticals, IDEC-1 51 (Clenoliximab), an anti-CD4 antibody being developed by [DEC Pharmaceuticals, IDEC-114, an anti-CD80 antibody being developed by IDEC
Pharmaceuticals, IDEC-152, an anti-CD23 being developed by IDEC
Pharmaceuticals, anti-macrophage migration factor (MIF) antibodies being developed by [DEC
Pharmaceuticals, BEC2, an anti-idiotypic antibody being developed by Imclone, IMC-1C11, an anti-KDR
antibody being developed by Imclone, DC101, an anti-flk-1 antibody being developed by Imclone, anti-VE
cadherin antibodies being developed by Imclone, CEA-CideTM (labetuzumab), an anti-carcinoembryonic antigen (CEA) antibody being developed by Immunomedics, LymphoCideT"' (Epratuzumab), an anti-CD22 antibody being developed by Immunomedics, AFP-Cide, being developed by Immunomedics, MyelomaCide, being developed by Immunomedics, LkoCide, being developed by Immunomedics, ProstaCide, being developed by Immunomedics, MDX-01 0, an anti-CTLA4 antibody being developed by Medarex, MDX-060, an anti-CD30 antibody being developed by Medarex, MDX-070 being developed by Medarex, MDX-018 being developed by Medarex, OsidemT"" (IDM-1), and anti-Her2 antibody being developed by Medarex and Immuno-Designed Molecules, HuMaxT""-CD4, an anti-CD4 antibody being developed by Medarex and Genmab, HuMax-IL15, an anti-IL15 antibody being developed by Medarex and Genmab, CNTO 148, an anti-TN Fa antibody being developed by Medarex and Centocor/J&J, CNTO
1275, an anti-cytokine antibody being developed by Centocor/J&J, MORI 01 and MORI 02, anti-intercellular adhesion molecule-1 (ICAM-1) (CD54) antibodies being developed by MorphoSys, MOR201, an anti-fibroblast growth factor receptor 3 (FGFR-3) antibody being developed by MorphoSys, Nuvion (visilizumab), an anti-CD3 antibody being developed by Protein Design Labs, HuZAFT'", an anti-gamma interferon antibody being developed by Protein Design Labs, Anti-0501 Integrin, being developed by Protein Design Labs, anti-IL-12, being developed by Protein Design Labs, ING-1, an anti-Ep-CAM antibody being developed by Xoma, and MLN01, an anti-Beta2 integrin antibody being developed by Xoma.

[108] Application of the Fc variants to the aforementioned antibody and Fc fusion clinical products and candidates is not meant to be constrained to their precise composition.
The Fc variants of the present invention may be incorporated into the aforementioned clinical candidates and products, or into antibodies and Fe fusions that are substantially similar to them. The Fc variants of the present invention may be incorporated into versions of the aforementioned clinical candidates and products that are humanized, affinity matured, engineered, or modified in some other way. Furthermore, the entire polypeptide of the aforementioned clinical products and candidates need not be used to construct a new antibody or Fc fusion that incorporates the Fc variants of the present invention; for example only the variable region of a clinical product or candidate antibody, a substantially similar variable region, or a humanized, affinity matured, engineered, or modified version of the variable region may be used. In another embodiment, the Fc variants of the present invention may find use in an antibody or Fc fusion that binds to the same epitope, antigen, ligand, or receptor as one of the aforementioned clinical products and candidates.

[109] The Fc variants of the present invention may find use in a wide range of antibody and Fc fusion products. In one embodiment the antibody or Fc fusion of the present invention is a therapeutic, a diagnostic, or a research reagent, preferably a therapeutic.
Alternatively, the antibodies and Fc fusions of the present invention may be used for agricultural or industrial uses. In an alternate embodiment, the Fc variants of the present invention compose a library that may be screened experimentally. This library may be a list of nucleic acid or amino acid sequences, or may be a physical composition of nucleic acids or polypeptides that encode the library sequences. The Fc variant may find use in an antibody composition that is monoclonal or polyclonal. The antibodies and Fe fusions of the present invention may be agonists, antagonists, neutralizing, inhibitory, or stimulatory. In a preferred embodiment, the antibodies and Fe fusions of the present invention are used to kill target cells that bear the target antigen, for example cancer cells. In an alternate embodiment, the antibodies and Fc fusions of the present invention are used to block, antagonize, or agonize the target antigen, for example for antagonizing a cytokine or cytokine receptor. In an alternately preferred embodiment, the antibodies and Fc fusions of the present invention are used to block, antagonize, or agonize the target antigen and kill the target cells that bear the target antigen.
[110] The Fc variants of the present invention may be used for various therapeutic purposes. In a preferred embodiment, the Fc variant proteins are administered to a patient to treat an antibody-related disorder. A "patient" for the purposes of the present invention includes both humans and other animals, preferably mammals and most preferably humans. Thus the antibodies and Fc fusions of the present invention have both human therapy and veterinary applications. In the preferred embodiment the patient is a mammal, and in the most preferred embodiment the patient is human. The term "treatment" in the present invention is meant to include therapeutic treatment, as well as prophylactic, or suppressive measures for a disease or disorder. Thus, for example, successful administration of an antibody or Fc fusion prior to onset of the disease results in treatment of the disease. As another example, successful administration of an optimized antibody or Fc fusion after clinical manifestation of the disease to combat the symptoms of the disease comprises treatment of the disease. "Treatment' also encompasses administration of an optimized antibody or Fc fusion protein after the appearance of the disease in order to eradicate the disease. Successful administration of an agent after onset and after clinical symptoms have developed, with possible abatement of clinical symptoms and perhaps amelioration of the disease, comprises treatment of the disease. Those "in need of treatment" include mammals already having the disease or disorder, as well as those prone to having the disease or disorder, including those in which the disease or disorder is to be prevented. By "antibody related disorder" or "antibody responsive disorder" or "condition"
or "disease" herein are meant a disorder that may be ameliorated by the administration of a pharmaceutical composition comprising an antibody or Fc fusion of the present invention. Antibody related disorders include but are not limited to autoimmune diseases, immunological diseases, infectious diseases, inflammatory diseases, neurological diseases, and oncological and neoplastic diseases including cancer. By "cancer" and "cancerous" herein refer to or describe the physiological condition in mammals that is typically characterized by unregulated cell growth. Examples of cancer include but are not limited to carcinoma, lymphoma, blastoma, sarcoma (including liposarcoma), neuroendocrine tumors, mesothelioma, schwanoma, meningioma, adenocarcinoma, melanoma, and leukemia or lymphoid malignancies. More particular examples of such cancers include squamous cell cancer (e.g. epithelial squamous cell cancer), lung cancer including small-cell lung cancer, non-small cell lung cancer, adenocarcinoma of the lung and squamous carcinoma of the lung, cancer of the peritoneum, hepatocellular cancer, gastric or stomach cancer including gastrointestinal cancer, pancreatic cancer, glioblastoma, cervical cancer, ovarian cancer, liver cancer, bladder cancer, hepatoma, breast cancer, colon cancer, rectal cancer, colorectal cancer, endometrial or uterine carcinoma, salivary gland carcinoma, kidney or renal cancer, prostate cancer, vulval cancer, thyroid cancer, hepatic carcinoma, anal carcinoma, penile carcinoma, testicular cancer, esophagael cancer, tumors of the biliary tract, as well as head and neck cancer. Furthermore, the Fc variants of the present invention may be used to treat conditions including but not limited to congestive heart failure (CHF), vasculitis, rosecea, acne, eczema, myocarditis and other conditions of the myocardium, systemic lupus erythematosus, diabetes, spondylopathies, synovial fibroblasts, and bone marrow stroma; bone loss; Paget's disease, osteoclastoma; multiple myeloma; breast cancer; disuse osteopenia;
malnutrition, periodontal disease, Gaucher's disease, Langerhans' cell histiocytosis, spinal cord injury, acute septic arthritis, osteomalacia, Cushing's syndrome, monoostotic fibrous dysplasia, polyostotic fibrous dysplasia, periodontal reconstruction, and bone fractures; sarcoidosis; multiple myeloma;
osteolytic bone cancers, breast cancer, lung cancer, kidney cancer and rectal cancer; bone metastasis, bone pain' management, and humoral malignant hypercalcemia, ankylosing spondylitisa and other spondyloarthropathies; transplantation rejection, viral infections, hematologic neoplasisas and neoplastic-like conditions for example, Hodgkin's lymphoma; non-Hodgkin's lymphomas (Burkitt's lymphoma, small lymphocytic lymphoma/chronic lymphocytic leukemia, mycosis fungoides, mantle cell lymphoma, follicular lymphoma, diffuse large B-cell lymphoma, marginal zone lymphoma, hairy cell leukemia and lymphoplasmacytic leukemia), tumors of lymphocyte precursor cells, including B-cell acute lymphoblastic leukemia/lymphoma, and T-cell acute lymphoblastic leukemia/lymphoma, thymoma, tumors of the mature T and NK cells, including peripheral T-cell leukemias, adult T-cell Ieukemia/T-cell lymphomas and large granular lymphocytic leukemia, Langerhans cell histocytosis, myeloid neoplasias such as acute myelogenous leukemias, including AML with maturation, AML
without differentiation, acute promyelocytic leukemia, acute myelomonocytic leukemia, and acute monocytic leukemias, myelodysplastic syndromes, and chronic myeloproliferative disorders, including chronic myelogenous leukemia, tumors of the central nervous system, e.g., brain tumors (glioma, neuroblastoma, astrocytoma, medulloblastoma, ependymoma, and retinoblastoma), solid tumors (nasopharyngeal cancer, basal cell carcinoma, pancreatic cancer, cancer of the bile duct, Kaposi's sarcoma, testicular cancer, uterine, vaginal or cervical cancers, ovarian cancer, primary liver cancer or endometrial cancer, and tumors of the vascular system (angiosarcoma and hemagiopericytoma), osteoporosis, hepatitis, HIV, AIDS, spondyloarthritis, rheumatoid arthritis, inflammatory bowel diseases (IBD), sepsis and septic shock, Crohn's Disease, psoriasis, schleraderma, graft versus host disease (GVHD), allogenic islet graft rejection, hematologic malignancies, such as multiple myeloma (MM), myelodysplastic syndrome (MDS) and acute myelogenous leukemia (AML), inflammation associated with tumors, peripheral nerve injury or demyelinating diseases.

[111] In one embodiment, an antibody or Fc fusion of the present invention is administered to a patient having a disease involving inappropriate expression of a protein.
Within the scope of the present invention this is meant to include diseases and disorders characterized by aberrant proteins, due for example to alterations in the amount of a protein present, the presence of a mutant protein, or both. An overabundance may be due to any cause, including but not limited to overexpression at the molecular level, prolonged or accumulated appearance at the site of action, or increased activity of a protein relative to normal. Included within this definition are diseases and disorders characterized by a reduction of a protein. This reduction may be due to any cause, including but not limited to reduced expression at the molecular level, shortened or reduced appearance at the site of action, mutant forms of a protein, or decreased activity of a protein relative to normal.
Such an overabundance or reduction of a protein can be measured relative to normal expression, appearance, or activity of a protein, and said measurement may play an important role in the development and/or clinical testing of the antibodies and Fc fusions of the present invention.

[112] In one embodiment, an antibody or Fc fusion of the present invention is the only therapeutically active agent administered to a patient. Alternatively, the antibody or Fc fusion of the present invention is administered in combination with one or more other therapeutic agents, including but not limited to cytotoxic agents, chemotherapeutic agents, cytokines, growth inhibitory agents, anti-hormonal agents, kinase inhibitors, anti-angiogenic agents, cardioprotectants, or other therapeutic agents. Such molecules are suitably present in combination in amounts that are effective for the purpose intended. The skilled medical practitioner can determine empirically the appropriate dose or doses of other therapeutic agents useful herein. The antibodies and Fc fusions of the present invention may be administered concomitantly with one or more other therapeutic regimens. For example, an antibody or Fc fusion of the present invention may be administered to the patient along with chemotherapy, radiation therapy, or both chemotherapy and radiation therapy. In one embodiment, the antibody or Fc fusion of the present invention may be administered in conjunction with one or more antibodies or Fc fusions, which may or may not comprise an Fc variant of the present invention.

[113] In one embodiment, the antibodies and Fc fusions of the present invention are administered with a chemotherapeutic agent. By "chemotherapeutic agent" as used herein is meant a chemical compound useful in the treatment of cancer. Examples of chemotherapeutic agents include but are not limited to alkylating agents such as thiotepa and cyclosphosphamide (CYTOXANTM); alkyl sulfonates such as busulfan, improsulfan and piposulfan; aziridines such as benzodopa, carboquone, meturedopa, and uredopa; ethylenimines and methylamelamines including altretamine, triethylenemelamine, trietylenephosphoramide, triethylenethiophosphaoramide and trimethylolomelamine; nitrogen mustards such as chlorambucil, chlornaphazine, cholophosphamide, estramustine, ifosfamide, mechlorethamine, mechlorethamine oxide hydrochloride, melphalan, novembichin, phenesterine, prednimustine, trofosfamide, uracil mustard;
nitrosureas such as carmustine, chlorozotocin, fotemustine, lomustine, nimustine, ranimustine;
antibiotics such as aclacinomysins, actinomycin, authramycin, azaserine, bleomycins, cactinomycin, calicheamicin, carabicin, caminomycin, carzinophilin, chromomycins, dactinomycin, daunorubicin, detorubicin, 6-diazo-5-oxo-L-norleucine, doxorubicin, epirubicin, esorubicin, idarubicin, marcellomycin, mitomycins, mycophenolic acid, nogalamycin, olivomycins, peplomycin, potfiromycin, puromycin, quelamycin, rodorubicin, streptonigrin, streptozocin, tubercidin, ubenimex, zinostatin, zorubicin; anti-metabolites such as methotrexate and 5-fluorouracil (5-FU); folic acid analogues such as denopterin, methotrexate, pteropterin, trimetrexate; purine analogs such as fludarabine, 6-mercaptopurine, thiamiprine, thioguanine; pyrimidine analogs such as ancitabine, azacitidine, 6-azauridine, carmofur, cytarabine, dideoxyuridine, doxifluridine, enocitabine, floxuridine, 5-FU;
androgens such as calusterone, dromostanolone propionate, epitiostanol,, mepitiostane, testolactone; anti-adrenals such as aminoglutethimide, mitotane, trilostane; folic acid replenisher such as frolinic acid; aceglatone;
aldophosphamide glycoside; aminolevulinic acid; amsacrine; bestrabucil;
bisantrene; edatraxate;
defofamine; demecolcine; diaziquone; elformithine; elliptinium acetate;
etoglucid; gallium nitrate;
hydroxyurea; lentinan; lonidamine; mitoguazone; mitoxantrone; mopidamol;
nitracrine; pentostatin;
phenamet; pirarubicin; podophyllinic acid; 2-ethylhydrazide; procarbazine; PSK
; razoxane;
sizofuran; spirogermanium; tenuazonic acid; triaziquone; 2, 2',2"-trichlorotriethylamine; urethan;

vindesine; dacarbazine; mannomustine; mitobronitol; mitolactol; pipobroman;
gacytosine; arabinoside ("Ara-C"); cyclophosphamide; thiotepa; taxanes, e.g. paclitaxel (TAXOL , Bristol-Myers Squibb Oncology, Princeton, N.J.) and docetaxel (TAXOTERE , Rhne-Poulenc Rorer, Antony, France);
chlorambucil; gemcitabine; 6-thioguanine; mercaptopurine; methotrexate;
platinum analogs such as cisplatin and carboplatin; vinblastine; platinum; etoposide (VP-16);
ifosfamide; mitomycin C;
mitoxantrone; vincristine; vinorelbine; navelbine; novantrone; teniposide;
daunomycin; aminopterin;
xeloda; ibandronate; CPT-1 1; topoisomerase inhibitor RFS 2000;
difluoromethylornithine (DMFO);
retinoic acid; esperamicins; capecitabine; thymidylate synthase inhibitor (such as Tomudex); cox-2 inhibitors, such as celicoxib (CELEBREX ) or MK-0966 (VIOXX ); and pharmaceutically acceptable salts, acids or derivatives of any of the above. Also included in this definition are anti-hormonal agents that act to regulate or inhibit hormone action on tumors such as anti estrogens including for example tamoxifen, raloxifene, aromatase inhibiting 4(5)-imidazoles, 4-hydroxytamoxifen, trioxifene, keoxifene, LY 117018, onapristone, and toremifene (Fareston); and anti-androgens such as flutamide, nilutamide, bicalutamide, leuprolide, and goserelin; and pharmaceutically acceptable salts, acids or derivatives of any of the above.

[114] A chemotherapeutic or other cytotoxic agent may be administered as a prodrug. By " rop drug"
as used herein is meant a precursor or derivative form of a pharmaceutically active substance that is less cytotoxic to tumor cells compared to the parent drug and is capable of being enzymatically activated or converted into the more active parent form. See, for example Wilman, 1986, Biochemical Society Transactions, 615th Meeting Belfast, 14:375-382; and Stella et aL, "Prodrugs: A Chemical Approach to Targeted Drug Delivery," Directed Drug Delivery, Borchardt et aL, (ed.): 247-267, Humana Press, 1985. The prodrugs that may find use with the present invention include but are not limited to phosphate-containing prodrugs, thiophosphate-containing prodrugs, sulfate-containing prodrugs, peptide-containing prodrugs, D-amino acid-modified prodrugs, glycosylated prodrugs, beta-lactam-containing prodrugs, optionally substituted phenoxyacetamide-containing prodrugs or optionally substituted phenylacetamide-containing prodrugs; 5-fluorocytosine and other 5-fluorouridine prodrugs which can be converted into the more active cytotoxic free drug.
Examples of cytotoxic drugs that can be derivatized into a prodrug form for use with the antibodies and Fc fusions of the present invention include but are not limited to any of the aforementioned chemotherapeutic agents.
[115] The antibodies and Fc fusions of the present invention maybe combined with other therapeutic regimens. For example, in one embodiment, the patient to be treated with the antibody or Fc fusion may also receive radiation therapy. Radiation therapy can be administered according to protocols commonly employed in the art and known to the skilled artisan. Such therapy includes but is not limited to cesium, iridium, iodine, or cobalt radiation. The radiation therapy may be whole body irradiation, or may be directed locally to a specific site or tissue in or on the body, such as the lung, bladder, or prostate. Typically, radiation therapy is administered in pulses over a period of time from about 1 to 2 weeks. The radiation therapy may, however, be administered over longer periods of time. For instance, radiation therapy may be administered to patients having head and neck cancer for about 6 to about 7 weeks. Optionally, the radiation therapy may be administered as a single dose or as multiple, sequential doses. The skilled medical practitioner can determine empirically the appropriate dose or doses of radiation therapy useful herein. In accordance with another embodiment of the invention, the antibody or Fc fusion of the present invention and one or more other anti-cancer therapies are employed to treat cancer cells ex vivo. It is contemplated that such ex vivo treatment may be useful in bone marrow transplantation and particularly, autologous bone marrow transplantation. For instance, treatment of cells or tissue(s) containing cancer cells with antibody or Fc fusion and one or more other anti-cancer therapies, such as described above, can be employed to deplete or substantially deplete the cancer cells prior to transplantation in a recipient patient. It is of course contemplated that the antibodies and Fc fusions of the invention can be employed in combination with still other therapeutic techniques such as surgery.

[116] In an alternate embodiment, the antibodies and Fc fusions of the present invention are administered with a cytokine. By "c okine" as used herein is meant a generic term for proteins released by one cell population that act on another cell as intercellular mediators. Examples of such cytokines are lymphokines, monokines, and traditional polypeptide hormones.
Included among the cytokines are growth hormone such as. human growth hormone, N-methionyl human growth hormone, and bovine growth hormone; parathyroid hormone; thyroxine; insulin;
proinsulin; relaxin; prorelaxin;
glycoprotein hormones such as follicle stimulating hormone (FSH), thyroid stimulating hormone (TSH), and luteinizing hormone (LH); hepatic growth factor; fibroblast growth factor; prolactin;
placental lactogen; tumor necrosis factor-alpha and -beta; mullerian-inhibiting substance; mouse gonadotropin-associated peptide; inhibin; activin; vascular endothelial growth factor; integrin;
thrombopoietin (TPO); nerve growth factors such as NGF-beta; platelet-growth factor; transforming growth factors (TGFs) such as TGF-alpha and TGF-beta; insulin-like growth factor-I and -II;
erythropoietin (EPO); osteoinductive factors; interferons such as interferon-alpha, beta, and -gamma;
colony stimulating factors (CSFs) such as macrophage-CSF (M-CSF); granulocyte-macrophage-CSF
(GM-CSF); and granulocyte-CSF (G-CSF); interleukins (ILs) such as IL-1, IL-1 alpha, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-8, IL-9, IL-10, IL-11, IL-12; IL-15, a tumor necrosis factor such as TNF-alpha or TNF-beta; and other polypeptide factors including LIF and kit ligand (KL). As used herein, the term cytokine includes proteins from natural sources or from recombinant cell culture, and biologically active equivalents of the native sequence cytokines.

[117] A variety of other therapeutic agents may find use for administration with the antibodies and Fc fusions of the present invention. In one embodiment, the antibody or Fc fusion is administered with an anti-angiogenic agent. By "anti-angiogenic agent" as used herein is meant a compound that blocks, or interferes to some degree, the development of blood vessels. The anti-angiogenic factor may, for instance, be a small molecule or a protein, for example an antibody, Fc fusion, or cytokine, that binds to a growth factor or growth factor receptor involved in promoting angiogenesis. The preferred anti-angiogenic factor herein is an antibody that binds to Vascular Endothelial Growth Factor (VEGF). In an alternate embodiment, the antibody or Fc fusion is administered with a therapeutic agent that induces or enhances adaptive immune response, for example an antibody that targets CTLA-4. In an alternate embodiment, the antibody or Fc fusion is administered with a tyrosine kinase inhibitor. By "tyrosine kinase inhibitor" as used herein is meant a molecule that inhibits to some extent tyrosine kinase activity of a tyrosine kinase. Examples of such inhibitors include but are not limited to quinazolines, such as PD 153035, 4-(3-chloroanilino) quinazoline;
pyridopyrimidines;
pyrimidopyrimidines; pyrrolopyrimidines, such as CGP 59326, CGP 60261 and CGP
62706;
pyrazolopyrimidines, 4-(phenylamino)-7H-pyrrolo(2,3-d) pyrimidines; curcumin (diferuloyl methane, 4,5-bis (4-fluoroanilino)phthalimide); tyrphostines containing nitrothiophene moieties; PD-0183805 (Warner-Lambert); antisense molecules (e.g. those that bind to ErbB-encoding nucleic acid);
quinoxalines (US 5,804,396); tryphostins (US 5,804,396); ZD6474 (Astra Zeneca); PTK-787 (Novartis/Schering A G); pan-ErbB inhibitors such as C1-1033 (Pfizer);
Affinitac (ISIS 3521; Isis/Lilly);
Imatinib mesylate (ST1571,Gleevec ; Novartis); PKI 166 (Novartis); GW2016 (Glaxo SmithKline); C1-1033 (Pfizer); EKB-569 (Wyeth); Semaxinib (Sugen); ZD6474 (AstraZeneca); PTK-(Novartis/Schering AG); INC-1 C11 (Imclone); or as described in any of the following patent publications: US 5,804,396; PCT WO 99/09016 (American Cyanimid); PCT WO
98/43960 (American Cyanamid); PCT WO 97/38983 (Warner-Lambert); PCT WO 99/06378 (Warner-Lambert);
PCT WO
99/06396 (Warner-Lambert); PCT WO 96/30347 (Pfizer, Inc); PCT WO 96/33978 (AstraZeneca); PCT
W096/3397 (AstraZeneca); PCT WO 96/33980 (AstraZeneca), gefitinib (IRESSATM, ZD1839, AstraZeneca), and OSI-774 (TarcevaT"", OSI Pharmaceuticals/Genentech).

[118] A variety of linkers may find use in the present invention to generate Fc fusions (see definition above) or antibody- or Fc fusion- conjugates (see definition below). By "linker", "linker sequence", "sspacer", "tethering sequence" or grammatical equivalents thereof, herein is meant a molecule or group of molecules (such as a monomer or polymer) that connects two molecules and often serves to place the two molecules in a preferred configuration. A number of strategies may be used to covalently link molecules together. These include, but are not limited to polypeptide linkages between N- and C-termini of proteins or protein domains, linkage via disulfide bonds, and linkage via chemical cross-linking reagents. In one aspect of this embodiment, the linker is a peptide bond, generated by recombinant techniques or peptide synthesis. Choosing a suitable linker for a specific case where two polypeptide chains are to be connected depends on various parameters, including but not limited to the nature of the two polypeptide chains (e.g., whether they naturally oligomerize), the distance between the N- and the C-termini to be connected if known, and/or the stability of the linker towards proteolysis and oxidation. Furthermore, the linker may contain amino acid residues that provide flexibility. Thus, the linker peptide may predominantly include the following amino acid residues: Gly, Ser, Ala, or Thr. The linker peptide should have a length that is adequate to link two molecules in such a way that they assume the correct conformation relative to one another so that they retain the desired activity. Suitable lengths for this purpose include at least one and not more than 30 amino acid residues. Preferably, the linker is from about 1 to 30 amino acids in length, with linkers of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18 19 and 20 amino acids in length being preferred. In addition, the amino acid residues selected for inclusion in the linker peptide should exhibit properties that do not interfere significantly with the activity of the polypeptide.
Thus, the linker peptide on the whole should not exhibit a charge that would be inconsistent with the activity of the polypeptide, or interfere with internal folding, or form bonds or other interactions with amino acid residues in one or more of the monomers that would seriously impede the binding of receptor monomer domains. Useful linkers include glycine-serine polymers (including, for example, (GS)n, (GSGGS)n (GGGGS)n and (GGGS)n, where n is an integer of at least one), glycine-alanine polymers, alanine-serine polymers, and other flexible linkers such as the tether for the shaker potassium channel, and a large variety of other flexible linkers, as will be appreciated by those in the art. Glycine-serine polymers are preferred since both of these amino acids are relatively unstructured, and therefore may be able to serve as a neutral tether between components. Secondly, serine is hydrophilic and therefore able to solubilize what could be a globular glycine chain. Third, similar chains have been shown to be effective in joining subunits of recombinant proteins such as single chain antibodies.
Suitable linkers may also be identified by screening databases of known three-dimensional structures for naturally occurring motifs that can bridge the gap between two polypeptide chains. In a preferred embodiment, the linker is not immunogenic when administered in a human patient. Thus linkers may be chosen such that they have low immunogenicity or are thought to have low immunogenicity. For example, a linker may be chosen that exists naturally in a human. In a preferred embodiment the linker has the sequence of the hinge region of an antibody, that is the sequence that links the antibody Fab and Fc regions;
alternatively the linker has a sequence that comprises part of the hinge region, or a sequence that is substantially similar to the hinge region of an antibody. Another way of obtaining a suitable linker is by optimizing a simple linker, e.g., (Gly4Ser)n, through random mutagenesis.
Alternatively, once a suitable polypeptide linker is defined, additional linker polypeptides can be created to select amino acids that more optimally interact with the domains being linked. Other types of linkers that may be used in the present invention include artificial polypeptide linkers and inteins. In another embodiment, disulfide bonds are designed to link the two molecules. In another embodiment, linkers are chemical cross-linking agents. For example, a variety of bifunctional protein coupling agents may be used, including but not limited to N-succinimidyl-3-(2-pyridyidithiol) propionate (SPDP), succinimidyl-4-(N-maleimidomethyl) cyclohexane-1-carboxylate, iminothiolane (IT), bifunctional derivatives of imidoesters (such as dimethyl adipimidate HCL), active esters (such as disuccinimidyl suberate), aldehydes (such as glutareldehyde), bis-azido compounds (such as bis (p-azidobenzoyl) hexanediamine), bis-diazonium derivatives (such as bis-(p-diazoniumbenzoyl)-ethylenediamine), diisocyanates (such as tolyene 2,6-diisocyanate), and bis-active fluorine compounds (such as 1,5-difluoro-2,4-dinitrobenzene). For example, a ricin immunotoxin can be prepared as described in Vitetta et al., 1971, Science 238:1098. Chemical linkers may enable chelation of an isotope. For example, Carbon-14-labeled 1-isothiocyanatobenzyl-3-methyldiethylene triaminepentaacetic acid (MX-DTPA) is an exemplary chelating agent for conjugation of radionucleotide to the antibody (see PCT WO 94/11026). The linker may be cleavable, facilitating release of the cytotoxic drug in the cell.

For example, an acid-labile linker, peptidase-sensitive linker, dimethyl linker or disulfide-containing linker (Chari et al., 1992, Cancer Research 52: 127-131) may be used.
Alternatively, a variety of nonproteinaceous polymers, including but not limited to polyethylene glycol (PEG), polypropylene glycol, polyoxyalkylenes, or copolymers of polyethylene glycol and polypropylene glycol, may find use as linkers, that is may find use to link the Fc variants of the present invention to a fusion partner to generate an Fc fusion, or to link the antibodies and Fc fusions of the present invention to a conjugate.
[119] In one embodiment, the antibody or Fc fusion of the present invention is conjugated or operably linked to another therapeutic compound, referred to herein as a coniuaate. The conjugate may be a cytotoxic agent, a chemotherapeutic agent, a cytokine, an anti-angiogenic agent, a tyrosine kinase inhibitor, a toxin, a radioisotope, or other therapeutically active agent. Chemotherapeutic agents, cytokines, anti-angiogenic agents, tyrosine kinase inhibitors, and other therapeutic agents have been described above, and all of these aforemention therapeutic agents may find use as antibody or Fc fusion conjugates. In an alternate embodiment, the antibody or Fc fusion is conjugated or operably linked to a toxin, including but not limited to small molecule toxins and enzymatically active toxins of bacterial, fungal, plant or animal origin, including fragments and/or variants thereof.
Small molecule toxins include but are not limited to calicheamicin, maytansine (US 5,208,020), trichothene, and CC1065. In one embodiment of the invention, the antibody or Fc fusion is conjugated to one or more maytansine molecules (e.g. about I to about 10 maytansine molecules per antibody molecule). Maytansine may, for example, be converted to May-SS-Me which may be reduced to May-SH3 and reacted with modified antibody or Fc fusion (Chari et al., 1992, Cancer Research 52: 127-131) to generate a maytansinoid-antibody or maytansinoid-Fc fusion conjugate.
Another conjugate of interest comprises an antibody or Fc fusion conjugated to one or more calicheamicin molecules. The calicheamicin family of antibiotics are capable of producing double-stranded DNA breaks at sub-picomolar concentrations. Structural analogues of calicheamicin that may be used include but are not limited to y1', a21, a3, N-acetyl-y1', PSAG, and O'1, (Hinman et aL, 1993, Cancer Research 53:3336-3342; Lode et al., 1998, Cancer Research 58:2925-2928) (US
5,714,586; US 5,712,374; US 5,264,586; US 5,773,001). Dolastatin 10 analogs such as auristatin E
(AE) and monomethylauristatin E (MMAE) may find use as conjugates for the Fc variants of the present invention (Doronina et al., 2003, Nat Biotechnol 21 (7):778-84;
Francisco et aL, 2003 Blood 102(4):1458-65). Useful enyzmatically active toxins include but are not limited to diphtheria A chain, nonbinding active fragments of diphtheria toxin, exotoxin A chain (from Pseudomonas aeruginosa), ricin A chain, abrin A chain, modeccin A chain, alpha-sarcin, Aleurites fordii proteins, dianthin proteins, Phytolaca americana proteins (PAPI, PAPII, and PAP-S), momordica charantia inhibitor, curcin, crotin, sapaonaria officinalis inhibitor, gelonin, mitogellin, restrictocin, phenomycin, enomycin and the tricothecenes. See, for example, PCT WO 93/21232. The present invention further contemplates a conjugate or fusion formed between an antibody or Fc fusion of the present invention and a compound with nucleolytic activity, for example a ribonuclease or DNA
endonuclease such as a deoxyribonuclease (DNase).

[120] In an alternate embodiment, an antibody or Fc fusion of the present invention may be conjugated or operably linked to a radioisotope to form a radioconjugate. A
variety of radioactive isotopes are available for the production of radioconjugate antibodies and Fc fusions. Examples include, but are not limited to, At211, 1131, 1125Y90, Re186, Re'88, Sm153, Bi212, P32, and radioactive isotopes of Lu.

[121] In yet another embodiment, an antibody or Fc fusion of the present invention may be conjugated to a "receptor" (such streptavidin) for utilization. in tumor pretargeting wherein the antibody-receptor or Fc fusion-receptor conjugate is administered to the patient, followed by removal of unbound conjugate from the circulation using a clearing agent and then administration of a "ligand"
(e.g. avidin) which is conjugated to a cytotoxic agent (e.g. a radionucleotide). In an alternate embodiment, the antibody or Fc fusion is conjugated or operably linked to an enzyme in order to employ Antibody Dependent Enzyme Mediated Prodrug Therapy (ADEPT). ADEPT may be used by conjugating or operably linking the antibody or Fc fusion to a prodrug-activating enzyme that converts a prodrug (e.g. a peptidyl chemotherapeutic agent, see PCT WO 81/01145) to an active anti-cancer drug. See, for example, PCT WO 88/07378 and US 4,975,278. The enzyme component of the immunoconjugate useful for ADEPT includes any enzyme capable of acting on a prodrug in such a way so as to covert it into its more active, cytotoxic form. Enzymes that are useful in the method of this invention include but are not limited to alkaline phosphatase useful for converting phosphate-containing prodrugs into free drugs; arylsulfatase useful for converting sulfate-containing prodrugs into free drugs; cytosine deaminase useful for converting non-toxic 5-fluorocytosine into the anti-cancer drug, 5-fluorouracil; proteases, such as serratia protease, thermolysin, subtilisin, carboxypeptidases and cathepsins (such as cathepsins B and L), that are useful for converting peptide-containing prodrugs into free drugs; D-alanylcarboxypeptidases, useful for converting prodrugs that contain D-amino acid substituents; carbohydrate-cleaving enzymes such as .beta.-galactosidase and neuramimidase useful for converting glycosylated prodrugs into free drugs;
beta-lactamase useful for converting drugs derivatized with .alpha.-lactams into free drugs; and penicillin amidases, such as penicillin V amidase or penicillin G amidase, useful for converting drugs derivatized at their amine nitrogens with phenoxyacetyl or phenylacetyl groups, respectively, into free drugs. Alternatively, antibodies with enzymatic activity, also known in the art as "abzymes", can be used to convert the prodrugs of the invention into free active drugs (see, for example, Massey, 1987, Nature 328: 457-458). Antibody-abzyme and Fc fusion-abzyme conjugates can be prepared for delivery of the abzyme to a tumor cell population.

[122] Other modifications of the antibodies and Fc fusions of the present invention are contemplated herein. For example, the antibody or Fc fusion may be linked to one of a variety of nonproteinaceous.polymers, e.g., polyethylene glycol (PEG), polypropylene glycol, polyoxyalkylenes, or copolymers of polyethylene glycol and polypropylene glycol.

[123] Pharmaceutical compositions are contemplated wherein an antibody or Fc fusion of the present invention and and one or more therapeutically active agents are formulated. Formulations of the antibodies and Fc fusions of the present invention are prepared for storage by mixing said antibody or Fc fusion having the desired degree of purity with optional pharmaceutically acceptable carriers, excipients or stabilizers. (Remington's Pharmaceutical Sciences 16th edition, Osol, A.
Ed.,1980), in the form of lyophilized formulations or aqueous solutions.
Acceptable carriers, excipients, or stabilizers are nontoxic to recipients at the dosages and concentrations employed, and include buffers such as phosphate, citrate, acetate, and other organic acids;
antioxidants including ascorbic acid and methionine; preservatives (such as octadecyldimethylbenzyl ammonium chloride;
hexamethonium chloride; benzalkonium chloride, benzethonium chloride; phenol, butyl orbenzyl alcohol; alkyl parabens such as methyl or propyl paraben; catechol;
resorcinol; cyclohexanol; 3-pentanol; and m-cresol); low molecular weight (less than about 10 residues) polypeptides; proteins, such as serum albumin, gelatin, or immunoglobulins; hydrophilic polymers such as polyvinylpyrrolidone; amino acids such as glycine, glutamine, asparagine, histidine, arginine, or lysine;
monosaccharides, disaccharides, and other carbohydrates including glucose, mannose, or dextrins;
chelating agents such as EDTA; sugars such as sucrose, mannitol, trehalose or sorbitol; sweeteners and other flavoring agents; fillers such as microcrystalline cellulose, lactose, corn and other starches;
binding agents; additives; coloring agents; salt-forming counter-ions such as sodium; metal complexes (e.g. Zn-protein complexes); and/or non-ionic surfactants such as TWEENTM, PLURONICSTM or polyethylene glycol (PEG). In a preferred embodiment, the pharmaceutical composition that comprises the antibody or Fc fusion of the present invention is in a water-soluble form, such as being present as pharmaceutically acceptable salts, which is meant to include both acid and base addition salts. "Pharmaceutically acceptable acid addition salt"
refers to those salts that retain the biological effectiveness of the free bases and that are not biologically or otherwise undesirable, formed with inorganic acids such as hydrochloric acid, hydrobromic acid, sulfuric acid, nitric acid, phosphoric acid and the like, and organic acids such as acetic acid, propionic acid, glycolic acid, pyruvic acid, oxalic acid, maleic acid, malonic acid, succinic acid, fumaric acid, tartaric acid, citric acid, benzoic acid, cinnamic acid, mandelic acid, methanesulfonic acid, ethanesulfonic acid, p-toluenesulfonic acid, salicylic acid and the like. "Pharmaceutically acceptable base addition salts"
include those derived from inorganic bases such as sodium, potassium, lithium, ammonium, calcium, magnesium, iron, zinc, copper, manganese, aluminum salts and the like.
Particularly preferred are the ammonium, potassium, sodium, calcium, and magnesium salts. Salts derived from pharmaceutically acceptable organic non-toxic bases include salts of primary, secondary, and tertiary amines, substituted amines including naturally occurring substituted amines, cyclic amines and basic ion exchange resins, such as isopropylamine, trimethylamine, diethylamine, triethylamine, tripropylamine, and ethanolamine. The formulations to be used for in vivo administration are preferrably sterile. This is readily accomplished by filtration through sterile filtration membranes or other methods.

[124] The antibodies and Fc fusions disclosed herein may also be formulated as immunoliposomes.
A liposome is a small vesicle comprising various types of lipids, phospholipids and/or surfactant that is useful for delivery of a therapeutic agent to a mammal. Liposomes containing the antibody or Fc fusion are prepared by methods known in the art, such as described in Epstein et al., 1985, Proc Nall Acad Sci USA, 82:3688; Hwang et al., 1980, Proc Natl Acad Sci USA, 77:4030; US
4,485,045; US
4,544,545; and PCT WO 97/38731. Liposomes with enhanced circulation time are disclosed in US
5,013,556. The components of the liposome are commonly arranged in a bilayer formation, similar to the lipid arrangement of biological membranes. Particularly useful liposomes can be generated by the reverse phase evaporation method with a lipid composition comprising phosphatidyicholine, cholesterol and PEG-derivatized phosphatidylethanolamine (PEG-PE). Liposomes are extruded through filters of defined pore size to yield liposomes with the desired diameter. A chemotherapeutic agent or other therapeutically active agent is optionally contained within the liposome (Gabizon et al., 1989, J National Cancer Inst 81:1484).

[125] The antibodies, Fc fusions, and other therapeutically active agents may also be entrapped in microcapsules prepared by methods including but not limited to coacervation techniques, interfacial polymerization (for example using hydroxymethylcellulose or gelatin-microcapsules, or poly-(methylmethacylate) microcapsules), colloidal drug delivery systems (for example, liposomes, albumin microspheres, microemulsions, nano-particles and nanocapsules), and macroemulsions. Such techniques are disclosed in Remington's Pharmaceutical Sciences 16th edition, Osol, A. Ed., 1980.
Sustained-release preparations may be prepared. Suitable examples of sustained-release preparations include semipermeable matrices of solid hydrophobic polymer, which matrices are in the form of shaped articles, e.g. films, or microcapsules. Examples of sustained-release matrices include polyesters, hydrogels (for example poly(2-hydroxyethyl-methacrylate), or poly(vinylalcohol)), polylactides (US 3,773,919), copolymers of L-glutamic acid and gamma ethyl-L-glutamate, non-degradable ethylene-vinyl acetate, degradable lactic acid-glycolic acid copolymers such as the LUPRON DEPOTTm (which are injectable microspheres composed of lactic acid-glycolic acid copolymer and leuprolide acetate), poly-D-(-)-3-hydroxybutyric acid, and ProLease (commercially available from Alkermes), which is a microsphere-based delivery system composed of the desired bioactive molecule incorporated into a matrix of poly-DL-lactide-co-glycolide (PLG).

[126] The concentration of the therapeutically active antibody or Fc fusion of the present invention in the formulation may vary from about 0.1 to 100 weight %. In a preferred embodiment, the concentration of the antibody or Fc fusion is in the range of 0.003 to 1.0 molar. In order to treat a patient, a therapeutically effective dose of the antibody or Fc fusion of the present invention may be administered. By "therapeutically effective dose" herein is meant a dose that produces the effects for which it is administered. The exact dose will depend on the purpose of the treatment, and will be ascertainable by one skilled in the art using known techniques. Dosages may range from 0.01 to 100 mg/kg of body weight or greater, for example 0.1, 1, 10, or 50 mg/kg of body weight, with I to 10mg/kg being preferred. As is known in the art, adjustments for antibody or Fc fusion degradation, systemic versus localized delivery, and rate of new protease synthesis, as well as the age, body weight, general health, sex, diet, time of administration, drug interaction and the severity of the condition may be necessary, and will be ascertainable with routine experimentation by those skilled in the art.

[127] Administration of the pharmaceutical composition comprising an antibody or Fc fusion of the present invention, preferably in the form of a sterile aqueous solution, may be done in a variety of ways, including, but not limited to orally, subcutaneously, intravenously, intranasally, intraotically, transdermally, topically (e.g., gels, salves, lotions, creams, etc.), intraperitoneally, intramuscularly, intrapulmonary (e.g., AERx inhalable technology commercially available from Aradigm, or InhanceT""
pulmonary delivery system commercially available from Inhale Therapeutics), vaginally, parenterally, rectally, or intraocularly. In some instances, for example for the treatment of wounds, inflammation, etc., the antibody or Fc fusion may be directly applied as a solution or spray. As is known in the art, the pharmaceutical composition may be formulated accordingly depending upon the manner of introduction.

Engineering Methods [128] The present invention provides engineering methods that may be used to generate Fc variants. A principal obstacle that has hindered previous attempts at Fc engineering is that only random attempts at modification have been possible, due in part to the inefficiency of engineering strategies and methods, and to the low-throughput nature of antibody production and screening. The present invention describes engineering methods that overcome these shortcomings. A variety of design strategies, computational screening methods, library generation methods, and experimental production and screening methods are contemplated. These strategies, approaches, techniques, and methods may be applied individually or in various combinations to engineer optimized Fc variants.
Design Strategies [129] The most efficient approach to generating Fc variants that are optimized for a desired property is to direct the engineering efforts toward that goal. Accordingly, the present invention teaches design strategies that may be used to engineer optimized Fc variants.
The use of a design strategy is meant to guide Fc engineering, but is not meant to constrain an Fc variant to a particular optimized property based on the design strategy that was used to engineer it.
At first thought this may seem counterintuitive; however its validity is derived from the enormous complexity of subtle interactions that determine the structure, stability, solubility, and function of proteins and protein-protein complexes. Although efforts can be made to predict which protein positions, residues, interactions, etc. are important for a design goal, often times critical ones are not predictable. Effects on protein structure, stability, solubility, and function, whether favorable or unfavorable, are often unforeseen. Yet there are innumerable amino acid modifications that are detrimental or deleterious to proteins. Thus often times the best approach to engineering comes from generation of protein variants that are focused generally towards a design goal but do not cause detrimental effects. In this way, a principal objective of a design strategy may be the generation of quality diversity. At a simplistic level this can be thought of as stacking the odds in one's favor.
As an example, perturbation of the Fc carbohydrate or a particular domain-domain angle, as described below, are valid design strategies for generating optimized Fc variants, despite the fact that how carbohydrate and domain-domain angles determine the properties of Fc is not well understood. By reducing the number of detrimental amino acid modifications that are screened, i.e. by screening quality diversity, these design strategies become practical. Thus the true value of the design strategies taught in the present invention is their ability to direct engineering efforts towards the generation of valuable Fc variants. The specific value of any one resulting variant is determined after experimentation.

[130] One design strategy for engineering Fc variants is provided in which interaction of Fc with some Fc ligand is altered by engineering amino acid modifications at the interface between Fc and said Fc ligand. Fc ligands herein may include but are not limited to FcyRs, C1 q, FcRn, protein A or G, and the like. By exploring energetically favorable substitutions at Fc positions that impact the binding interface, variants can be engineered that sample new interface conformations, some of which may improve binding to the Fc ligand, some of which may reduce Fc ligand binding, and some of which may have other favorable properties. Such new interface conformations could be the result of, for example, direct interaction with Fc ligand residues that form the interface, or indirect effects caused by the amino acid modifications such as perturbation of side chain or backbone conformations. Variable positions may be chosen as any positions that are believed to play an important role in determining the conformation of the interface. For example, variable positions may be chosen as the set of residues that are within a certain distance, for example 5 Angstroms (A), preferrably between 1 and A, of any residue that makes direct contact with the Fc ligand.

[131] An additional design strategy for generating Fc variants is provided in which the conformation of the Fc carbohydrate at N297 is optimized. Optimization as used in this context is meant to includes conformational and compositional changes in the N297 carbohydrate that result in a desired property, for example increased or reduced affinity for an FcyR. Such a strategy is supported by the observation that the carbohydrate structure and conformation dramatically affect Fc/FcyR and Fc/C1 q binding (Umana et al., 1999, Nat Biotechnol 17:176-180; Davies et al., 2001, Biotechnol Bioeng 74:288-294; Mimura et al., 2001, J Biol Chem 276:45539-45547.; Radaev et al., 2001, J Biol Chem 276:16478-16483; Shields et al., 2002, J B/61 Chem 277:26733-26740; Shinkawa et al., 2003, J Biol Chem 278:3466-3473). However the carbohydrate makes no specific contacts with FcyRs. By exploring energetically favorable substitutions at positions that interact with carbohydrate, a quality diversity of variants can be engineered that sample new carbohydrate conformations, some of which may improve and some of which may reduce binding to one or more Fc ligands.
While the majority of mutations near the Fc/carbohydrate interface appear to alter carbohydrate conformation, some mutations have been shown to alter the glycosylation composition (Lund et aL, 1996, J Immunol 157:4963-4969; Jefferis et al., 2002, Immunol Lett 82:57-65).

[132] Another design strategy for generating Fc variants is provided in which the angle between the Cy2 and Cy3 domains is optimized Optimization as used in this context is meant to describe conformational changes in the Cy2-Cy3 domain angle that result in a desired property, for example increased or reduced affinity for an FcyR. This angle is an important determinant of Fc/Fc7R affinity (Radaev et.aL, 2001, J Biol Chem 276:16478-16483), and a number of mutations distal to the Fc/FcyR interface affect binding potentially by modulating it (Shields et aL, 2001, J Biol Chem 276:6591-6604). By exploring energetically favorable substitutions positions that appear to play a key role in determining the Cy2-Cy3 angle and the flexibility of the domains relative to one another, a quality diversity of variants can be designed that sample new angles and levels of flexibility, some of which may be optimized for a desired Fc property.

[133] Another design strategy for generating Fc variants is provided in which Fc is reengineered to eliminate the structural and functional dependence on glycosylation. This design strategy involves the optimization of Fc structure, stability, solubility, and/or Fc function (for example affinity of Fc for one or more Fc ligands) in the absence of the N297 carbohydrate. In one approach, positions that are exposed to solvent in the absence of glycosylation are engineered such that they are stable, structurally consistent with Fc structure, and have no tendency to aggregate.
The Cy2 is the only unpaired Ig domain in the antibody (see Figure 1). Thus the N297 carbohydrate covers up the exposed hydrophobic patch that would normally be the interface for a protein-protein interaction with another Ig domain, maintaining the stability and structural integrity of Fc and keeping the Cy2 domains from aggregating across the central axis. Approaches for optimizing aglycosylated Fc may involve but are not limited to designing amino acid modifications that enhance aglycoslated Fc stability and/or solubility by incorporating polar and/or charged residues that face inward towards the Cy2-Cy2 dimer axis, and by designing amino acid modifications that directly enhance the aglycosylated Fc/FcyR
interface or the interface of aglycosylated Fc with some other Fc ligand.

[134] An additional design strategy for engineering Fc variants is provided in which the conformation of the Cy2 domain is optimized Optimization as used in this context is meant to describe conformational changes in the Cy2 domain angle that result in a desired property, for example increased or reduced affinity for an FcyR. By exploring energetically favorable substitutions at Cy2 positions that impact the Cy2 conformation, a quality diversity of variants can be engineered that sample new Cy2 conformations, some of which may achieve the design goal.
Such new Cy2 conformations could be the result of, for example, alternate backbone conformations that are sampled by the variant. Variable positions may be chosen as any positions that are believed to play an important role in determining Cy2 structure, stability, solubility, flexibility, function, and the like. For example, Cy2 hydrophobic core residues, that is Cy2 residues that are partially or fully sequestered from solvent, may be reengineered. Alternatively, noncore residues may be considered, or residues that are deemed important for determining backbone structure, stability, or flexibility.

[135] An additional design strategy for Fc optimization is provided in which binding to an FcyR, complement, or some other Fc ligand is altered by modifications that modulate the electrostatic interaction between Fc and said Fc ligand. Such modifications may be thought of as optimization of the global electrostatic character of Fc, and include replacement of neutral amino acids with a charged amino acid, replacement of a charged amino acid with a neutral amino acid, or replacement of a charged amino acid with an amino acid of opposite charge (i.e. charge reversal). Such modifications may be used to effect changes in binding affinity between an Fc and one or more Fc ligands, for example FcyRs. In a preferred embodiment, positions at which electrostatic substitutions might affect binding are selected using one of a variety of well known methods for calculation of electrostatic potentials. In the simplest embodiment, Coulomb's law is used to generate electrostatic potentials as a function of the position in the protein. Additional embodiments include the use of Debye-Huckel scaling to account for ionic strength effects, and more sophisticated embodiments such as Poisson-Boltzmann calculations. Such electrostatic calculations may highlight positions and suggest specific amino acid modifications to achieve the design goal. In some cases, these substitutions may be anticipated to variably affect binding to different Fc ligands, for example to enhance binding to activating FcyRs while decreasing binding affinity to inhibitory FcyRs.
Computational Screening [136] A principal obstacle to obtaining valuable Fc variants is the difficulty in predicting what amino acid modifications, out of the enormous number of possibilities, will achieve the desired goals. Indeed one of the principle reasons that previous attempts at Fc engineering have failed to produce Fc variants of significant clinical value is that approaches to Fc engineering have thus far involved hit-or-miss approaches. The present invention provides computational screening methods that enable quantitative and systematic engineering of Fc variants. These methods typically use atomic level scoring functions, side chain rotamer sampling, and advanced optimization methods to accurately capture the relationships between protein sequence, structure, and function.
Computational screening enables exploration of the entire sequence space of possibilities at target positions by filtering the enormous diversity which results. 'Variant libraries that are screened computationally are effectively enriched for stable, properly folded, and functional sequences, allowing active optimization of Fc for a desired goal. Because of the overlapping sequence constraints on protein structure, stability, solubility, and function, a large number of the candidates in a library occupy "wasted"
sequence space. For example, a large fraction of sequence space encodes unfolded, misfolded, incompletely folded, partially folded, or aggregated proteins. This is particularly relevant for Fc engineering because Ig domains are small beta sheet structures, the engineering of which has proven extremely demanding (Quinn et al., 1994, Proc Natl Acad Sci U S A 91:8747-8751; Richardson et al., 2002, Proc Natl Acad Sci USA 99:2754-2759). Even seemingly harmless substitutions on the surface of a beta sheet can cause severe packing conflicts, dramatically disrupting folding equilibrium (Smith et aL, 1995, Science 270:980-982); incidentally, alanine is one of the worst beta sheet formers (Minor et aL, 1994, Nature 371:264-267). The determinants of beta sheet stability and specificity are a delicate balance between an extremely large number of subtle interactions.
Computational screening enables the generation of libraries that are composed primarily of productive sequence space, and as a result increases the chances of identifying proteins that are optimized for the design goal. In effect, computational screening yields an increased hit-rate, thereby decreasing the number of variants that must be screened experimentally. An additional obstacle to Fc engineering is the need for active design of correlated or coupled mutations. For example, the greatest Fc/FcyR affinity enhancement observed thus far is S298A/E333A/K334A, obtained by combining three better binders obtained separately in an alanine scan (Shields et al., 2001, J Biol Chem 276:6591-6604).
Computational screening is capable of generating such a three-fold variant in one experiment instead of three separate ones, and furthermore is able to test the functionality of all 20 amino acids at those positions instead of just alanine. Computational screening deals with such complexity by reducing the combinatorial problem to an experimentally tractable size.

[137] Computational screening, viewed broadly, has four steps: 1) selection and preparation of the protein template structure or structures, 2) selection of variable positions, amino acids to be considered at those positions, and/or selection of rotamers to model considered amino acids, 3) energy calculation, and 4) combinatorial optimization. In more detail, the process of computational screening can be described as follows. A three-dimensional structure of a protein is used as the starting point. The positions to be optimized are identified, which may be the entire protein sequence or subset(s) thereof. Amino acids that will be considered at each position are selected. In a preferred embodiment, each considered amino acid may be represented by a discrete set of allowed conformations, called rotamers. Interaction energies are calculated between each considered amino acid and each other considered amino acid, and the rest of the protein, including the protein backbone and invariable residues. In a preferred embodiment, interaction energies are calculated between each considered amino acid side chain rotamer and each other considered amino acid side chain rotamer and the rest of the protein, including the protein backbone and invariable residues. One or more combinatorial search algorithms are then used to identify the lowest energy sequence and/or low energy sequences.

[138] In a preferred embodiment, the computational screening method used is substantially similar to Protein Design Automation (PDA ) technology, as is described in US
6,188,965; US 6,269,312;
US 6,403,312; USSN 09/782,004; USSN 09/927,790; USSN 10/218,102; PCT WO
98/07254; PCT
WO 01/40091; and PCT WO 02/25588. In another preferred embodiment, a computational screening method substantially similar to Sequence Prediction AlgorithmTM (SPAT"') technology is used, as is described in (Raha et aL, 2000, Protein Sci 9:1106-1119), USSN 09/877,695, and USSN 10/071,859.
In another preferred embodiment, the computational screening methods described in USSN

10/339788, filed on March 3, 2003, entitled "ANTIBODY OPTIMIZATION", are used.
In some embodiments, combinations of different computational screening methods are used, including combinations of PDA technology and SPAN technology, as well as combinations of these computational methods in combination with other design tools. Similarly, these computational methods can be used simultaneously or sequentially, in any order.

[139] A template structure is used as input into the computational screening calculations. By "template structure" herein is meant the structural coordinates of part or all of a protein to be optimized. The template structure may be any protein for which a three dimensional structure (that is, three dimensional coordinates for a set of the protein's atoms) is known or may be calculated, estimated, modeled, generated, or determined. The three dimensional structures of proteins may be determined using methods including but not limited to X-ray crystallographic techniques, nuclear magnetic resonance (NMR) techniques, de novo modeling, and homology modeling.
If optimization is desired for a protein for which the structure has not been solved experimentally, a suitable structural model may be generated that may serve as the template for computational screening calculations.
Methods for generating homology models of proteins are known in the art, and these methods find use in the present invention. See for example, Luo, et al. 2002, Protein Sci 11: 1218-1226, Lehmann & Wyss, 2001, Curr Opin Biotechnol 12(4):371-5.; Lehmann at aL, 2000, Biochim Biophys Acta 1543(2):408-415; Rath & Davidson, 2000, Protein Sci, 9(12):2457-69; Lehmann et al., 2000, Protein Eng 13(1):49-57; Desjarlais & Berg, 1993, Proc Natl Acad Sci USA 90(6):2256-60; Desjarlais & Berg, 1992, Proteins 12(2):101-4; Henikoff & Henikoff, 2000, Adv Protein Chem 54:73-97; Henikoff &
Henikoff, 1994, J Mol B161 243(4):574-8; Morea at al., 2000, Methods 20:267-269. Protein/protein complexes may also be obtained using docking methods. Suitable protein structures that may serve as template structures include, but are not limited to, all of those found in the Protein Data Base compiled and serviced by the Research Collaboratory for Structural Bioinformatics (RCSB, formerly the Brookhaven National Lab).

[140] The template structure may be of a protein that occurs naturally or is engineered. The template structure may be of a protein that is substantially encoded by a protein from any organism, with human, mouse, rat, rabbit, and monkey preferred. The template structure may comprise any of a number of protein structural forms. In a preferred embodiment the template structure comprises an Fc region or a domain or fragment of Fc. In an alternately preferred embodiment the template structure comprises Fc or a domain or fragment of Fc bound to one or more Fc ligands, with an Fc/FcyR complex being preferred. The Fc in the template structure may be glycosylated or unglycosylated. The template structure may comprise more than one protein chain. The template structure may additionally contain nonprotein components, including but not limited to small molecules, substrates, cofactors, metals, water molecules, prosthetic groups, polymers and carbohydrates. In a preferred embodiment, the template structure is a plurality or set of template proteins, for example an ensemble of structures such as those obtained from NMR. Alternatively, the set of template structures is generated from a set of related proteins or structures, or artificially created ensembles. The composition and source of the template structure depends on the engineering goal. For example, for enhancement of human Fc/FcyR affinity, a human Fc/FcyR
complex structure or derivative thereof may be used as the template structure.
Alternatively, the uncomplexed Fc structure may be used as the template structure. If the goal is to enhance affinity of a human Fc for a mouse FcyR, the template structure may be a structure or model of a human Fc bound to a mouse FcyR.

[141] The template structure may be modified or altered prior to design calculations. A variety of methods for template structure preparation are described in US 6,188,965; US
6,269,312; US
6,403,312; USSN 09/782,004; USSN 09/927,790; USSN 09/877,695; USSN 10/071,859, USSN
10/218,102; PCT WO 98/07254; PCT WO 01/40091; and PCT WO 02/25588. For example, in a preferred embodiment, explicit hydrogens may be added if not included within the structure. In an alternate embodiment, energy minimization of the structure is run to relax strain, including strain due to van der Waals clashes, unfavorable bond angles, and unfavorable bond lengths. Alternatively, the template structure is altered using other methods, such as manually, including directed or random perturbations. It is also possible to modify the template structure during later steps of computational screening, including during the energy calculation and combinatorial optimization steps. In an alternate embodiment, the template structure is not modified before or during computational screening calculations.

[142] Once a template structure has been obtained, variable positions are chosen. By "variable position' herein is meant a position at which the amino acid identity is allowed to be altered in a computational screening calculation. As is known in the art, allowing amino acid modifications to be considered only at certain variable positions reduces the complexity of a calculation and enables computational screening to be more directly tailored for the design goal. One or more residues may be variable positions in computational screening calculations. Positions that are chosen as variable positions may be those that contribute to or are hypothesized to contribute to the protein property to be optimized, for example Fc affinity for an FcyR, Fc stability, Fc solubility, and so forth. Residues at variable positions may contribute favorably or unfavorably to a specific protein property. For example, a residue at an Fc/FcyR interface may be involved in mediating binding, and thus this position may be varied in design calculations aimed at improving Fc/FcyR affinity. As another example, a residue that has an exposed hydrophobic side chain may be responsible for causing unfavorable aggregation, and thus this position may be varied in design calculations aimed at improving solubility. Variable positions may be those positions that are directly involved in interactions that are determinants of a particular protein property. For example, the FcyR binding site of Fe may be defined to include all residues that contact that particular FycR. By "contact" herein is meant some chemical interaction between at least one atom of an Fc residue with at least one atom of the bound Fc7R, with chemical interaction including, but not limited to van der Waals interactions, hydrogen bond interactions, electrostatic interactions, and hydrophobic interactions. In an alternative embodiment, variable positions may include those positions that are indirectly involved in a protein property, i.e. such positions may be proximal to residues that are known to or hypothesized to contribute to an Fc property. For example, the FcyR binding site of an Fc may be defined to include all Fc residues within a certain distance, for example 4 - 10 A, of any Fc residue that is in van der Waals contact with the FcyR. Thus variable positions in this case may be chosen not only as residues that directly contact the FcyR, but also those that contact residues that contact the Fc'R and thus influence binding indirectly. The specific positions chosen are dependent on the design strategy being employed.
[143] One or more positions in the template structure that are not variable may be floated. By "floated position" herein is meant a position at which the amino acid conformation but not the amino acid identity is allowed to vary in a computational screening calculation. In one embodiment, the floated position may have the parent amino acid identity. For example, floated positions may be positions that are within a small distance, for example 5 A, of a variable position residue. In an alternate embodiment, a floated position may have a non-parent amino acid identity. Such an embodiment may find use in the present invention, for example, when the goal is to evaluate the energetic or structural outcome of a specific mutation.

[144] Positions that are not variable or floated are fixed. By "fixed position" herein is meant a position at which the amino acid identity and the conformation are held constant in a computational screening calculation. Positions that may be fixed include residues that are not known to be or hypothesized to be involved in the property to be optimized. In this case the assumption is that there is little or nothing to be gained by varying these positions. Positions that are fixed may also include positions whose residues are known or hypothesized to be important for maintaining proper folding, structure, stability, solubility, and/or biological function. For example, positions may be fixed for residues that interact with a particular Fc ligand or residues that encode a glycosylation site in order to ensure that binding to the Fc ligand and proper glycosylation respectively are not perturbed.
Likewise, if stability is being optimized, it may be beneficial to fix positions that directly or indirectly interact with an Fc ligand, for example an FcyR, so that binding is not perturbed. Fixed positions may also include structurally important residues such as cysteines participating in disulfide bridges, residues critical for determining backbone conformation such as proline or glycine, critical hydrogen bonding residues, and residues that form favorable packing interactions.

[145] The next step in computational screening is to select a set of possible amino acid identities that will be considered at each particular variable position. This set of possible amino acids is herein referred to as "considered amino acids" at a variable position. "Amino acids"
as used herein refers to the set of natural 20 amino acids and any nonnatural or synthetic analogues.
In one embodiment, all 20 natural amino acids are considered. Alternatively, a subset of amino acids, or even only one amino acid is considered at a given variable position. As will be appreciated by those skilled in the art, there is a computational benefit to considering only certain amino acid identities at variable positions, as it decreases the combinatorial complexity of the search.
Furthermore, considering only certain amino acids at variable positions may be used to tailor calculations toward specific design strategies. For example, for solubility optimization of aglycosylated Fc, it may be beneficial to allow only polar amino acids to be considered at nonpolar Fc residues that are exposed to solvent in the absence of carbohydrate. Nonnatural amino acids, including synthetic amino acids and analogues of natural amino acids, may also be considered amino acids. For example see Chin et a/., 2003, Science, 301(5635):964-7; and Chin et aL, 2003, Chem Bid/. 10(6):511-9.

[146] A wide variety of methods may be used, alone or in combination, to select which amino acids will be considered at each position. For example, the set of considered amino acids at a given variable position may be chosen based on the degree of exposure to solvent.
Hydrophobic or nonpolar amino acids typically reside in the interior or core of a protein, which are inaccessible or nearly inaccessible to solvent. Thus at variable core positions it may be beneficial to consider only or mostly nonpolar amino acids such as alanine, valine, isoleucine, leucine, phenylalanine, tyrosine, tryptophan, and methionine. Hydrophilic or polar amino acids typically reside on the exterior or surface of proteins, which have a significant degree of solvent accessibility.
Thus at variable surface positions it may be beneficial to consider only or mostly polar amino acids such as alanine, serine, threonine, aspartic acid, asparagine, glutamine, glutamic acid, arginine, lysine and histidine. Some positions are partly exposed and partly buried, and are not clearly protein core or surface positions, in a sense serving as boundary residues between core and surface residues. Thus at such variable boundary positions it may be beneficial to consider both nonpolar and polar amino acids such as alanine, serine, threonine, aspartic acid, asparagine, glutamine, glutamic acid, arginine, lysine histidine, valine, isoleucine, leucine, phenylalanine, tyrosine, tryptophan, and methionine.
Determination of the degree of solvent exposure at variable positions may be by subjective evaluation or visual inspection of the template structure by one skilled in the art of protein structural biology, or by using a variety of algorithms that are known in the art. Selection of amino acid types to be considered at variable positions may be aided or determined wholly by computational methods, such as calculation of solvent accessible surface area, or using algorithms that assess the orientation of the Ca-C(3 vectors relative to a solvent accessible surface, as outlined in US
6,188,965; 6,269,312; US
6,403,312; USSN 09/782,004; USSN 09/927,790; USSN 10/218,102; PCT WO 98/07254;
PCT WO
01/40091; and PCT WO 02/25588. In one embodiment, each variable position may be classified explicitly as a core, surface, or boundary position or a classification substantially similar to core, surface, or boundary.

[147] In an alternate embodiment, selection of the set of amino acids allowed at variable positions may be hypothesis-driven. Hypotheses for which amino acid types should be considered at variable positions may be derived by a subjective evaluation or visual inspection of the template structure by one skilled in the art of protein structural biology. For example, if it is suspected that a hydrogen bonding interaction may be favorable at a variable position, polar residues that have the capacity to form hydrogen bonds may be considered, even if the position is in the core.
Likewise, if it is suspected that a hydrophobic packing interaction may be favorable at a variable position, nonpolar residues that have the capacity to form favorable packing interactions may be considered, even if the position is on the surface. Other examples of hypothesis-driven approaches may involve issues of backbone flexibility or protein fold. As is known in the art, certain residues, for example proline, glycine, and cysteine, play important roles in protein structure and stability. Glycine enables greater backbone flexibility than all other amino acids, proline constrains the backbone more than all other amino acids, and cysteines may form disulfide bonds. It may therefore be beneficial to include one or more of these amino acid types to achieve a desired design goal.
Alternatively, it may be beneficial to exclude one or more of these amino acid types from the list of considered amino acids.

[148] In an alternate embodiment, subsets of amino acids may be chosen to maximize coverage.
In this case, additional amino acids with properties similar to that in the template structure may be considered at variable positions. For example, if the residue at a variable position in the template structure is a large hydrophobic residue, additional large hydrophobic amino acids may be considered at that position. Alternatively, subsets of amino acids may be chosen to maximize diversity. In this case, amino acids with properties dissimilar to those in the template structure may be considered at variable positions. For example, if the residue at a variable position in the template is a large hydrophobic residue, amino acids that are small, polar, etc. may be considered.

[149] As is known in the art, some computational screening methods require only the identity of considered amino acids to be determined during design calculations. That is, no information is required concerning the conformations or possible conformations of the amino acid side chains.
Other preferred methods utilize a set of discrete side chain conformations, called rotamers, which are considered for each amino acid. Thus, a set of rotamers may be considered at each variable and floated position. Rotamers may be obtained from published rotamer libraries (see for example, Love[
et al., 2000, Proteins: Structure Function and Genetics 40:389-408; Dunbrack &
Cohen, 1997, Protein Science 6:1661-1681; DeMaeyer et al., 1997, Folding and Design 2:53-66;
Tuffery et al., 1991, J
Biomol Struct Dyn 8:1267-1289, Ponder & Richards, 1987, J Mol Bio! 193:775-791). As is known in the art, rotamer libraries may be backbone-independent or backbone-dependent.
Rotamers may also be obtained from molecular mechanics or ab initio calculations, and using other methods. In a preferred embodiment, a flexible rotamer model is used (see Mendes et al., 1999, Proteins: Structure, Function, and Genetics 37:530-543). Similarly, artificially generated rotamers may be used, or augment the set chosen for each amino acid and/or variable position. In one embodiment, at least one conformation that is not low in energy is included in the list of rotamers. In an alternate embodiment, the rotamer of the variable position residue in the template structure is included in the list of rotamers allowed for that variable position. In an alternate embodiment, only the identity of each amino acid considered at variable positions is provided, and no specific conformational states of each amino acid are used during design calculations. That is, use of rotamers is not essential for computational screening.

[150] Experimental information may be used to guide the choice of variable positions and/or the choice of considered amino acids at variable positions. As is known in the art, mutagenesis experiments are often carried out to determine the role of certain residues in protein structure and function, for example, which protein residues play a role in determining stability, or which residues make up the interface of a protein-protein interaction. Data obtained from such experiments are useful in the present invention. For example, variable positions for Fc/FcyR
affinity enhancement could involve varying all positions at which mutation has been shown to affect binding. Similarly, the results from such an experiment may be used to guide the choice of allowed amino acid types at variable positions. For example, if certain types of amino acid substitutions are found to be favorable, similar types of those amino acids may be considered. In one embodiment, additional amino acids with properties similar to those that were found to be favorable experimentally may be considered at variable positions. For example, if experimental mutation of a variable position at an Fc/FcyR
interface to a large hydrophobic residue was found to be favorable, the user may choose to include additional large hydrophobic amino acids at that position in the computational screen. As is known in the art, display and other selection technologies may be coupled with random mutagenesis to generate a list or lists of amino acid substitutions that are favorable for the selected property. Such a list or lists obtained from such experimental work find use in the present invention. For example, positions that are found to be invariable in such an experiment may be excluded as variable positions in computational screening calculations, whereas positions that are found to be more acceptable to mutation or respond favorably to mutation may be chosen as variable positions.
Similarly, the results from such experiments may be used to guide the choice of allowed amino acid types at variable positions. For example, if certain types of amino acids arise more frequently in an experimental selection, similar types of those amino acids may be considered. In one embodiment, additional amino acids with properties similar to those that were found to be favorable experimentally may be considered at variable positions. For example, if selected mutations at a variable position that resides at an Fc/FcyR interface are found to be uncharged polar amino acids, the user may choose to include additional uncharged polar amino acids, or perhaps charged polar amino acids, at that position.

[151] Sequence information may also be used to guide choice of variable positions and/or the choice of amino acids considered at variable positions. As is known in the art, some proteins share a common structural scaffold and are homologous in sequence. This information may be used to gain insight into particular positions in the protein family. As is known in the art, sequence alignments are often carried out to determine which protein residues are conserved and which are not conserved.
That is to say, by comparing and contrasting alignments of protein sequences, the degree of variability at a position may be observed, and the types of amino acids. that occur naturally at positions may be observed. Data obtained from such analyses are useful in the present invention. The benefit, of using sequence information to choose variable positions and considered amino acids at variable positions are several fold. For choice of variable positions, the primary advantage of using sequence information is that insight may be gained into which positions are more tolerant and which are less tolerant to mutation. Thus sequence information may aid in ensuring that quality diversity, i.e.
mutations that are not deleterious to protein structure, stability, etc., is sampled computationally. The same advantage applies to use of sequence information to select amino acid types considered at variable positions. That is, the set of amino acids that occur in a protein sequence alignment may be thought of as being pre-screened by evolution to have a higher chance than random for being compatible with a protein's structure, stability, solubility, function, etc.
Thus higher quality diversity is sampled computationally. A second benefit of using sequence information to select amino acid types considered at variable positions is that certain alignments may represent sequences that may be less immunogenic than random sequences. For example, if the amino acids considered at a given variable position are the set of amino acids which occur at that position in an alignment of human protein sequences, those amino acids may be thought of as being pre-screened by nature for generating no or low immune response if the optimized protein is used as a human therapeutic.
[152] The source of the sequences may vary widely, and include one or more of the known databases, including but not limited to the Kabat database (Johnson & Wu, 2001, Nucleic Acids Res 29:205-206; Johnson & Wu, 2000, Nucleic Acids Res 28:214-218), the IMGT
database (IMGT, the international ImMunoGeneTics information system ; Lefranc et al., 1999, Nucleic Acids Res 27:209-212; Ruiz et al., 2000 Nucleic Acids Re. 28:219-221; Lefranc et al., 2001, Nucleic Acids Res 29:207-209; Lefranc et al., 2003, Nucleic Acids Res 31:307-310), and VBASE, SwissProt, GenBank and Entrez, and EMBL Nucleotide Sequence Database. Protein sequence information can be obtained, compiled, and/or generated from sequence alignments of naturally occurring proteins from any organism, including but not limited to mammals. Protein sequence information can be obtained from a database that is compiled privately. There are numerous sequence-based alignment programs and methods known in the art, and all of these find use in the present invention for generation of sequence alignments of proteins that comprise Fc and Fc ligands.

[153] Once alignments are made, sequence information can be used to guide choice of variable positions. Such sequence information can relate the variability, natural or otherwise, of a given position. Variability herein should be distinguished from variable position.
Variability refers to the degree to which a given position in a sequence alignment shows variation in the types of amino acids that occur there. Variable position, to reiterate, is a position chosen by the user to vary in amino acid identity during a computational screening calculation. Variability may be determined qualitatively by one skilled in the art of bioinformatics. There are also methods known in the art to quantitatively determine variability that may find use in the present invention. The most preferred embodiment measures Information Entropy or Shannon Entropy. Variable positions can be chosen based on sequence information obtained from closely related protein sequences, or sequences that are less closely related.

[154] The use of sequence information to choose variable positions finds broad use in the present invention. For example, if an Fc/FcyR interface position in the template structure is tryptophan, and tryptophan is observed at that position in greater than 90% of the sequences in an alignment, it may be beneficial to leave that position fixed. In contrast, if another interface position is found to have a greater level of variability, for example if five different amino acids are observed at that position with frequencies of approximately 20% each, that position may be chosen as a variable position. In another embodiment, visual inspection of aligned protein sequences may substitute for or aid visual inspection of a protein structure. Sequence information can also be used to guide the choice of amino acids considered at variable positions. Such sequence information can relate to how frequently an amino acid, amino acids, or amino acid types (for example polar or nonpolar, charged or uncharged) occur, naturally or otherwise, at a given position. In one embodiment, the set of amino acids considered at a variable position may comprise the set of amino acids that is observed at that position in the alignment. Thus, the position-specific alignment information is used directly to generate the list of considered amino acids at a variable position in a computational screening calculation. Such a strategy is well known in the art; see for example Lehmann & Wyss, 2001, Curr Opin Biotechnol 12(4):371-5; Lehmann et al., 2000, Biochim Biophys Acta 1543(2):408-415; Rath & Davidson, 2000, Protein Sci, 9(12):2457-69; Lehmann et al., 2000, Protein Eng 13(1):49-57;
Desjarlais & Berg, 1993, Proc Natl Acad Sci USA 90(6):2256-60; Desjarlais & Berg, 1992, Proteins 12(2):101-4; Henikoff &
Henikoff, 2000, Adv Protein Chem 54:73-97; Henikoff & Henikoff, 1994, J Mol Biol 243(4):574-8. In an alternate embodiment, the set of amino acids considered at a variable position or positions may comprise a set of amino acids that is observed most frequently in the alignment. Thus, a certain criteria is applied to determine whether the frequency of an amino acid or amino acid type warrants its inclusion in the set of amino acids that are considered at a variable position. As is known in the art, sequence alignments may be analyzed using statistical methods to calculate the sequence diversity at any position in the alignment and the occurrence frequency or probability of each amino acid at a position. Such data may then be used to determine which amino acids types to consider. In the simplest embodiment, these occurrence frequencies are calculated by counting the number of times an amino acid is observed at an alignment position, then dividing by the total number of sequences in the alignment. In other embodiments, the contribution of each sequence, position or amino acid to the counting procedure is weighted by a variety of possible mechanisms. In a preferred embodiment, the contribution of each aligned sequence to the frequency statistics is weighted according to its diversity weighting relative to other sequences in the alignment. A common strategy for accomplishing this is the sequence weighting system recommended by Henikoff and Henikoff (Henikoff &
Henikoff, 2000, Adv Protein Chem 54:73-97; Henikoff & Henikoff, 1994, J Mol Biol 243:574-8. In a preferred embodiment, the contribution of each sequence to the statistics is dependent on its extent of similarity to the target sequence, i.e. the template structure used, such that sequences with higher similarity to the target sequence are weighted more highly. Examples of similarity measures include, but are not limited to, sequence identity, BLOSUM similarity score, PAM matrix similarity score, and BLAST
score. In an alternate embodiment, the contribution of each sequence to the statistics is dependent on its known physical or functional properties. These properties include, but are not limited to, thermal and chemical stability, contribution to activity, and solubility. For example, when optimizing aglycosylated Fc for solubility, those sequences in an alignment that are known to be most soluble (for example see Ewert et al., 2003, J Mol Biol 325:531-553), will contribute more heavily to the calculated frequencies.

[155] Regardless of what criteria are applied for choosing the set of amino acids in a sequence alignment to be considered at variable positions, use of sequence information to choose considered amino acids finds broad use in the present invention. For example, to optimize Fc solubility by replacing exposed nonpolar surface residues, considered amino acids may be chosen as the set of amino acids, or a subset of those amino acids which meet some criteria, that are observed at that position in an alignment of protein sequences. As another example, one or more amino acids may be added or subtracted subjectively from a list of amino acids derived from a sequence alignment in order to maximize coverage. For example, additional amino acids with properties similar to those that are found in a sequence alignment may be considered at variable positions. For example, if an Fc position that is known to or hypothesized to bind an FcyR is observed to have uncharged polar amino acids in a sequence alignment, the user may choose to include additional uncharged polar amino acids in a computational screening calculation, or perhaps charged polar amino acids, at that position.

[156] In one embodiment, sequence alignment information is combined with energy calculation, as discussed below. For example, pseudo energies can be derived from sequence information to generate a scoring function. The use of a sequence-based scoring function may assist in significantly reducing the complexity of a calculation. However, as is appreciated by those skilled in the art, the use of a sequence-based scoring function alone may be inadequate because sequence information can often indicate misleading correlations between mutations that may in reality be structurally conflicting. Thus, in a preferred embodiment, a structure-based method of energy calculation is used, either alone or in combination with a sequence-based scoring function. That is, preferred embodiments do not rely on sequence alignment information alone as the analysis step.

[157] Energy calculation refers to the process by which amino acid modifications are scored. The energies of interaction are measured by one or more scoring functions. A
variety of scoring functions find use in the present invention for calculating energies. Scoring functions may include any number of potentials, herein referred to as the energy terms of a scoring function, including but not limited to a van der Waals potential, a hydrogen bond potential, an atomic solvation potential or other solvation models, a secondary structure propensity potential, an electrostatic potential, a torsional potential, and an entropy potential. At least one energy term is used to score each variable or floated position, although the energy terms may differ depending on the position, considered amino acids, and other considerations. In one embodiment, a scoring function using one energy term is used. In the most preferred embodiment, energies are calculated using a scoring function that contains more than one energy term, for example describing van der Waals, solvation, electrostatic, and hydrogen bond interactions, and combinations thereof. In additional embodiments, additional energy terms include but are not limited to entropic terms, torsional energies, and knowledge-based energies.

[158] A variety of scoring functions are described in US 6,188,965; US
6,269,312; US 6,403,312;
USSN 09/782,004; USSN 09/927,790; USSN 09/877,695; USSN 10/071,859, USSN
10/218,102; PCT
WO 98/07254; PCT WO 01/40091; and PCT WO 02/25588. As will be appreciated by those skilled in the art, scoring functions need not be limited to physico-chemical energy terms. For example, knowledge-based potentials may find use in the computational screening methodology of the present invention. Such knowledge-based potentials may be derived from protein sequence and/or structure statistics including but not limited to threading potentials, reference energies, pseudo energies, homology-based energies, and sequence biases derived from sequence alignments.
In a preferred embodiment, a scoring function is modified to include models for immunogenicity, such as functions derived from data on binding of peptides to MHC (Major Htocompatability Complex), that may be used to identify potentially immunogenic sequences (see for example USSN
09/903,378; USSN
10/039,170; USSN 60/222,697; USSN 10/339788; PCT WO 01/21823; and PCT WO
02/00165). In one embodiment, sequence alignment information can be used to score amino acid substitutions. For example, comparison of protein sequences, regardless of whether the source of said proteins is human, monkey, mouse, or otherwise, may be used to suggest or score amino acid mutations in the computational screening methodology of the present invention. In one embodiment, as is known in the art, one or more scoring functions may be optimized or "trained" during the computational analysis, and then the analysis re-run using the optimized system. Such altered scoring functions may be obtained for example, by training a scoring function using experimental data. As will be appreciated by those skilled in the art, a number of force fields, which are comprised of one or more energy terms, may serve as scoring functions. Force fields include but are not limited to ab initio or quantum mechanical force fields, semi-empirical force fields, and molecular mechanics force fields.
Scoring functions that are knowledge-based or that use statistical methods may find use in the present invention. These methods may be used to assess the match between a sequence and a three-dimensional protein structure, and hence may be used to score amino acid substitutions for fidelity to the protein structure. In one embodiment, molecular dynamics calculations may be used to computationally screen sequences by individually calculating mutant sequence scores.

[159] There area variety of ways to represent amino acids in order to enable efficient energy calculation. In a preferred embodiment, considered amino acids are represented as rotamers, as described previously, and the energy (or score) of interaction of each possible rotamer at each variable and floated position with the other variable and floated rotamers, with fixed position residues, and with the backbone structure and any non-protein atoms, is calculated. In a preferred embodiment, two sets of interaction energies are calculated for each side chain rotamer at every variable and floated position: the interaction energy between the rotamer and the fixed atoms (the "singles" energy), and the interaction energy between the variable and floated positions rotamer and all other possible rotamers at every other variable and floated position (the "doubles" energy). In an alternate embodiment, singles and doubles energies are calculated for fixed positions as well as for variable and floated positions. In an alternate embodiment, considered amino acids are not represented as rotamers.

[160] An important component of computational screening is the identification of one or.more sequences that have a favorable score, i.e. are low in energy. Determining a set of low energy sequences from an extremely large number of possibilities is nontrivial, and to solve this problem a combinatorial optimization algorithm is employed. The need for a combinatorial optimization algorithm is illustrated by examining the number of possibilities that are considered in a typical computational screening calculation. The discrete nature of rotamer sets allows a simple calculation of the number of possible rotameric sequences for a given design problem. A backbone of length n with m possible rotamers per position will have Mn possible rotamer sequences, a number that grows exponentially with sequence length. For very simple calculations, it is possible to examine each possible sequence in order to identify the optimal sequence and/or one or more favorable sequences. However, for a typical design problem, the number of possible sequences (up to 1080 or more) is sufficiently large that examination of each possible sequence is intractable. A variety of combinatorial optimization algorithms may then be used to identify the optimum sequence and/or one or more favorable sequences. Combinatorial optimization algorithms may be divided into two classes: (1) those that are guaranteed to return the global minimum energy configuration if they converge, and (2) those that are not guaranteed to return the global minimum energy configuration, but which will always return a solution. Examples of the first class of algorithms include but are not limited to Dead-End Elimination (DEE) and Branch & Bound (B&B) (including Branch and Terminate) (Gordon &
Mayo, 1999, Structure Fold Des 7:1089-98). Examples of the second class of algorithms include, but are not limited to, Monte Carlo (MC), self-consistent mean field (SCMF), Boltzmann sampling (Metropolis et aL, 1953, J Chem Phys 21:1087), simulated annealing (Kirkpatrick et aL, 1983, Science, 220:671-680), genetic algorithm (GA), and Fast and Accurate Side-Chain Topology and Energy Refinement (FASTER) (Desmet, et al., 2002, Proteins, 48:31-43). A combinatorial optimization algorithm may be used alone or in conjunction with another combinatorial optimization algorithm.

[161] In one embodiment of the present invention, the strategy for applying a combinatorial optimization algorithm is to find the global minimum energy configuration. In an alternate embodiment, the strategy is to find one or more low energy or favorable sequences. In an alternate embodiment, the strategy is to find the global minimum energy configuration and then find one or more low energy or favorable sequences. For example, as outlined in USSN
6,269,312, preferred embodiments utilize a Dead End Eliminationl(DEE) step and a Monte Carlo step.
In other embodiments, tabu search algorithms are used or combined with DEE and/or Monte Carlo, among other search methods (see Modern Heuristic Search Methods, edited by V.J.
Rayward-Smith et aL, 1996, John Wiley & Sons Ltd.; USSN 10/218,102; and PCT WO 02/25588). In another preferred embodiment, a genetic algorithm may be used; see for example USSN 09/877,695 and USSN
10/071,859. As another example, as is more fully described in US 6,188,965; US
6,269,312; US
6,403,312; USSN 09/782,004; USSN 09/927,790; USSN 10/218,102; PCT WO 98/07254;
PCT WO
01/40091; and PCT WO 02/25588, the global optimum may be reached, and then further computational processing may occur, which generates additional optimized sequences. In the simplest embodiment, design calculations are not combinatorial. That is, energy calculations are used to evaluate amino acid substitutions individually at single variable positions. For other calculations it is preferred to evaluate amino acid substitutions at more than one variable position. In a preferred embodiment, all possible interaction energies are calculated prior to combinatorial optimization. In an alternatively preferred embodiment, energies may be calculated as needed during combinatorial optimization.

Library -generation [162] The present invention provides methods for generating libraries that may subsequently be screened experimentally to single out optimized Fc variants. By "libra 'as used herein is meant a set of one or more Fc variants. Library may refer to the set of variants in any form. In one embodiment, the library is a list of nucleic acid or amino acid sequences, or a list of nucleic acid or amino acid substitutions at variable positions. For example, the examples used to illustrate the present invention below provide libraries as amino acid substitutions at variable positions. In one embodiment, a library is a list of at least one sequence that are Fc variants optimized for a desired property. For example see, Filikov et al., 2002, Protein Sci 11:1452-1461 and Luo et al., 2002, Protein Sc! 11:1218-1226. In an alternate embodiment, a library maybe defined as a combinatorial list, meaning that a list of amino acid substitutions is generated for each variable position, with the implication that each substitution is to be combined with all other designed substitutions at all other variable positions. In this case, expansion of the combination of all possibilities at all variable positions results in a large explicitly defined library. A library may refer to a physical composition of polypeptides that comprise the Fc region or some domain or fragment of the Fc region. Thus a library may refer to a physical composition of antibodies or Fc fusions, either in purified or unpurified form. A
library may refer to a physical composition of nucleic acids that encode the library sequences. Said nucleic acids may be the genes encoding the library members, the genes encoding the library members with any operably linked nucleic acids, or expression vectors encoding the library members together with any other operably linked regulatory sequences, selectable markers, fusion constructs, and/or other elements. For example, the library may be a set of mammalian expression vectors that encode Fc library members, the protein products of which may be subsequently expressed, purified, and screened experimentally. As another example, the library may be a display library. Such a library could, for example, comprise a set of expression vectors that encode library members operably linked to some fusion partner that enables phage display, ribosome display, yeast display, bacterial surface display, and the like.

[163] The library maybe generated using the output sequence or sequences from computational screening. As discussed above, computationally generated libraries are significantly enriched in stable, properly folded, and functional sequences relative to randomly generated libraries. As a result, computational screening increases the chances of identifying proteins that are optimized for the design goal. The set of sequences in a library is generally, but not always, significantly different from the parent sequence, although in some cases the library preferably contains the parent sequence. As is known in the art, there are a variety of ways that a library may be derived from the output of computational screening calculations. For example, methods of library generation described in US
6,403,312; USSN 09/782,004; USSN 09/927,790; USSN 10/218,102; PCT WO 01/40091;
and PCT
WO 02/25588 find use in the present invention. In one embodiment, sequences scoring within a certain range of the global optimum sequence may be included in the library.
For example, all sequences within 10 kcal/mol of the lowest energy sequence could be used as the library. In an alternate embodiment, sequences scoring within a certain range of one or more local minima sequences may be used. In a preferred embodiment, the library sequences are obtained from a filtered set. Such a list or set may be generated by a variety of methods, as is known in the art, for example using an algorithm such as Monte Carlo, B&B, or SCMF. For example, the top 103 or the top 105 sequences in the filtered set may comprise the library. Alternatively, the total number of sequences defined by the combination of all mutations may be used as a cutoff criterion for the library. Preferred values for the total number of recombined sequences range from 10 to 1020, particularly preferred values range from 100 to 109. Alternatively, a cutoff may be enforced when a predetermined number of mutations per position is reached. In some embodiments, sequences that do not make the cutoff are included in the library. This may be desirable in some situations, for instance to evaluate the approach to library generation, to provide controls or comparisons, or to sample additional sequence space. For example, the parent sequence may be included in the library, even if it does not make the cutoff.

[164] Clustering algorithms maybe useful for classifying sequences derived by computational screening methods into representative groups. For example, the methods of clustering and their application described in USSN 10/218,102 and PCT WO 02/25588, find use in the present invention.
Representative groups may be defined, for example, by similarity. Measures of similarity include, but are not limited to sequence similarity and energetic similarity. Thus the output sequences from computational screening may be clustered around local minima, referred to herein as clustered sets of sequences. For example, sets of sequences that are close in sequence space may be distinguished from other sets. In one embodiment, coverage within one or a subset of clustered sets may be maximized by including in the library some, most, or all of the sequences that make up one or more clustered sets of sequences. For example, it may be advantageous to maximize coverage within the one, two, or three lowest energy clustered sets by including the majority of sequences within these sets in the library. In an alternate embodiment, diversity across clustered sets of sequences may be sampled by including within a library only a subset of sequences within each clustered set. For example, all or most of the clustered sets could be broadly sampled by including the lowest energy sequence from each clustered set in the library.

[165] Sequence information may be used to guide or filter computationally screening results for generation of a library. As discussed, by comparing and contrasting alignments of protein sequences, the degree of variability at a position and the types of amino acids which occur naturally at that position may be observed. Data obtained from such analyses are useful in the present invention.
The benefits of using sequence information have been discussed, and those benefits apply equally to use of sequence information to guide library generation. The set of amino acids that occur in a sequence alignment may be thought of as being pre-screened by evolution to have a higher chance than random at being compatible with a protein's structure, stability, solubility, function, and immunogenicity. The variety of sequence sources, as well as the methods for generating sequence alignments that have been discussed, find use in the application of sequence information to guiding library generation. Likewise, as discussed above, various criteria may be applied to determine the importance or weight of certain residues in an alignment. These methods also find use in the application of sequence information to guide library generation. Using sequence information to guide library generation from the results of computational screening finds broad use in the present invention.
In one embodiment, sequence information is used to filter sequences from computational screening output. That is to say, some substitutions are subtracted from the computational output to generate the library. For example the resulting output of a computational screening calculation or calculations may be filtered so that the library includes only those amino acids, or a subset of those amino acids that meet some criteria, for example that are observed at that position in an alignment of sequences.
In an alternate embodiment, sequence information is used to add sequences to the computational screening output. That is to say, sequence information is used to guide the choice of additional amino acids that are added to the computational output to generate the library. For example, the output set of amino acids for a given position from a computational screening calculation may be augmented to include one or more amino acids that are observed at that position in an alignment of protein sequences. In an alternate embodiment, based on sequence alignment information, one or more amino acids may be added to or subtracted from the computational screening sequence output in order to maximize coverage or diversity. For example, additional amino acids with properties similar to those that are found in a sequence alignment may be added to the library.
For example, if a position is observed to have uncharged polar amino acids in a sequence alignment, additional uncharged polar amino acids may be included in the library at that position.

[166] Libraries may be processed further to generate subsequent libraries. In this way, the output from a computational screening calculation or calculations may be thought of as a primary library.
This primary library may be combined with other primary libraries from other calculations or other libraries, processed using subsequent calculations, sequence information, or other analyses, or processed experimentally to generate a subsequent library, herein referred to as a secondary library.
As will be appreciated from this description, the use of sequence information to guide or filter libraries, discussed above, is itself one method of generating secondary libraries from primary libraries.
Generation of secondary libraries gives the user greater control of the parameters within a library.
This enables more efficient experimental screening, and may allow feedback from experimental results to be interpreted more easily, providing a more efficient design/experimentation cycle.

[167] There area wide variety of methods to generate secondary libraries from primary libraries.
For example, USSN 10/218,102 and PCT WO 02/25588, describes methods for secondary library generation that find use in the present invention. Typically some selection step occurs in which a primary library is processed in some way. For example, in one embodiment a selection step occurs wherein some set of primary sequences are chosen to form the secondary library. In an alternate embodiment, a selection step is a computational step, again generally including a selection step, wherein some subset of the primary library is chosen and then subjected to further computational analysis, including both further computational screening as well as techniques such as "in silico"
shuffling or recombination (see, for example US 5,830,721; US 5,811,238; US
5,605,793; and US
5,837,458, error-prone PCR, for example using modified nucleotides; known mutagenesis techniques including the use of multi-cassettes; and DNA shuffling (Crameri et al., 1998, Nature 391:288-291;
Coco et al., 2001, Nat Biotechnol 19:354-9; Coco et al., 2002, Nat Biotechnol, 20:1246-50), heterogeneous DNA samples (US 5,939,250); ITCHY (Ostermeier at aL, 1999, Nat Biotechnol 17:1205-1209); StEP (Zhao et aL, 1998, Nat Biotechnol 16:258-261), GSSM (US
6,171,820 and US
5,965,408); in vivo homologous recombination, ligase assisted gene assembly, end-complementary PCR, profusion (Roberts & Szostak, 1997, Proc Natl Acad Sci USA 94:12297-12302); yeast/bacteria surface display (Lu et aL, 1995, Biotechnology 13:366-372); Seed & Aruffo, 1987, Proc Natl Acad Sci USA 84(10):3365-3369; Boder & Wittrup, 1997, Nat Biotechnol 15:553-557). In an alternate embodiment, a selection step occurs that is an experimental step, for example any of the library screening steps below, wherein some subset of the primary library is chosen and then recombined experimentally, for example using one of the directed evolution methods discussed below, to form a secondary library. In a preferred embodiment, the primary library is generated and processed as outlined in US 6,403,312.

[168] Generation of secondary and subsequent libraries finds broad use in the present invention. In one embodiment, different primary libraries may be combined to generate a secondary or subsequent library. In another embodiment, secondary libraries may be generated by sampling sequence diversity at highly mutatable or highly conserved positions. The primary library may be analyzed to determine which amino acid positions in the template protein have high mutational frequency, and which positions have low mutational frequency. For example, positions in a protein that show a great deal of mutational diversity in computational screening may be fixed in a subsequent round of design calculations. A filtered set of the same size as the first would now show diversity at positions that were largely conserved in the first library. Alternatively, the secondary library may be generated by varying the amino acids at the positions that have high numbers of mutations, while keeping constant the positions that do not have mutations above a certain frequency.

[169] This discussion is not meant to constrain generation of libraries subsequent to primary libraries to secondary libraries. As will be appreciated, primary and secondary libraries may be processed further to generate tertiary libraries, quaternary libraries, and so on. In this way, library generation is an iterative process. For example, tertiary libraries may be constructed using a variety of additional steps applied to one or more secondary libraries; for example, further computational processing may occur, secondary libraries may be recombined, or subsets of different secondary libraries may be combined. In a preferred embodiment, a tertiary library may be generated by combining secondary libraries. For example, primary and/or secondary libraries that analyzed different parts of a protein may be combined to generate a tertiary library that treats the combined parts of the protein. In an alternate embodiment, the variants from a primary library may be combined with the variants from another primary library to provide a combined tertiary library at lower computational cost than creating a very long filtered set. These combinations may be used, for example, to analyze large proteins, especially large multi-domain proteins, of which Fc is an example.
Thus the above description of secondary library generation applies to generating any library subsequent to a primary library, the end result being a final library that may screened experimentally to obtain protein variants optimized for a design goal. These examples are not meant to constrain generation of secondary libraries to any particular application or theory of operation for the present invention. Rather, these examples are meant to illustrate that generation of secondary libraries, and subsequent libraries such as tertiary libraries and so on, is broadly useful in computational screening methodology for library generation.

Experimental Production and Screening [170] The present invention provides methods for producing and screening libraries of Fc variants.
The described methods are not meant to constrain the present invention to any particular application or theory of operation. Rather, the provided methods are meant to illustrate generally that one or more Fc variants or one or more libraries of Fc variants may be produced and screened experimentally to obtain optimized Fc variants. Fc variants may be produced and screened in any context, whether as an Fc region as precisely defined herein, a domain or fragment thereof, or a larger polypeptide that comprises Fc such as an antibody or Fc fusion. General methods for antibody molecular biology, expression, purification, and screening are described in Antibody Engineering, edited by Duebel & Kontermann, Springer-Verlag, Heidelberg, 2001; and Hayhurst & Georgiou, 2001, Curr Opin Chem 061 5:683-689; Maynard & Georgiou, 2000, Annu Rev Biomed Eng 2:339-76;
Antibodies: A Laboratory Manual by Harlow & Lane, New York: Cold Spring Harbor Laboratory Press, 1988.

[171] In one embodiment of the present invention, the library sequences are used to create nucleic acids that encode the member sequences, and that may then be cloned into host cells, expressed and assayed, if desired. Thus, nucleic acids, and particularly DNA, may be made that encode each member protein sequence. These practices are carried out using well-known procedures. For example, a variety of methods that may find use in the present invention are described in Molecular Cloning - A Laboratory Manual, 3`d Ed. (Maniatis, Cold Spring Harbor Laboratory Press, New York, 2001), and Current Protocols in Molecular Biology (John Wiley & Sons). As will be appreciated by those skilled in the art, the generation of exact sequences for a library comprising a large number of sequences is potentially expensive and time consuming. Accordingly, there are a variety of techniques that may be used to efficiently generate libraries of the present invention. Such methods that may find use in the present invention are described or referenced in US
6,403,312; USSN
09/782,004; USSN 09/927,790; USSN 10/218,102; PCT WO 01/40091; and PCT WO
02/25588.
Such methods include but are not limited to gene assembly methods, PCR-based method and methods which use variations of PCR, ligase chain reaction-based methods, pooled oligo methods such as those used in synthetic shuffling, error-prone amplification methods and methods which use oligos with random mutations, classical site-directed mutagenesis methods, cassette mutagenesis, and other amplification and gene synthesis methods. As is known in the art, there are a variety of commercially available kits and methods for gene assembly, mutagenesis, vector subcloning, and the like, and such commercial products find use in the present invention for generating nucleic acids that encode Fc variant members of a library.

[172] The Fc variants of the present invention may be produced by culturing a host cell transformed with nucleic acid, preferably an expression vector, containing nucleic acid encoding the Fc variants, under the appropriate conditions to induce or cause expression of the protein.
The conditions appropriate for expression will vary with the choice of the expression vector and the host cell, and will be easily ascertained by one skilled in the art through routine experimentation. A wide variety of appropriate host cells may be used, including but not limited to mammalian cells, bacteria, insect cells, and yeast. For example, a variety of cell lines that may find use in the present invention are described in the ATCC cell line catalog, available from the American Type Culture Collection.

[173] In a preferred embodiment, the Fc variants are expressed in mammalian expression systems, including systems in which the expression constructs are introduced into the mammalian cells using virus such as retrovirus or adenovirus. Any mammalian cells may be used, with human, mouse, rat, hamster, and primate cells being particularly preferred. Suitable cells also include known research cells, including but not limited to Jurkat T cells, NIH3T3, CHO, COS, and 293 cells. In an alternately preferred embodiment, library proteins are expressed in bacterial cells.
Bacterial expression systems are well known in the art, and include Escherichia coli (E. coli), Bacillus subtilis, Streptococcus cremoris, and Streptococcus lividans. In alternate embodiments, Fc variants are produced in insect cells or yeast cells. In an alternate embodiment, Fc variants are expressed in vitro using cell free translation systems. In vitro translation systems derived from both prokaryotic (e.g. E. coli) and eukaryotic (e.g. wheat germ, rabbit reticulocytes) cells are available and may be chosen based on the expression levels and functional properties of the protein of interest. For example, as appreciated by those skilled in the art, in vitro translation is required for some display technologies, for example ribosome display. In addition, the Fc variants may be produced by chemical synthesis methods.
[174] The nucleic acids that encode the Fc variants of the present invention may be incorporated into an expression vector in order to express the protein. A variety of expression vectors may be utilized for protein expression. Expression vectors may comprise self-replicating extra-chromosomal vectors or vectors which integrate into a host genome. Expression vectors are constructed to be compatible with the host cell type. Thus expression vectors which find use in the present invention include but are not limited to those which enable protein expression in mammalian cells, bacteria, insect cells, yeast, and in in vitro systems. As is known in the art, a variety of expression vectors are available, commercially or otherwise, that may find use in the present invention for expressing Fc variant proteins.

[175] Expression vectors typically comprise a protein operably linked with control or regulatory sequences, selectable markers, any fusion partners, and/or additional elements. By "operably linked"
herein is meant that the nucleic acid is placed into a functional relationship with another nucleic acid sequence. Generally, these expression vectors include transcriptional and translational regulatory nucleic acid operably linked to the nucleic acid encoding the Fc variant, and are typically appropriate to the host cell used to express the protein. In general, the transcriptional and translational regulatory sequences may include promoter sequences, ribosomal binding sites, transcriptional start and stop sequences, translational start and stop sequences, and enhancer or activator sequences. As is also known in the art, expression vectors typically contain a selection gene or marker to allow the selection 52620-2(S) of transformed host cells containing the expression vector. Selection genes are well known in the art and will vary with the host cell used.

[176] Fc variants maybe operably linked to a fusion partner to enable targeting of the expressed protein, purification, screening, display, and the like. Fusion partners may be linked to the Fc variant sequence via a linker sequences. The linker sequence will generally comprise a small number of amino acids, typically less than ten, although longer linkers may also be used. Typically, linker sequences are selected to be flexible and resistant to degradation. As will be appreciated by those skilled in the art, any of a wide variety of sequences may be used as linkers.
For example, a common linker sequence comprises the amino acid sequence GGGGS. A fusion partner may be a targeting or signal sequence that directs Fc variant protein and any associated fusion partners to a desired cellular location or to the extracellular media. As is known in the art, certain signaling sequences may target a protein to be either secreted into the growth media, or Into the periplasmic space, located between the inner and outer membrane of the cell. A fusion partner may also be a sequence that encodes a peptide or protein that enables purification and/or screening. Such fusion partners Include but are not limited to polyhistidine tags (His-tags) (for example He and H10 or other tags for use with Immobilized Metal Affinity Chromatography (IMAC) systems (e.g. NI 2 affinity columns)), GST fusions, MBP
fusions, Strep-tag, the BSP biotinylation target sequence of the bacterial enzyme BirA, and epitope tags which are targeted by antibodies (for example c-myc tags, flag-tags, and the like). As will be appreciated by those skilled in the art, such tags may be useful for purification, for screening, or both.
For example, an Fc variant may be purified using a His-tag by immobilizing it to a Ni 2 affinity column, and then after purification the same His-tag may be used to immobilize the antibody to a Ni+2 coated plate to perform an ELISA or other binding assay (as described below). A
fusion partner may enable the use of a selection method to screen Fc variants (see below). Fusion partners that enable a variety of selection methods are well-known in the art, and all of these find use In the present invention. For example, by fusing the members of an Fc variant library to the gene III
protein, phage display can be employed (Kay et a/., Phage display of peptides and proteins: a laboratory manual, Academic Press, San Diego, CA, 1996; Lowman et aL, 1991, Biochemistry 30:10832-10838; Smith, 1985, Science 228:1315-1317). Fusion partners may enable Fc variants to be labeled.
Alternatively, a fusion partner may bind to a specific sequence on the expression vector, enabling the fusion partner and associated Fc variant to be linked covalently or noncovalently with the nucleic acid that encodes' them.
For example, PCT WO
00/22906; PCT WO 01/49058; PCT WO 02/04852; PCT WO 02/04853; PCT WO 02/08023;
PCT WO
01/28702; and PCT WO 02/07466 describe such a fusion partner and technique that may find use in the present invention.

[177] The methods of introducing exogenous nucleic acid into host cells are well known in the art, and will vary with the host cell used. Techniques include but are not limited to dextran-mediated transfection, calcium phosphate precipitation, calcium chloride treatment, polybrene mediated transfection, protoplast fusion, electroporation, viral or phage infection, encapsulation of the polynucleotide(s) in liposomes, and direct microinjection of the DNA into nuclei. In the case of mammalian cells, transfection may be either transient or stable.

[178] In a preferred embodiment, Fc variant proteins are purified or isolated after expression.
Proteins may be isolated or purified in a variety of ways known to those skilled in the art. Standard purification methods include chromatographic techniques, including ion exchange, hydrophobic interaction, affinity, sizing or gel filtration, and reversed-phase, carried out at atmospheric pressure or at high pressure using systems such as FPLC and HPLC. Purification methods also include electrophoretic, immunological, precipitation, dialysis, and chromatofocusing techniques.
Ultrafiltration and diafiltration techniques, in conjunction with protein concentration, are also useful.
As is well known in the art, a variety of natural proteins bind Fc and antibodies, and these proteins can find use in the present invention for purification of Fc variants. For example, the bacterial proteins A
and G bind to the Fc region. Likewise, the bacterial protein L binds to the Fab region of some antibodies, as of course does the antibody's target antigen. Purification can often be enabled by a particular fusion partner. For example, Fc variant proteins may be purified using glutathione resin if a GST fusion is employed, Ni+2 affinity chromatography if a His-tag is employed, or immobilized anti-flag antibody if a flag-tag is used. For general guidance in suitable purification techniques, see Protein Purification: Principles and Practice, 3rd Ed., Scopes, Springer-Verlag, NY, 1994. The degree of purification necessary will vary depending on the screen or use of the Fc variants. In some instances no purification is necessary. For example in one embodiment, if the Fc variants are secreted, screening may take place directly from the media. As is well known in the art, some methods of selection do not involve purification of proteins. Thus, for example, if a library of Fc variants is made into a phage display library, protein purification may not be performed.

[179] Fc variants may be screened using a variety of methods, including but not limited to those that use in vitro assays, in vivo and cell-based assays, and selection technologies. Automation and high-throughput screening technologies may be utilized in the screening procedures. Screening may employ the use of a fusion partner or label. The use of fusion partners has been discussed above.
By "labeled" herein is meant that the Fc variants of the invention have one or more elements, isotopes, or chemical compounds attached to enable the detection in a screen.
In general, labels fall into three classes: a) immune labels, which may be an epitope incorporated as a fusion partner that is recognized by an antibody, b) isotopic labels, which may be radioactive or heavy isotopes, and c) small molecule labels, which may include fluorescent and colorimetric dyes, or molecules such as biotin that enable other labeling methods. Labels may be incorporated into the compound at any position and may be incorporated in vitro or in vivo during protein expression.

[180] In a preferred embodiment, the functional and/or biophysical properties of Fc variants are screened in an in vitro assay. In vitro assays may allow a broad dynamic range for screening properties of interest. Properties of Fc variants that may be screened include but are not limited to stability, solubility, and affinity for Fc ligands, for example FcyRs.
Multiple properties may be screened simultaneously or individually. Proteins may be purified or unpurified, depending on the requirements of the assay. In one embodiment, the screen is a qualitative or quantitative binding assay for binding of Fc variants to a protein or nonprotein molecule that is known or thought to bind the Fc variant. In a preferred embodiment,. the screen is a binding assay for measuring binding to the antibody's or Fc fusions' target antigen. In an, alternately preferred embodiment, the screen is an assay for binding of Fc variants to an Fc ligand, including but are not limited to the family of FcyRs, the neonatal receptor FcRn, the complement protein C1q, and the bacterial proteins A and G. Said Fc ligands may be from any organism, with humans, mice, rats, rabbits, and monkeys preferred.
Binding assays can be carried out using a variety of methods known in the art, including but not limited to FRET (Fluorescence Resonance Energy Transfer) and BRET
(Bioluminescence Resonance Energy Transfer) -based assays, AlphaScreenT"" (Amplified Luminescent Proximity Homogeneous Assay), Scintillation Proximity Assay, ELISA (Enzyme-Linked Immunosorbent Assay), SPR (Surface Plasmon Resonance, also known as BIACORE ), isothermal titration calorimetry, differential scanning calorimetry, gel electrophoresis, and chromatography including gel filtration. These and other methods may take advantage of some fusion partner or label of the Fc variant. Assays may employ a variety of detection methods including but not limited to chromogenic, fluorescent, luminescent, or isotopic labels.

[181] The biophysical properties of Fc variant proteins, for example stability and solubility, may be screened using a variety of methods known in the art. Protein stability may be determined by measuring the thermodynamic equilibrium between folded and unfolded states.
For example, Fc variant proteins of the present invention may be unfolded using chemical denaturant, heat, or pH, and this transition may be monitored using methods including but not limited to circular dichroism spectroscopy, fluorescence spectroscopy, absorbance spectroscopy, NMR
spectroscopy, calorimetry, and proteolysis. As will be appreciated by those skilled in the art, the kinetic parameters of the folding and unfolding transitions may also be monitored using these and other techniques. The solubility and overall structural integrity of an Fc variant protein may be quantitatively or qualitatively determined using a wide range of methods that are known in the art. Methods which may find use in the present invention for characterizing the biophysical properties of Fc variant proteins include gel electrophoresis, chromatography such as size exclusion chromatography and reversed-phase high performance liquid chromatography, mass spectrometry, ultraviolet absorbance spectroscopy, fluorescence spectroscopy, circular dichroism spectroscopy, isothermal titration calorimetry, differential scanning calorimetry, analytical ultra-centrifugation, dynamic light scattering, proteolysis, and cross-linking, turbidity measurement, filter retardation assays, immunological assays, fluorescent dye binding assays, protein-staining assays, microscopy, and detection of aggregates via ELISA or other binding assay. Structural analysis employing X-ray crystallographic techniques and NMR
spectroscopy may also find use. In one embodiment, stability and/or solubility may be measured by determining the amount of protein solution after some defined period of time.
In this assay, the protein may or may not be exposed to some extreme condition, for example elevated temperature, low pH, or the presence of denaturant. Because function typically requires a stable, soluble, and/or well-folded/structured protein, the aforementioned functional and binding assays also provide ways to perform such a measurement. For example, a solution comprising an Fc variant could be assayed for its ability to bind target antigen, then exposed to elevated temperature for one or more defined periods of time, then assayed for antigen binding again. Because unfolded and aggregated protein is not expected to be capable of binding antigen, the amount of activity remaining provides a measure of the Fc variant's stability and solubility.

[182] In a preferred embodiment, the library is screened using one or more cell-based or in vivo assays. For such assays, Fc variant proteins, purified or unpurified, are typically added exogenously such that cells are exposed to individual variants or pools of variants belonging to a library. These assays are typically, but not always, based on the function of an antibody or Fc fusion that comprises the Fc variant; that is, the ability of the antibody or Fc fusion to bind a target antigen and mediate some biochemical event, for example effector function, ligand/receptor binding inhibition, apoptosis, and the like. Such assays often involve monitoring the response of cells to antibody or Fc fusion, for example cell survival, cell death, change in cellular morphology, or transcriptional activation such as cellular expression of a natural gene or reporter gene. For example, such assays may measure the ability of Fc variants to elicit ADCC, ADCP, or CDC. For some assays additional cells or components, that is in addition to the target cells, may need to be added, for example example serum complement, or effector cells such as peripheral blood monocytes (PBMCs), NK cells, macrophages, and the like.
Such additional cells may be from any organism, preferably humans, mice, rat, rabbit, and monkey.
Antibodies and Fc fusions may cause apoptosis of certain cell lines expressing the antibody's target antigen, or they may mediate attack on target cells by immune cells which have been added to the assay. Methods for monitoring cell death or viability are known in the art, and include the use of dyes, immunochemical, cytochemical, and radioactive reagents. For example, caspase staining assays may enable apoptosis to be measured, and uptake or release of radioactive substrates or fluorescent dyes such as alamar blue may enable cell growth or activation to be monitored.
In a preferred embodiment, the DELFIA EuTDA-based cytotoxicity assay (Perkin Elmer, MA) is used.
Alternatively, dead or damaged target cells may be monitoried by measuring the release of one or more natural intracellular proteins, for example lactate dehydrogenase.
Transcriptional activation may also serve as a method for assaying function in cell-based assays. In this case, response may be monitored by assaying for natural genes or proteins which may be upregulated, for example the release of certain interleukins may be measured, or alternatively readout may be via a reporter construct. Cell-based assays may also involve the measure of morphological changes of cells as a response to the presence of an Fc variant. Cell types for such assays may be prokaryotic or eukaryotic, and a variety of cell lines that are known in the art may be employed.

[183] Alternatively, cell-based screens are performed using cells that have been transformed or transfected with nucleic acids encoding the Fc variants. That is, Fc variant proteins are not added exogenously to the cells. For example, in one embodiment, the cell-based screen utilizes cell surface display. A fusion partner can be employed that enables display of Fc variants on the surface of cells (Witrrup, 2001, Curr Opin Biotechnol, 12:395-399). Cell surface display methods that may find use in the present invention include but are not limited to display on bacteria (Georgiou et al., 1997, Nat Biotechnol 15:29-34; Georgiou et al., 1993, Trends Biotechnol 11:6-10; Lee et al., 2000, Nat Biotechnol 18:645-648; Jun et al., 1998, Nat Biotechnol 16:576-80), yeast (Boder & Wittrup, 2000, Methods Enzymol 328:430-44; Boder & Wittrup, 1997, Nat Biotechnol 15:553-557), and mammalian cells (Whitehorn at al., 1995, Biotechnology 13:1215-1219). In an alternate embodiment, Fc variant proteins are not displayed on the surface of cells, but rather are screened intracellularly or in some other cellular compartment. For example, periplasmic expression and cytometric screening (Chen at al., 2001, Nat Biotechnol 19: 537-542), the protein fragment complementation assay (Johnsson &
Varshavsky, 1994, Proc Natl Acad Sci USA 91:10340-10344.; Pelletier et al., 1998, Proc Natl Acad Sci USA 95:12141-12146), and the yeast two hybrid screen (Fields & Song, 1989, Nature 340:245-246) may find use in the present invention. Alternatively, if a polypeptide that comprises the Fc variants, for example an antibody or Fc fusion, imparts some selectable growth advantage to a cell, this property may be used to screen or select for Fc variants.

[184] As is known in the art, a 'subset of screening methods are those that select for favorable members of a library. Said methods are herein referred to as "selection methods", and these methods find use in the present invention for screening Fe variant libraries. When libraries are screened using a selection method, only those members of a library that are favorable, that is which meet some selection criteria, are propagated, isolated, and/or observed. As will be appreciated, because only the most fit variants are observed, such methods enable the screening of libraries that are larger than those screenable by methods that assay the fitness of library members individually. Selection is enabled by any method, technique, or fusion partner that links, covalently or noncovalently, the phenotype of an Fc variant with its genotype, that is the function of an Fc variant with the nucleic acid that encodes it. For example the use of phage display as a selection method is enabled by the fusion of library members to the gene III protein. In this way, selection or isolation of variant proteins that meet some criteria, for example binding affinity for an FcyR, also selects for or isolates the nucleic acid that encodes it. Once isolated, the gene or genes encoding Fc variants may then be amplified.
This process of isolation and amplification, referred to as panning, may be repeated, allowing favorable Fc variants in the library to be enriched. Nucleic acid sequencing of the attached nucleic acid ultimately allows for gene identification.

[185] A variety of selection methods are known in the art that may find use in the present invention for screening Fc variant libraries. These include but are not limited to phage display (Phage display of peptides and proteins: a laboratory manual, Kay et al., 1996, Academic Press, San Diego, CA, 1996;
Lowman et al., 1991, Biochemistry 30:10832-10838; Smith, 1985, Science 228:1315-1317) and its 52620-2 (S) derivatives such as selective phage infection (Malmborg et a/., 1997, J Mol Blol 273:544-551), selectively infective phage (Krebber et al., 1997, J Mot Biol 268:619-630), and delayed infectivity panning (Benhar at al., 2000, J Mol Biol 301:893-904), cell surface display (Witrrup, 2001, Curr Opin Blotechnol, 12:395-399) such as display on bacteria (Georgiou at aL, 1997, Nat Biotechnol 15:29-34;
Georgiou et aL, 1993, Trends Biotechnol 11:6-10; Lee at al., 2000, Nat Biotechnol 18:645-648; Jun of al., 1998, Nat Biotechnol 16:576-80), yeast (Boder & Wittrup, 2000, Methods Enzymol 328:430-44;
Boder & Wittrup, 1997, Nat Biotechnol 15:553-557), and mammalian cells (Whitehom at al., 1995, Biotechnology 13:1215-1219), as well as in vitro display technologies (Amstutz of at., 2001, Cuff Opin Biotechnol 12:400-405) such as polysome display (Mattheakis et al., 1994, Proc Nat! Acad Sc! USA
91:9022-9026), ribosome display (Hanes et al., 1997, Proc Nat! Acad Sc! USA
94:4937-4942), mRNA
display (Roberts & Szostak, 1997, Proc Natl Acad Sci USA 94:12297-12302;
Nemoto at al., 1997, FEBS Lett 414:405-408), and ribosome-inactivation display system (Zhou at a/., 2002, J Am Chem Soc 124, 538-543) [186] Other selection methods that may find use in the present Invention include methods that do not rely on display, such as in vivo methods including but not limited to periplasmic expression and cytometric screening (Chen et a/., 2001, Nat Biotechnol 19:537-542), the protein fragment complementation assay (Johnsson & Varshavsky, 1994, Proc Nat!Acad Sc! USA
91:10340-10344;
Pelletier eta!., 1998, Proc Nat! Acad Sc! USA 95:12141-12146), and the yeast two hybrid screen (Fields & Song, 1989, Nature 340:245-246) used in selection mode (Visintin at a!.,1999, Proc Nat!
Aced Sci USA 96:11723-11728). In an alternate embodiment, selection Is enabled by a fusion partner that binds to a specific sequence on the expression vector, thus linking covalently or noncovalently the fusion partner and associated Fc variant library member with the nucleic acid that encodes them.
For example, PCT WO
00/22906; PCT WO 01/49058; PCT WO 02/04852; PCT WO 02/04853; PCT WO 02/08023;
PCT WO
01/28702; and PCT WO 02/07466 describe such a fusion partner and technique that may find use in the present invention. In an alternative embodiment, in vivo selection can occur if expression of a polypeptide that comprises the Fc variant, such as an antibody or Fc fusion, Imparts some growth, reproduction, or survival advantage to the cell.

[187] A subset of selection methods referred to as "directed evolution"
methods are those that Include the mating or breading of favorable sequences during selection, sometimes with the incorporation of new mutations. As will be appreciated by those skilled In the art, directed evolution methods can facilitate identification, of the most favorable sequences in a library, and can Increase the diversity of sequences that are screened. A variety of directed evolution methods are known In the art that may find use in the present invention for screening Fc variant libraries, including but not limited to DNA shuffling (PCT WO 00/42561 A3; PCT WO 01/70947 A3), exon shuffling (US
6,365,377;
Kolkman & Stemmer, 2001, Nat Blotechnol 19:423-428), family shuffling (Crameri eta!., 1998, Nature 391:288-291; US 6,376,246), RACHITTTM (Coco et al., 2001, Nat Biotechnol 19:354- 359; PCT WO
02/06469), STEP and random priming of in vitro recombination (Zhao et al., 1998, Nat Biotechnol 16:258-261; Shao at al., 1998, Nucleic Acids Res 26:681-683), exonuclease mediated gene assembly (US 6,352,842; US 6,361,974), Gene Site Saturation MutagenesisTM (US
6,358,709), Gene ReassemblyTM (US 6,358,709), SCRATCHY (Lutz et al., 2001, Proc Natl Acad Sci USA 98:11248-11253), DNA fragmentation methods (Kikuchi et al., Gene 236:159-167), single-stranded DNA
shuffling (Kikuchi et al., 2000, Gene 243:133-137), and AMEsystemT"' directed evolution protein engineering technology (Applied Molecular Evolution) (US US 5,824,514; US
5,817,483; US
5,814,476; US 5,763,192; US 5,723,323).

[188] The biological properties of the antibodies and Fc fusions that comprise the Fe variants of the present invention may be characterized in cell, tissue, and whole organism experiments. As is know in the art, drugs are often tested in animals, including but not limited to mice, rats, rabbits, dogs, cats, pigs, and monkeys, in order to measure a drug's efficacy for treatment against a disease or disease model, or to measure a drug's pharmacokinetics, toxicity, and other properties. Said animals may be referred to as disease models. Therapeutics are often tested in mice, including but not limited to nude mice, SCID mice, xenograft mice, and transgenic mice (including knockins and knockouts). For example, an antibody or Fc fusion of the present invention that is intended as an anti-cancer therapeutic may be tested in a mouse cancer model, for example a xenograft mouse. In this method, a tumor or tumor cell line is grafted onto or injected into a mouse, and subsequently the mouse is treated with the therapeutic to determine the ability of the antibody or Fc fusion to reduce or inhibit cancer growth. Such experimentation may provide meaningful data for determination of the potential of said antibody or Fc fusion to be used as a therapeutic. Any organism, preferably mammals, may be used for testing. For example because of their genetic similarity to humans, monkeys can be suitable therapeutic models, and thus may be used to test the efficacy, toxicity, pharmacokinetics, or other property of the antibodies and Fc fusions of the present invention.
Tests of the antibodies and Fc fusions of the present invention in humans are ultimately required for approval as drugs, and thus of course these experiments are contemplated. Thus the antibodies and Fc fusions of the present invention may be tested in humans to determine their therapeutic efficacy, toxicity, pharmacokinetics, and/or other clinical properties.

EXAMPLES
[189] Examples are provided below to illustrate the present invention. These examples are not meant to constrain the present invention to any particular application or theory of operation.

[190] For all positions discussed in the present invention, numbering is according to the EU index as in Kabat (Kabat et al., 1991, Sequences of Proteins of Immunological Interest, 5th Ed., United States Public Health Service, National Institutes of Health, Bethesda). Those skilled in the art of antibodies will appreciate that this convention consists of nonsequential numbering in specific regions of an immunoglobulin sequence, enabling a normalized reference to conserved positions in immunoglobulin families. Accordingly, the positions of any given immunoglobulin as defined by the EU index will not necessarily correspond to its sequential sequence. Figure 3 shows the sequential and EU index numbering schemes for the antibody alemtuzumab in order to illustrate this principal more clearly. It should also be noted that polymorphisms have been-observed at a number of Fc positions, including but not limited to Kabat 270, 272, 312, 315, 356, and 358, and thus slight differences between the presented sequence and sequences in the scientific literature may exist.
[191] Example 1. Computational Screening and Design of Fc Libraries Computational screening calculations were carried out to design optimized Fc variants. Fe variants were computationally screened, constructed, and experimentally investigated over several computation/experimention cycles. For each successive cycle, experimental data provided feedback into the next set of computational screening calculations and library design.
All computational screening calculations and library design are presented in Example 1. For each set of calculations, a table is provided that presents the results and provides relevant information and parameters.

[192] Several different structures of Fc bound bound to the extracellular domain of FcyRs served as template structures for the computational screening calculations. Publicly available Fc/FcyR complex structures included pdb accession code 1 E4K (Sondermann at al., 2000, Nature 406:267-273.), and pdb accession codes 11 IS and 1 IIX (Radaev et al., 2001, J Biol Chem 276:16469-16477). The extracellular regions of FcyRlllb and FcyRlIla are 96% identical, and therefore the use of the Fc/FcyRlllb structure is essentially equivalent to use of FcyRllla.
Nonetheless, for some calculations, a more precise Fc/FcyRllla template structure was constructed by modeling a D129G mutation in the 1 IIS and 1 E4K structures (referred to as D129G 111S and D129G 1 E4K template structures). In addition, the structures for human Fc bound to the extracellular domains of human FcyRllb, human F158 FcyRIlla, and mouse FcyRIII were modeled using standard methods, the available FcyR
sequence information, the aforementioned Fc/FcyR structures, as well as structural information for unbound complexes (pdb accession code I H9V)(Sondermann at aL, 2001, J Mol Biol 309:737-749) (pdb accession code 1 FCG)(Maxwell et al., 1999, Nat Struct Biol 6:437-442), FcyRIIb (pdb accession code 2FCB)(Sondermann et al., 1999, Embo J 18:1095-1103), and FcyRIIIb (pdb accession code I E4J)(Sondermann et aL, 2000, Nature 406:267-273.).

[193] Variable positions and amino acids to be considered at those positions were chosen by visual inspection of the aforementioned Fc/FcyR and FcyR structures, and using solvent accessibility information and sequence information. Sequence information of Fcs and FcyRs was particularly useful for determining variable positions at which substitutions may provide distinguishing affinities between activating and inhibitory receptors. Virtually all Cy2 positions were screened computationally. The Fc structure is a homodimer of two heavy chains (labeled chains A and B in the I [IS, I IIX, and I E4K structures) that each include the hinge and Cy2-Cy3 domains (shown in Figure 2). Because the FcyR (labeled chain C in the 1113, 1 IIX, and I E4K
structures) binds asymmetrically to the Fc homodimer, each chain was often considered separately in design calculations. For some calculations, Fc and/or FcyR residues proximal to variable position residues were floated, that is the amino acid conformation but not the amino acid identity was allowed to vary in a protein design calculation to allow for conformational adjustments. These are indicated below the table for each set of calculations when relevant. Considered amino acids typically belonged to either the Core, Core XM, Surface, Boundary, Boundary XM, or All 20 classifications, unless noted otherwise. These classifications are defined as follows: Core = alanine, valine, isoleucine, leucine, phenylalanine, tyrosine, tryptophan, and methionine; Core XM = alanine, valine, isoleucine, leucine, phenylalanine, tyrosine, and tryptophan; Surface = alanine, serine, threonine, aspartic acid, asparagine, glutamine, glutamic acid, arginine, lysine and histidine; Boundary = alanine, serine, threonine, aspartic acid, asparagine, glutamine, glutamic acid, arginine, lysine, histidine, valine, isoleucine, leucine, phenylalanine, tyrosine, tryptophan, and methionine; Boundary XM = Boundary =
alanine, serine, threonine, aspartic acid, asparagine, glutamine, glutamic acid, arginine, lysine, histidine, valine, isoleucine, leucine, phenylalanine, tyrosine, and tryptophan; All 20 = all 20 naturally occurring amino acids.

[194] The majority of calculations followed one of two general types of computational screening methods. In one method, the conformations of amino acids at variable positions were represented as a set of backbone-independent side chain rotamers derived from the rotamer library of Dunbrack &
Cohen (Dunbrack et al., 1997, Protein Sci 6:1661-1681). The energies of all possible combinations of the considered amino acids at the chosen variable positions were calculated using a force field containing terms describing van der Waals, solvation, electrostatic, and hydrogen bond interactions, and the optimal (ground state) sequence was determined using a Dead End Elimination (DEE) algorithm. As will be appreciated by those in the art, the predicted lowest energy sequence is not necessarily the true lowest energy sequence because of errors primarily in the scoring function, coupled with the fact that subtle conformational differences in proteins can result in dramatic differences in stability. However, the predicted ground state sequence is likely to be close to the true ground state, and thus additional favorable diversity can be explored by evaluating the energy of sequences that are close in sequence space and energy around the predicted ground state. To accomplish this, as well as to generate a diversity of sequences for a library, a Monte Carlo (MC) algorithm was used to evaluate the energies of 1000 similar sequences around the predicted ground state. The number of sequences out of the 1000 sequence set that contain that amino acid at that variable position is referred to as the occupancy for that substitution, and this value may reflect how favorable that substitution is. This computational screening method is substantially similar to Protein Design Automation (PDA ) technology, as described in US 6,188,965; US
6,269,312; US
6,403,312; USSN 09/782,004; USSN 09/927,790; USSN 10/218,102; PCT WO 98/07254;
PCT WO
01/40091; and PCT WO 02/25588, and for ease of description, is referred to as PDA technology throughout the examples. Tables that present the results of these calculations provide for each variable position on the designated chain (column 1) the amino acids considered at each variable position (column 2), the WT Fc amino acid identity at each variable position (column 3), the amino acid identity at each variable position in the DEE ground state sequence (column 4), and the set of amino acids and corresponding occupancy that are observed in the Monte Carlo output (column 5).
For example in the first row of Table 1 below, when position 328 was varied using boundary amino acids as the set of variable residues for that position, L occurred 330 times in the top 1000 sequence, M occurred 302 times, etc.

[195] Other calculations utilized a genetic algorithm (GA) to screen for low energy sequences, with energies being calculated during each round of "evolution" for those sequences being sampled. The conformations of amino acids at variable and floated positions were represented as a set of side chain rotamers derived from a backbone-independent rotamer library using a flexible rotamer model (Mendes et al., 1999, Proteins 37:530-543). Energies were calculated using a force field containing terms describing van der Waals, solvation, electrostatic, and hydrogen bond interactions. This calculation generated a list of 300 sequences which are predicted to be low in energy. To facilitate analysis of the results and library generation, the 300 output sequences were clustered computationally into 10 groups of similar sequences using a nearest neighbor single linkage hierarchical clustering algorithm to assign sequences to related groups based on similarity scores (Diamond, 1995, Acta Cryst D51:127-135). That is, all sequences within a group are most similar to all other sequences within the same group and less similar to sequences in other groups. The lowest energy sequence from each of these ten clusters are used as a representative of each group, and are presented as results. This computational screening method is substantially similar to Sequence Prediction Algorithm T"^ (SPAT") technology, as described in (Raha et al., 2000, Protein Sci 9:1106-1119); USSN 09/877,695; and USSN 10/071,859, and for ease of description, is referred to as SPAT""
technology throughout the examples. Tables that present the results of these calculations provide for each variable position on the designated chain (column 1) the amino acids considered at each variable position (column 2), the WT Fc amino acid identity at each variable position (column 3), and the amino acid identity at the variable positions for the lowest energy sequence from each cluster group (columns 4-13).

[196] Computational screening was applied to design energetically favorable interactions at the Fc/FcyR interface at groups of variable positions that mediate or potentially mediate binding with FcyR. Because the binding interface involves a large number of Fc residues on the two different chains, and because FcyRs bind asymmetrically to Fc, residues were grouped in different sets of interacting variable positions, and designed in separate sets of calculations.
In many cases these sets were chosen as groups of residues that were deemed to be coupled, that is the energy of one or more residues is dependent on the identity of one or more other residues.
Various template structures were used, and in many cases calculations explored substitutions on both chains. For many of the variable position sets, calculations were carried out using both the PDA and SPAT, technology computational screening methods described. The results of these calculations and relevant are presented in Tables 1 - 30 below. Relevant parameters and information are presented below each table, including the computational screening method used, the template structure used, whether or not that structure had carbohydrate atoms, and any residues that may have been floated.
For example, Table 2 presents results from a PDA calculation in which residues 120, 132, and 134 on chain C (the FcyRIIIb receptor) were floated.

(197] Included within the compositions of the invention are antibodies that have any of the listed amino acid residues in the listed positions, either alone or in any combination (note preferred combinations are listed in the claims, the summary and the figures). One preferred combination is the listed amino acid residues in the listed positions in a ground state (sometimes referred to herein as the "global solution", as distinguished from the wild-type). In addition, combinations between SPATM
proteins, both within tables and between tables, are also included. It should be noted that residues not listed in a given table are implied to have not been varied, and thus remain wild-type. For example, in the SPAT"' calculation results presented in Table 4, column 4 (representing cluster 1) indicates a protein with the six listed amino acids at the six listed positions (e.g. column 4 is a single protein with a wild-type sequence except for 239E, 265G, 267S, 269Y, 270T and 2995). Thus, each of these individual proteins are included within the invention. Alternatively, residue positions and particular amino acids at those residue positions may be combined between columns within a table, or between tables. Furthermore, it should be noted that although each table indicates the presence or absence of carbohydrate, the presence or absence of said atoms in the computational screening calculation is not meant to imply that Fc variants designed by such calculations should be applicable to only aglycosylated or glycosylated Fc. Thus although the calculations in Table 1 were run without carbohydrate atoms present in the template structure, the resulting predicted substitutions may be favorable in a glycosylated or aglycosylated antibody or Fc fusion.

Table I

Considered Ground Sequences Around VVT Position Amino Acids State Ground State 328 A Boundary L L L:330 M:302 E:111 K:62 A:45 Q:39 D:36 S:30 T:28 N:10 R:7 332 A Surface I R R:247 K:209 Q:130 H:95 E:92 T:59 D:51 N:51 S:42 A:24 328 B Boundary L L L:321 M:237 T:166 K:73 R:72 S:55 Q:20 D:17 E:13 A:12 V:10 N:4 332 B Surface I E E:269 Q:180 R:145 K:111 D:97 T:78 N:65 S:28 A:14 H:13 PDA technology, 1 IIS template structure; - carbohydrate Table 2 Position Considered VVT Ground Sequences Around Amino Acids State Ground State 239 A Surface S K E:349 D:203 K:196 A:95 Q:83 S:63 N:10 R:1 265 A Boundar y XM D D D:616 N:113 L:110 E:104 S:25 A:23 Q:9 299 A Boundary XM T I 1:669 H:196 V:135 327 A Boundary XM A S A:518 S:389 N:67 D:26 265 B Boundary XM D Q Q:314 R:247 N:118 1:115 A:63 E:55 D:34 S:22 K:21 V:11 PDA technology; 1 IIS template structure; + carbohydrate; floated 120 C, 132 C, 134 C
Table 3 Position Considered W.i. Ground Sequences Around Amino Acids State Ground State 239 A Surface S E E:872 Q:69 D:39 K:16 A:4 265 A Boundary XM D Y Y:693 H:111 E:69 D:62'F:29 K:19 R:14 W:2 Q:1 267 A Boundary XM S S S:991 A:9 269 A Core XM E F F:938 E:59 Y:3 270 A Surface D E E:267 T:218 K:186 D:89 Q:88 R:46 S:34 N:29 H:23 A:20 299 A Boundary XM T H H:486 T:245 K:130 E:40 S:39 D:27 Q:27 A:4 N:2 PDA technology; 11 IS template structure; - carbohydrate; floated 120 C, 122 C, 132 C, 133 C, Table 4 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 239 A Surface S E Q Q Q E E E Q E E
265 A All 20 D G G C G G G G G G G
267 A All 20 S . S S S S S S S S S S
269 A Core E Y Y A A V Y A A A A
270 A Surface D T S A S T T T A A A
299 A All 20 T S S S S S S S S S S

SPAT' technology; 1 IIS template structure; + carbohydrate; floated 120 C, 122 C, 132 C, 133 C, Table 5 Considered Ground Sequences Around Position Amino Acids WT State Ground State 235 A Boundary XM L T T:195 V:131 L:112 W:107 K:85 F:66 Y:56 E:52 Q:38 5:37 1:34 R:29 H:26 N:23 D:9 296 A Surface Y N N:322 D:181 R:172 K:76 Y:70 Q:59 E:48 S:40 H:20 T:11 A:1 298 A Surface S T T:370 R:343 K:193 A:55 S:39 235 B Boundary XM L L L:922 1:78 PDA technology; 1 IIS template structure; - carbohydrate; floated 119 C, 128 C, 157 C
Table 6 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 235 A All 20 L S S P S S S S S S S
296 A Surface Y Q Q Q E E Q E Q Q N
298 A Surface S S K K K K S S S K S
235 B All 20 L 'K K K L L L L L L K
SPAT'" technology; I IIS template structure; + carbohydrate; floated 119 C, 128 C, 157 C

Table 7 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 B Surface S E K:402 E:282 H:116 T:67 R:47 Q:39 D:26 A:11 S:7 N:3 265 B Boundary XM D W Y:341 W:283 1:236 V:77 F:36 H:9 T:7 E:4 K:4 A:2 D:1 327 B Boundary XM A R R:838 K: 86 H:35 E:12 T:10 Q:7 A:6 D:3 N:3 328 B Core XM L L L:1000 329 B Core XNI P P P:801 A:199 330 B Core XM A Y . Y:918 F:42 L:22 A:18 332 B Surface I I 1:792 E:202 Q:5 K:1 PDA technology; 1 IIS template structure; - carbohydrate; floated 88 C, 90 C, 113 C, 114 C, 116 C, 160 C, 161 C

Table 8 Position Considered WT 1 2 3 4 5 6 7 .8 9 10 Amino Acids 239 B Surface S D T E E E E E E E E
265 B All 20 D G G K G K G' G K K G
327 B All 20 A K M L L N L K L L L
328 B Core L M M M L A M L M L L
329 B Core P P P P P P P P P P P
.330 B Core A L A A A A A A A A A
332 B Surface I I Q I I Q Q E D I I
SPAT"" technology; 1 [IS template structure; + carbohydrate; floated 88 C, 90 C, 113 C, 114 C, 116 C, 160 C, 161 C

Table 9 Position Considered WT 1 2 :~E

Amino Acids 239 A Surface S Q Q QE Q E Q E Q Q
265 A All 20 D G G G G G G G G G G
299 A All 20 T S S A S S S S S S S
327 A All 20 A A S S S S S S S A S

SPA"" technology; 1lIS template structure; -carbohydrate; floated 120 C, 132 C, 134 C

Table 10 Considered Ground Sequences Around Position Amino Acids WT State Ground State 234 A Boundary XM L K Y:401 L:260 F:151 1:82 K:63 H:17 Q:11 W:7 R:3 T:2 E:2 V:1 235 A Boundary XM L L W:777 L:200 K:12 Y:5 1:3 F:2 V:1 234 B Boundary XM L w W:427 Y:203 L:143 F:74 1:59 E:32 K:23 V:14 D:10 T:7 H:4 R:4 235 B Boundary XM L W W:380 Y:380 F:135 K:38 L:26 E:15 Q:12 H:8 R:4 T:2 PDA technology; D129G 1 E4K template structure; - carbohydrate; floated 113 C, 116 C, 132 G.
155 C, 157 C

Table 11 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 234 A All 20 L G G G_ G G G G G G G
235 A All 20 L T L L L L L L L T L
234 B All 20 L G G G G G G G G G G
235 B All 20 L S A S A A S S S A A
SPA'" technology; D129G 1 E4K template structure; + carbohydrate; floated 113 C, 116 C, 132 C.
155 C, 157 C

Table 12 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 A Boundary XM S E E:235 S:122 D:94 Q:93 A:74 K:70 L:67 T:63 N:57 R:51 1:29 V:18 W:15 H:12 328 A Boundary XM L L L:688 E:121 K43 Q:41 A:33 D:26 5:14 T:14 N:12 R:8 332 A Boundary XM I W 1:155 W:95 L:82 K:79 E:74 Q:69 H:67 V:63 R:57 T:57 0:45 3:43 N:42 A:35 F:19 Y:18 PDA technology; D129G 1 IIS template structure; - carbohydrate; floated 120 C

Table 13 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 239 A All 20 S L E E Q E E K K K K
328 A All 20 L L Q L Q K L L Q K L
332 A All 20 1 K K L Q A K L Q A Q
SPAT"A technology; D1 29G 1lIS template structure; + carbohydrate; floated 120 C

Table 14 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 B Boundary XM S I R:195 1:169 L:126 V:91 K:89 E:61 H:52 T:50 Q:42 N:35 S:34 D:30 A:26 328 B Boundary XM L L L:671 T:165 K:40 S:38 E:28 R:17 Q:17 V:11 A:8 D:5 332 B Boundary XM 1 1 1:387 E:157 L:151 V:78 Q:63 K:50 R:33 T:29 D:25A:12N:8S:6W:1 PDA technology; D129G 111S template, structure; - carbohydrate; floated 90 C, 160 C. 161 C
Table 15 Position Considered I W-l- 1 I 2 3 4 5 6 7 8 9 10 Amino Acids 239 B All 20 S T I L L L I L L L L L L
3288 All 20 L M R M 0 T M L Q f D L
332 B All 20 1 1 O Q Q Q L L T Q L
SPATM' technology; D129G 111S template structure; + carbohydrate; floated 90 C, 160 C. 161 C
Table 16 Position Considered WT Ground Sequences Around -Amino Acids State Ground State 239 B Boundary XM S T - T:164 S:159 L:156 E:86 W :76 K:71 D:65 A:52 R:43 H:38 Q:38 N:31 1:14 V:7 328 B Boundary XM L L L:556 E:114 T:84 K:80 S:69 Q:36 A:31 D:15 R:11 N:4 332 B Boundary XM I W 1:188 W:177 E:97 L:94 T:59 Q:57 V:54 K:52 F:51 D:34 H:33 S:27 R:26 N:18 A:17 Y:16 PDA technology; D129G 1E4K template structure; - carbohydrate; floated 117 C
Table 17 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 239 B All 20 S P S P E L L L L L L
328 B All 20 L K K K K K L K K K L

SPAT"' technology; D129G 1E4K template structure; + carbohydrate; floated 117 C

Table 18 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 A Boundary XM S L K:196 L:171 1:146 E:88 V:76 R:75 T:50 H:45 D:43 Q:39 S:30 N:22 A:19 328 A Boundary XM L W L:517 F:230 W:164 H:40 K29 E:11 R:5 T:4 332 A Boundary XM I E 1:283 L:217 E:178 Q:81 V:64 D:47 T:35 K:27 W:18 R:12 A:10 Y:7 N:7 F:6 S:5 H:3 PDA technology; D129G 1 E4K template structure; - carbohydrate; floated 87 C, 157 C, 158 C
Table 19 Position Considered 1 2 3 4 5 6 7 8 9 10 Amino Acids 239 A All 20 S F Q E T P P T P P P
328 A All 20 L K R R K K I I M R K M R
332 A All 20 I L L I I E I E E I I
SPATM" technology, D129G 1 E4K template structure; + carbohydrate atoms;
floated 87 C, 157 C.

Table 20 Considered Ground Sequences Around Position Amino Acids WT State Ground State 240 A Core +Thr v V V:698 M:162 T:140 263 A Core + Thr V V V:966 T:34 266 A Core + Thr V V V:983 T:17 325 A Boundary N N N:943 T:40 A:17 328 A Bounda L L L:610 M:363 K27 332 A Glu I E E:1000 PDA technology; D129G 111S template structure; - carbohydrate; floated 273 A, 275 A. 302 A, 323 A, 134C

Table 21 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 240 A All 20 V V A V V V V V V V V
263 A All 20 V V V V V V V V V V V
266A All 20 V I V I I T V V V V I
325 A All 20 N A N N N Q T T Q N T
328 A All 20 L K K L. K L K L L L L
332 A Glu I D D D D D D D D D D
SPAT" technology; D129G 111S template structure; + carbohydrate; floated 273 A, 275 A, 302 A, 323 A, 134 C

Table 22 Considered Ground Sequences Around Position Amino Acids WT State Ground State 240 B Core + Thr V V V:713 T:287 263 B Core + Thr V V V:992 T:8 266 B Core + Thr V V V:976 T:24 325 B Boundary N N N:453 T296 A:116 D:96 S:30 V:9 328 B Boundary L L L:623 M:194 T:100 R:72 K:11 332 B Glu I E E:1000 PDA technology; D129G 1IIS template structure; - carbohydrate; floated 273 B, 275 B, 302 B.
323 B. 161 C

Table 23 Position Considered 1 Amino Acids 2 3 4 5 6 7 8 9 10 240 B All 20 V A T A T T A A T T T
263 B AlI 20 V V A A T T V V T A T
266 B All 20 V V V V V V V V V I V
325 B All 20 N N K K N K K N N N N
328 B All 20 L R L L L L L L L L L
332_A Glu I D D D D D D D D D D
SPATM' technology; D129G 111S template structure; + carbohydrate; floated 273 B. 275 B, 302 B, 323 B. 161 C

Table 24 Considered Ground Sequences Around Position Amino Acids WT State Ground State 240 B Core + Thr V M V:715 M:271 T:12 1:2 263 B Core + Thu v V V:992 T:8 266 B Core + Thr v V V:996 T:4 325 B Bounda N N N:651 T:232 D:64 A:53 328 B Boundary L M M:556 L:407 K:37 332 B Glu I E E:1000 PDA technology; D129G 1E4K template structure; - carbohydrate; floated 273 B, 275 B, 302 B, 323 B. 131 G

Table 25 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids.
240 B All 20 V T A T A A A A T A A
263 B All 20 V T W T T A T T T L L
266 B All 20 V L A T T V L T T L V
325 B All 20 N A N A A N A A A A A
328 B All 20 L L K L L L L L L L L
332 A Glu I D D D D D D D D D D
SPA TM technology, D129G 1E4K template structure; + carbohydrate; floated 273 B, 275 B, 302 B, 323 B, 131 C

Table 26 Considered Ground Sequences Around Position Amino Acids WT State Ground State 2740 AA Core + Thr V V V:876 T:109 M:15 263 A Core + Thr V V V:913 T:87 266 A Core + Thr V V V:969 T:31 325 A Bounda N V V:491 N:236 T:187 A:35 D:32 5:19 328 A Boundary L L L:321 W:290 M271 F:49 K:46 R:23 332 A Glu I E E:1000 PDA technology; DI 29G 1 E4K template structure; - carbohydrate; floated 273 A. 275 A. 302 A, 323 A. 158 C

Table 27 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 240 A All 20 V A T A A T T A. A A T
263 A All 20 V T T V V T V L L = V T
266 A All 20 V V V V V V V V V V V
325 A All 20 N Q N Q Q Q 0 Q Q N N
328 A All 20 L K- M K K K K K K K K
332 A GIu I D D D D D D D D D D
SPAN technology; D129G 1 E4K template structure; + carbohydrate; floated 273 A. 275 A, 302 A, 323 A, 158 C

[1981 Computational screening calculations were aimed at designing Fc variants to optimize the conformation of the N297 carbohydrate and the Cy2 domain. By-exploring energetically favorable substitutions at positions that interact with carbohydrate, variants can be engineered that sample new, potentially favorable carbohydrate conformations. Fc residues F241, F243, V262, and V264 mediate the Fc/carbohydrate interaction and thus are target positions. The results of these design calculations are presented in Table 28.

Table 28 Considered Ground Sequences Around Position Amino Acids WT State Ground State 241 A Core F Y Y:172 M:162 L:144 F:140 W:110 1:97 A:91 V:84 243 A Core F Y Y:21 1 L:204 W:199 F:160 M:141 A:85 262 A Core - V M M:3021:253 V:243 A:202 264 A Core V F 1:159 M:152 V:142 L:140 W:136 F:120 Y:104 A:47 PDA technology, 1115 template structure; - carbohydrate [1991 Computational screening calculations were aimed at designing Fc variants to optimize the angle between the C73 and Cy2 domains. Residues P244, P245, P247, and W313, which reside at the Cy2/Cy3 interface, appear to play a key role in determining the Cy2-Cy3 angle and the flexibility of _ the domains relative to one another. By exploring energetically favorable substitutions at these positions, variants can be designed that sample new, potentially favorable angles and levels of flexibility. The results of these design calculations are presented in Table 29.
Table 29 Position Considered WT. Ground Sequences Around Amino Acids State Ground State 244 A Boundary P H K:164 H:152 R:110 M:100 S:92 N:57 A:54 D:50 Q:49 T:46 E:37 V:30 L:27 W:23 F:9 245 A Boundary P A A:491 S:378 N:131 247 A Boundary P V V:156 T:125 K:101 E:87 Q:79 R:78 S:76 A:72 0:72 H:60 M:47 N:47 313 A Boundary W W W:359 F:255 Y:128 M:1 14 H:48 K:29 T:24 A:11 E:10 V:10 S:9 Q:3 PDA technology; 11 IS template structure; - carbohydrate [200] In addition to the above calculations using PDA and SPAT""
computational screening methods, additional calculations using solely an electrostatic potential were used to computationally screen Fc variants. Calculations with Coulomb's law and Debye-Huckel scaling highlighted a number of positions in the Fc for which amino acid substitutions would favorably affect binding to one or more FcyRs, including positions for which replacement of a neutral amino acid with a negatively charged amino acid may enhance binding to FcyRllla, and for which replacement of a positively charged amino acid with a neutral or negatively charged amino acid may enhance binding to FcyRllla. These results are presented in Table 30.

Table 30 Replacement of a + residue Replacement of a neutral residue with a - residue with a - residue K334 A327 .

Coulomb's law and Debye-Huckel scaling; 1 IIS template structure; +
carbohydrate [201] Computational screening calculations were carried out to optimize aglycosylated Fc, that is to optimize Fc structure, stability, solubility, and Fc/FcyR affinity in the absence of the N297 carbohydrate. Design calculations were aimed at designing favorable substitutions in the context of the aglycosylated Fc template structure at residue 297, residues proximal to it, residues at the Fc/FcyR interface, and residues at the Fc/carbohydrate interface. Variable positions were grouped in different sets of interacting variable positions and designed in separate sets of calculations, and various template structures were used. For many of the variable position sets, calculations were carried out using both the PDAO and SPA'"' computational screening methods-The results of these calculations and relevant information are presented in Tables 31 - 53 below.

Table 31 Considered Ground Sequences Around Position Amino Acids WT State Ground State 265 A Boundary XM D Y Y:531 F:226 W:105 H:92 K21 D:16 E:6 T:3 297 A Boundary XM N D A:235 S:229 D:166 E:114 N:92 Y:57 F:55 Q:25 H:10 T:7 K:6 L:3 R:1 299 A Boundary XM T L L:482 Y:186 F:131 T:55 S:51 K:31 H:22 A:18 E:14 Q:10 297 B Boundary XMJ N 1 1:299 K:147 V:85 R:82 W:71 N:65 D:35 E:35 Q:34 S:32 L:31 H:30 T:28 A:26 PDA technology, 111S template structure, - carbohydrate; floated 122 C, 129 C, 132 C, 155 C
Table 32 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 265 A All 20 D G G G G G G G G G G
297 A All 20 N A T A E K K A A N N
299 A Al 20 T S K S K F F F F F S
2976 All 20 N K K K K K K K K K K
SPATM' technology; 1 HS template structure; - carbohydrate; floated 122 C, 129 C, 132 C, 155 C
Table 33 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 A Surface S E E:928 Q:65 D:7 265 A Boundary XM D W W:709 Y:248 F:43 296 A Surface Y H H:449 Y:146 E:137 D:89 K:64 N:32 T:30 R:25 Q:23 S:5 297 A Surface N E E:471 H:189 0:102 T:97 K:96 R:22 Q:15 S:8 298 A Boundary XM S R R:353 T275 K:269 A:56 S:38 E:5 Q:2 H:2 299 A Boundary XM T F Y:398 F:366 L:217 H:15 K:4 PDA technology; D129G 1 IIS_ template structure; - carbohydrate; floated 120 C. 122 C, 128 C.
132 C. 155 C

Table 34 Position Considered WT 1 2 T34 5 6 7 8 9 10 Amino Acids 239 A All 20 E 0 Q Q Q Q Q Q
265 A All 20 D G G G G G G G G G G
296 A All 20 Y D Q N N Q N N N Q N

298 A All 20 S K K K S K K K K S K
299 A All 20 T S Y F S Y F K F S K
SPA'" technology; 0129G 1IIS template structure; - carbohydrate; floated 120 C, 122 C, 128 C, 132 C, 155 C

Table 35 Position Considered WT Ground Sequences Around Amino Acids State Ground State 239 B Surface S E E:417 T:122 D:117 Q:94 R:84 S:63 K:47 H:29 N:19 A:8' 265 B Boundary XM 0 W W:865 Y:79 F:55 K:1 296 B Surface Y Y Y:549 H:97 D:80 S:75 N:48 E:45 K:32 R:30 0:28 A:16 297 B Surface N R R:265 H:224 E:157 K:154 Q:75 D:47 T:34 N:24 S:13 A:7 298 B Boundary XM S V V:966 0:10 T:8 A:8 N:4 S:4 299 B Bounda XM T Y Y:667 F:330 H:3 PDA technology; D129G 1 E4K template structure; - carbohydrate; floated 117 C, 119 C, 125 C, 129 C, 152 C

Table 36 Position Considered Amino Acids WT 1 2 3 4 5 6 7 8 9 10 239 B All 20 S S R E K S S E E E K
265 B All 20 D A D K Y A A F F K Y
296 B All 20 Y A A A A A A A A A A
297 B All 20 N T S T T E E E S E E
298 B All 20 S G G G G G G G G G G
299 B All 20 TL F E E Y F Y F Y Y
SPA'rm technology; D129G IE4K template structure; - carbohydrate; floated 117 C, 119 C, 125 C, 129 C, 152 C

Table 37 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 A Surface S E E:868 0:92 D:38 K:1 N:1 265 A Boundary XM 0 W W575 Y:343 F:66 H:15 K:1 296 A Surface Y H H:489 Y:103 R:98 K:97 0:64 D:63 T:41 N:38 E:7 297 A As N D D:1000 298 A Boundary XM S R R:340 K:262 T:255 A:59 S:57 E:11 Q:10 H:6 299 A Boundary XM T F Y:375 F:323 L:260 H:24 K:18 PDA technology; D129G 1IIS template structure; - carbohydrate; floated 120 C, 122 G. 128 C, 132 C, 155 C

Table 38 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 239 A All 20 S E Q E E E E E E Q E
265 A All 20 O G G G G G G G G G G
296 A All 20 Y E N Q E N Q Q Q Q N
297 A Asp N D D D D D D D D D D
298 A All 20 8 K S K S K K K S K K
299 A All 20 T S K Y S F F F F F K
SPATM' technology; D129G I l1S template structure; - carbohydrate; floated 120 C. 122 C. 128 C, 132 C, 155 C

Table 39 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 B Surface S E E:318 Q:123 T:109 D:108 R:93 S:89 K:69 N:40 H:38 A:13 265 B Boundary XM D W W:745 Y:158 F:85 K:9 E:1 R:1 H:1 296 B Surface Y Y Y:390 H:127 S:83 R:81 K:78 N:65 D:55 E:49 0:44 A:26 T:2 297 B Asp N D D:1000 298 B Boundary XM S V V:890 T:35 A:29 0:19 5:16 N:10 E:1 299 8 Bounda XM T Y Y:627 F:363 H:10 PDA technology; D129G 1E4K template structure; - carbohydrate; floated 117 C, 119 C. 125 C, 129 C, 152 C

Table 40 Position Considered Amino Acids WT 1 2 3 4 5 6 7 8 9 10 239 B All 20 S K E E Q E K Q E K 0 265 B All 20 D F K K A K Y W K L F
296 B All 20 Y A A A A A A A A A A
297 B Asp N D D D D D 0 D D D D
2986 All 20 S G G G G G G G G G G
299 B All 20 T Y Y Y Y Y Y F F Y Y

SPAT" technology, D129G 1 E4K template structure; - carbohydrate; floated 117 C. 119 C, 125 C, 129 C, 152 C

Table 41 Considered Ground Sequences Around Position Amino Acids VVi State Ground State 239 A Boundary XM S E E:312 L:148 D:102 Q:98 K:64 1:61 S:57 A:44 T:39 N:29 R:23 V:18 W:5 265 A Boundary XM D W W:363 Y:352 F:139 H:77 K:39 R:14 D:11 E:4 Q:1 297 A As N D 0:1000 299 A Boundary XM T Y Y:309 F:224 L:212 H:96 K:92 E:28 Q:20 R:16 T:2 S:i PDA technology; D129G 1113 template structure; - carbohydrate; floated 120 C, 122 C, 132 C, Table 42 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 239 A' All 20 S E L L L E E E Q L E
265 A All 20 D G G G G G G G G G G
297B As N D D D D D D. D D D D
299 A All 20 T S K K F F F K F K F
SPATM' technology; D129G 1 IIS template structure; - carbohydrate; floated 120 C, 122 C, 132 C, Table 43 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 B Boundary XM S L L:194 T:122 S:120 E:111 D:79 K:71 A:62 Q:57 R:43 H:43 N:37 1:24 W:24 V:13 265 B Boundary XM 0 }N Y:248 W:233 F:198 K:84 D:57 E:55 H:42 R:28 Q:20 A:10 T:10 N:8 S:7 297 B Asp N D 0:1000 299 B Boundary XM T Y Y:493 F:380 H:76 T:31 E:10 D:4 A:3 S:3 PDA technology; DI 29G 1 E4K template structure; - carbohydrate; floated 117 G. 119 C, 129 C, Table 44 Position Considered WT 1 2 3 4 5 6 7 8 9 10 Amino Acids 239 B All 20 - S R E P L L F P P L L

297 B As N D D D D D O D D D D
299 B All 20 T Y Y 1( Y E Y Y Y Y Y
SPA'"' technology; 01 29G I E4K template structure; - carbohydrate; floated 117 C. 119 C, 129 C, Table 45 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 A Boundary XM S E E:251 L:125 D:120 Q:112 S:73 K:651:61 A:58 T:45 N:35 R:28 V:23 W:4 265 A Boundary XM D Y Y:216 H:153 K:135 D:109 W:104 F:86 R:54 T:38 E:29 Q:22 A:21 N:17 S:13 L:3 297 A As N D D:1000 PDA technology, D129G 1IIS template structure; - carbohydrate; floated 299 A, 120C. 122 G.
132 C, 155 C

Table 46 Position Considered WT 11 2 3 4 5 6 7 8 9 10 Amino Acids 239 A All 20 S S L E L Q Q E IQ 1 Q E
265 A All 20 D IG G G G G G 1 G G G G
297 A Asp N D D D D D D D D D D
SPAT" technology; D129G 1115 template structure; - carbohydrate; floated 299 A, 120 C. 122 C, 132 C, 155 C

Table 47 Considered Ground Sequences Around Position Amino Acids WT State Ground State 239 B Boundary XM S L L:158 S:137 T:125 E:115 D:86 K:75 A:62 Q:56 H:43 R:39 N:35 W:30 1:24 V:15 265 B Boundary XM D Y Y:188 W:159 F:156 D:122 K:77 E:71 H:61 Q:44 R:39 A:24 S:22 N:19 T:18 297 B Asp N D D:1000 PDA technology; D129G 1 E4K template structure; - carbohydrate; floated 299 B, 117 C, 119 C, 129 C, 152 C

Table 48 rPosition Considered WT 1 2 I 3 f 4 5 6 7 8 I 9 I 10 Amino Acids 239 B All 20 S S E P I P E S P L F L
2658 All 20 D A K A M K F Y D F F
2976 Asp N O D D D D D D D D D
SPAT" technology; DI 29G I E4K template structure; - carbohydrate; floated 299 B, 117 C. 119 C, 129C, 152C

Table 49 rConsidered Ground Sequences Around Position Amino Acids WT State Ground State 297 A Asp N D D:1000 299 A 'Boundary XM T Y T:123 Y:64 H:64 K:64 0:64 F:64 R:63 D:63 E:63 S:63 L:63 N:62 1:57 A:54 V:52 W:17 PDA technology; D129G 1ItS template structure; - carbohydrate; floated 239 A, 265 A, 120 C, 122 C, 132 C, 155C

Table 50 Position Considered WT 1 1 2 3 4 5 6 7 8 9 10 Amino Acids L297 A As N 1D D D D D D D ::PD D D
299 A All 20 T K K K K F F K K K K
SPA'"' technology; D129G INS template structure; - carbohydrate; floated 239 A. 265 A, 120 C, 122 C, 132 C, 155 C

Table 51 Considered Ground Sequences Around Position Amino Acids WT State Ground State 297 B As N D D:1000 299 B Boundary XM T Y T:123 F:64 Y:64 H:64 S:63 N:61 Q:61 0:61 E:60 K:58 V:57 A:57 R:54 1:52 L:51 W:50 PDA technology; D129G 1 E4K template structure; - carbohydrate; floated 239 B, 265 B, 117 C, 119 C, 129 C. 152 C

Table 52 I Position Considered I WT 1 2 3 4 I 5 6 7 8 9 110 Amino Acids 297 B As N D D D D D O D D D D
299 B All 20 T Y Y Y Y Y Y Y Y Y Y
SPATM' technology; D129G 1 E4K template structure; - carbohydrate; floated 239 B, 265 8, 117 C, 119 C, 129 C, 152 C

[202] Computational screening calculations were carried out to optimize aglycosylated Fc by -designing favorable substitutions at residues that are exposed to solvent in the absence of glycosylation such that they are stable, maintain Fc structure, and have no tendency to aggregate.
The N297 carbohydrate covers up the exposed hydrophobic patch that would normally be the interface for a protein-protein interaction with another Ig domain, maintaining the stability and structural integrity of Fc and keeping the Cy2 domains from aggregating across the central axis. Key residues for design are F241. F243, V262, and V264, which reside behind the carbohydrate on Cy2, in addition to residues such as L328,1332, and 1336, which are exposed nonpolar residues facing inward towards the opposed Cy2 domain, that were considered in previously presented calculations.
The importance of these Cy2 residues is supported by noting that the corresponding residues in the Cy3 domain by sequence alignment either mediate the nonpolar interaction between the two Cy3 domains or are buried in the Cy3 core- The results of these design calculations are presented in Table 53.

Table 53 Position Considered wT Ground Sequences Around Amino Acids State Ground State 241 A Surface F E E:190 R:172 K:138 H:117 T:93 Q:91 0:85 S:49 N:49 A:16 243 A Surface F R R:190 H:164 0:152 E:149 K:92 T:71 D:64 N:58 5:42 A:18 262 A Surface V D D:416 EA64 NA38 Q:87 T:83 RA4 S:32 K:24 A:11 H:1 264 A Surface V H R:368 H:196 K:147 E:108 Q:68 T:34 N:33 D:25 S:15 A:6 PDA technology; 1IIS template structure; - carbohydrate [203] In a final set of calculations, a SPATM' computational screening method was applied to evaluate the replacement of all chosen variable positions with all 20 amino acids. The lowest energy rotamer conformation for all 20 amino acids was determined, and this energy was defined as the energy of substitution for that amino acid at that variable position. These calculations thus provided an energy of substitution for each of the 20 amino acids at each variable position. The calculations used various template structures including different Fc/FcyRlllb complexes (1IIS, 1lIX, 1 E4K), a modeled FdFcyRlIb complex, and uncomplexed Fc (1 DN2). and thus were useful for a variety of design goals aimed at both glycosylated and aglycosylated Fc, including optimization of FdFcyR
affinity, Clq affinity, Fc stability, Fc solubility, carbohydrate conformation, and hinge conformation.
Furthermore, because these calculations provide energies for both favorable and unfavorable substitutions, they guide substitutions that may enable differential binding to activating versus inhibitory FcyRs. Various template structures were used, and calculations explored substitutions on both chains. The results of these calculations and relevant parameters and information are presented in Tables 54 - 60 below. Column 1 lists the variable positions on chain A and B of the template structure. Column 2 lists the wild-type amino acid identity at each variable position. The remaining 20 columns provide the energy for each of the natural 20 amino acids (shown in the top row). All substitutions were normalized with respect to the lowest energy substitution, which was set to 0 energy. For example in Table 54. for L235 on chain A, serine is the lowest energy substitution, and L235A is 0.9 kcal/mol less stable than L235S. Extremely high energies were set to 20 kcal/mol for energies between 20 - 50 kcallmol. and 50 kcal/mold for energies greater than 50 kcal/mot.
Favorable substitutions may be considered to be the lowest energy substitution for each position, and substitutions that have small energy differences from the lowest energy substitution, for example substitutions within 1-2,1-3,1-5, or 1-10 kcallmol.

Table 54 Pos WT A C D E F G H I K L M N P Q R S T V W Y
235 A L 0.912.8 2.8 1.5 3.2 3.2 3.4 4.9 1.612.113.2 0.9 0.3 11-310-7 0 1.7 4.3 6.5 3.2 236A G 011.9 5.1 6.7 10 2.3 4.3 17.2 5.712014.6 3.2 12.615.616.1 0.66.212.06.7 239 A S 0.2 4.3 2.6 0 12.8 .5 6.9 11.3 1.7 7.911.2 2.6 0.3 5.7 11.0 20 20 265AD9.08.16.3 7.8 5.1 0 7.3 50 8.2 9.917.7 6.0 5019.0 8.5 7.8 20 50 20 5.8 267 A S 2.1 3.3 7.3 1.4 50 7.3120 20 0.92.215.0 4.8 0 2.2 3.1 2.9 20 20 50 50 269 A E 0.5 2.1 1.3 0.6 1.6 3.9 2.0 1.2.1.11.3 2.7 0 50 0.6 1.1 .3 0.8 1.0 5.6 1.2 270 A D 0.3 2.8 2.3 2.0 4.0 4.0 3.4 2.4 1.2 0 2.3 2.1 20 2.0 2.3 1.4 1.8 4.2 5.4 6.0 296 A Y 2.7 2.0 1.4 0- 50 0 50 4.6 2.1 2.4 3.3 1.2 50 0.2 1.5 1.3 4.6 4.4 16.3 18.2 298 A S 0.7 2.416.7 3.4 20 3.9 20 6.7 0 4.1 1.4 4.1 50 1.8 1.1 0.2 2.2 6.3 17.8 20 299 A T 0.6 2.8 11.5 10.1 20 6.1 20 10.7 7.1 20 4.3 6.8 50 6.3 12.0 0 3.0 7.1 14.8 20 234 B L 2.1 3.2 4.1 4.2 1.6 5-310.1 0.7 0.6 1.0 2.0 1.7 50 2.8 0.3 2.3 1.7 2.6 13.0 0 235 B L 6.61Z3 2.51 . 0.7 5.4 4.8 1.4 3.6 0.110 2.0 1.7 16.6 0.5 1.2 0.7 0.7 5.3 6.8 5.5 236 B G 3.1]1.3 4.4 8.2 5.2 0 1.9 20 3.1 20 4.1 2.7 50 3.7 16.0 1.2 20 20 20 11.3 239 B S 0.9 2.4 3.4 1.8 5.4 5.6 2.7 3.0 0.9 0 2.0 1.6 50 1-811.8 1.4 1.4 5.1 20 5.3 265 B D 4.5 5.1 4.6 4.6 4.9 0 3.8 9.0 2.0 2.5 4.1 2.1 50 4.5 5.1 4.4 5.9 9.2 11.4 5.8 327 B A 1.8 3.4 4.7 3.9 20 7.0120 20 0.8 0 1.9 1.5 20 3.0 2.6 3.2 20 20 20 20 32813 L 3.7 3.6 4.0 3.7 50 8.416.8 50 3.8 0. 2.1 4.1 50 3.6 8.1 4.9 3.0 12.5 329 B P 3.4 8.6 20 20 50 8.0 16.8 50 20 20 16.9 20 0 20 20 1.3 17.1 16.5 50 50 F332131 0 A 0.5 2.012.6 0.5 2.4 3.8 1.4 4.2 0 2.0 2.2 0.8 20 0.1 0.6 0.9 0.3 5.1 8.0 2.7 1 1.5 2.7 1.2 1.6 11.9 6.812.9 1.2 2.9 0 1.4 1.7 50 f.314.9 1.8 1.7 3.0 20 20 SPAT" technology; 1IIS template structure; + carbohydrate atoms, no floated positions 284 A V 0 .2 3.1 12 20 5.0 20 4.0 0.7 2.6 0.8 .6 SO 0.8 0.7 0.8 0.1 1.5 20 20 34 K 11.712 .9 2.5 0 1.0 6.1 3.3 1.0 1.5 0.5 3.5 1. 4.4 0.1 2.7 2.2 0.9 1.3 4.9 1.8 Table 55 (continued) V W Y
Pos V-VT A C D E F G H I K M N P A R $4.68.
322 B K 2.3 3.12T3. 5 1.8 20 7.9 20 1.1 0.6 4.9 3.7 2.2 50 0.9 0.3 0 20 20 323 B V 4.04.616.918.1 20 10.6 20 9.0 17.1 7.9 8.1 10.5 50 8-7J20 0 20 20 325 B N 3.4 5.19.0 4.7 20 8.2 20 16.6 16.6 20 20 0 50 6-3120 17.8 20 20 326 B K .3 12.1 2.0 0.9 1.0 3.5 2.0 2.9 0.9 2.9 2.8 0.1 4.4 0 1.1 2.1 5.210.7 327 B A 1.9 3.3 4.7 3.5 20 7.0 20 20 0.3 0. 1.9 1.9 20 3.02-33.31 20 20 20 20 328 B L 3.7 3.6 3.8 4.4 50 8.4 7.0 50 3.8 0 2.6 4.0 50 4.2 8.7 4.812.9 12.3 50 329 B P 3.38.520 20 50 8.0 16.5 50 18.5 20 14.7 20 0 20 20 1.4 17.1 16.4 50 50 330 B A 0.52.02.8 0.5 2.4 3.9 1.2 4.0 0 2.0 2.1 0.8 20 0 0.5 0.810.2 4.6 8.2 2.6 331 B P 1-73-8..6.4 10.1 20 4.7 11.0 10.1 7.5 20 5.5 5.0 0 7.6 7.412.6 20 10.1 17.6 20 332 B I 1.7 2.91.3 1.7 14.8 7.0 13.9 1.7 3.1 0 1.7 1.7 r3. 1.8 5.312.0 1.9 3.4 333 B E 1.9 2.511.91 0 8.9 5.9 8.2 1.2 3.0 6.4 3.4 2.0 1.1 2.3 1.8 1.6 1.6 8.9 9.3 334 B K 2.9 3.9 3.7 2.6 20 8.3 12.1 1.5 2.6 5.3 3.7 4.3 1.9 0 3.4 1.8 1.4 9.9 335B T 0 2.1722 7.0 4.2 0.4 3.3 17.3 6.5 7.7 5.2 5.5 7.05.70.2 5.5 11.5 5.2 3.1 336 B I 0.5 1.6 2.1 0.7 20 5.0 6.1 0 1.3 5.3 2.1 1.8 0.63.11.1 0.8 0.7 19.4 20 337 B S 1.1 2.1 4.0 2.0 3.1 32 2.0 50 0 1.6 0.9 1.9 15.8 1.1 2.2 1.4 50 50 5.5 3.9 338B K 0.62.33.0 3.0 9.4 5.3 10.6 2.2 1.1 0 3.2 1.5 16.22.72.71.1 2.8 3.5 8.1 11.0 339 B A 1.12.411.210.8 4.3 3.6 3.7 2.6 1.8 2.6 3.5 0 2.3 0.5 1.3 0.2 0.8 2.0 6.7 3.8 340 B K 0.9 2.011.410.8 3.0 3.4 2.9 2.1 0.8 2.5 2.3 0.2 1.0 0.1 1.2 0 0.5 2.0 5.5 3.2 SPATM' technology; 1 IIS template structure; - carbohydrate, no floated positions Table 56 Pos JWTJ A C D E F G H I K L M N P Q R S T V W Y
239 S 0.2 .6 2.7 0 20 4.6 14.5 11.0 1.9 0.3 2.0 1.9 8.1 1.4 2.6 0.4 5.711.6 20 240 A V 1.5 2.4 .4 6.9 20 7.4 20 5.1 9.9 5.9 5.5 2.4 1.1 12.3 13.12.60.5 0 20 263 V 2.3 2.8 6.316. 20 8.8 20 9.6 7.3 7.315.3 4.8 50 16.417.4 2.8 1.4 0 20 20 264 A V 1.8 3.1 2.6 1.8 0 6.3 1.9 0.6 2.4 .8 2.7 2.1 1.6 2.3 2.72-31.1 0.5 3.5 266 A V 4.915.2 6.912.3 20 11.1 20 0.8 11.9 20 8.5 6.6 50 12.5 20 6.1 3.7 0 20 296A Y 3.42.71.1 0 50 0.7 50 5.0 3.63.54.2 0.9 50 0.9 2.9 2.25.5.5 16.118.4 299 A T 0.713.29.910.4 20 6.2 20 10.7 6.7 20 4.1 12.9 50 5.9 11.8 0 2.5 8.2 13.3 20 325 N 2.5 3.5 7.7.2.5 20 8.0 20 0 6.1 20 7.8 1.2 12.8 0.8 20 2.7 0 1.0 20 20 328 A L 6.16.37.1 4.2 50 8.8 20 50 4.6 0 7.2 6.1 50 4.0 8.3 6.7 50 50 20 50 330 A A 0.91.81.2 0 2.5 4.0 2.9 1.7 1.2 1.6 2.8 0 20 0.4 1.0 0.2 .5 1.7 6.2 2.9 332 A 1 1.93.84.6 1.3 5.1 7.1 1.8 3.4 0.2 0 2.6 3.8 20 0.6 2.4 2.3 2.5 4.2 20 5.6 239 B S 1.0 2.4 3.5 2.0 6.7 5.6 2.9 3.1 0.3 0 1.9 2.1 50 1.5 1.8 1.41.4 5.2 20 4.2 240 B V 0.312.4 6.9 11.7 20 6.6 20 8.3 12.3 20 14.2 7.4 0 13.4 20 1.31.9 0.9 263 8 V 2.413.9 1.512.5 20 9.3 20 15.817.1 2.1120 5.3 50 13.8 20 3.912.21 0 20 264 B V 2.23.24.8 2.7 7.4 6.9 6.0 0 1.9 1.9 3.8 3.7 9.9 3.1 2.2 2.72.4 0.9 14.718.2 266 B V 5.4 5.5 7.5 13.2 20 12.1 20 2.6 20 20 20 5.4 50 16.1 20 6.0 4.7 0 50 296 B Y 1.52.71.3 1.2 4.014.1' 3.6 1.1 1.9 2.6 3.5 0 20 0.7 1.8 1.1 1.4 1.3 6.5 4.2 29 1B T 0 2.2 7.510.2 20 4.8 20 7.7 5.8 20 10.3 5.1 50 10.218.4 0.31.1 5.4 20 325 B N 3.4 5.18.63. 5.0 20 8.2 20 16.7 20 20 20 0 19.7 6.3 20 4.6 8.618.2 20 328 B L 3.6 3.5 3.8 3.9 50 8.3 7.0 50 2.9 0 1.9 3.8 50 3.4 8.4 . 2.912.5 50 50 330 B A 6.712.12.9 0.7 2.7 4.0 1.4 4.8 0 2.2 2.3 0.8 20 0.2 0.8 1.1 .2 4.7 7.8 3.2 ,332 B 1 1-812.911. 2 1.8 13.5 7.0 9.9 1.7 3.2 0 1.7 1.9 50 1.2 5.4 2.0 2.0 3.3 20 20 SPA"" technology; 0129G 1IIS template structure; + carbohydrate Table 57 Pos VVT A C D E F G H *6.79.4 L M N P Q R S T V W Y
239 S 1.2 3. 1.7 0 20 5.8 11.0 3.9 3.9 2.7 8.5 1.3 2.7 .6 3.5 5.4 20 20 240 A V 1.2 2.4 6.0 14.0 20 7.1 20 10.1 7.5 _4 1.8 14.8 20 2.0 0.4 0 20 20 263 V 0 0.4 1.0 8.7 20 6.9 4.4 11.7 4.9 16.019.2 0.8 50 11.7 20 1.4 0.1 1.0 20 264A V 2.93. 6.3 2.8 11.6 7.6 13.2 0 3.2 3.4 4.1 7.1 2.9 3.4 3.11.9 0.8 12.8163 266 A V 1.8 5.9 6.8 9.5 50 10.3120 3.5 12.712.212.7 4.1 50 11.911.9 5.2 2.9 0 296 A Y .8 2.0 1.5 0.1 0.2 3.4 1.5 6.6 1.7 0.6 1.8 1.2 2.6 0 1.6 0.212-55.6 3.8 0 299 T 1.913.7 7.5 0 20 7.9 14.2 2.9 0.8 3.4 4.4 2.3 50 1.9 3.0 3.514-1 3.3 20 325 A N 1.01.4 3.1 2.8 20 7.4 20 8.5 7.7 10.4 6.1 2.815.4 5.4 20 010.1 3.8 20 328 L 2.5 5.3 4.0 1.9 50 7.5 20 20 1.6 0.2 0 2.9 50 0.4 4.8 3.212.9 7.0 50 50 330 A .9 2.1 1.8 1.2 2.4 2.7 3.1 3.1 1.4 2.1 3.5 .5 20 0.8 1.0 0 10.5 2.9 5.2 2.9 332 I 2.9 3.7 3.9 0.9 6.1 7.8 2.5 0 2.7 0.8 2.8 3.5 50 0.7 3.7 2.92.5 1.0 8.1 6.9 239 B S 1.93.1 3.0 1.9 1.5 6.2 2.3 14.1 1.8 1.4 2.9 1.8 0 1.9 3.2 1.912.317.7 6.6 15.8 240 B V .51.7 5.0 13.3 20 6.6 20 1.2 12.412.1 8.8 1.6 6.3 20 20 1. 0 0.2 0 20 263 B V .9 3.2 6.4 18.210.1 9.2 6.9 12.8 6.0 20 10.35-7 50 17.5 20 3.2 2.2 0 264 6 V 2.9 3.6 4.4 3.0 8.8 7.1 6.2 0 2.3 1.9 4.5 3.4 1.7 3.2 3.5 3.5 2.0 0.9 12.016.4 266 B V 1.4 .6 2.6 6.6 20 10.7 20 0 4.9 1.7 8.5 5.6 50 6.0 12.45.34.6 1.5 20 296 B Y 0 .1 6.7 7.2 20 0.1'1 -8.6 50 7.0 2.7 6.6 6.8 50 7.2 9.3 2-350 50 20 14.1 299.-B T 0 3.210.4 6.0 20 5.5 20 15.9 3.2 5.9 4.4 6.4 50 5.7 9.4 1.21.413.7 20 325 B N 1.42.55.0 0 20 7.0 20 20 1.0 2.2 1.0 0.3 1.9 1.1 20 2.6 5.1 20 20 20 328 B L 0.41.3 5.6 0 50 4.5 50 50 1.9 2.4 2.4 8.3 50 0.8 16.41.01.2 50 50 50 330 B A 0.61.4 2.5. 0.9 3.1 2.5 1.2 20 0 2.4 2.1 10.3120 0.4 0.6 0 4.0 20 13.5 3.4 332 B 1 .3 5.3 5.7 0 11.4 9.3 4.3 2.5 5.8 2.0 4.0 6.517.9 3.7 5.9 4--6F4.12 3.7 20' 11.6 SPATM technology, D129G 1IIX template structure; + carbohydrate Table 58 Pos A C D E F G H ! W T Y J
239 A S 1.212.312.211.8 7.915.517.6 0.5 0.2 1.8 2.6 1.4 0.9 1.3 1.9 1.5 0.8 0 8.6 9.6 240 A V ).72.9 6.8 4.3 20 .5 20 0 10.7 20 3.1 9.1 2.1 7.7 20 1.41.12.4 20 20 263 A V 11.712.914.6 18.8 20 8.415.8 15.1 2.3 14.5 2.1 3.2 50 20 15.0 3.61.2 0 264A V 2.73.33.6 1.513.9 13.960 2.3 4.9 3.7 3.2 1.9 2.5 3.03.02:50.719.919.0 266 A V 13.513.515.7 12.4 20 10 20 5.7 6.3 7.8 7.4 5.2 50 16.6120 4.21.7 10 20 296 A Y 12.6'50150 50 50 0 50 50 18.518.0 50 50 50 50 50 50 50150 50 13.6 299 A T 0.2 0.7 6.6 1.2 20 5.6 9.6 1.6 0.8 1.5 1.8 4.8 50 1.0 9.2 0 0 11.6120 325 A N 3.1 3.6 7.3 2.4 20 7.7 20 20 20 10 13.1F3.6 50 0 20 4.09.720 20 20 328 A L 0.6 0 1.5 5.4 50 1.6 50 50 3.1 4.2 9.6 1.4 50 6.9 9.6 0.6 0.1 50150 50 330 A A 11.9.2.5 4.1 2.8 4.5 1 3.0 3.2 1.0 2.7 3.5 2.1 20 2.4 2.6 1.3 0 3.9 7.6 5.3 332A 12.33.522 0.8 20 6.8 9.6 0 3.4 0.2 2.6 2.814.53.3 4.6 2.6 1.3 0.9 10.5 20 239 B S 1.43.6 2.5 1.4 16.85.8 6.2 5.0 2.5 1.4 2.0 3.8 0.3 0.5 2.4 0 1.6 5.3 20 19.5 240 B V 0 2.612.8 18.6 20 5.7 20 12.710.4 20 8.5 15.1 3.1 20 20 1.0 0.2 2.4 20 263 B V 1.1 2.4 3.6 20 20 7.817.711.8 4.5 20 6.3 3.3 50 20 20 3.21.2 0 20 20 264 B V 3.3 4.0 5.0 2.9 14.2 7.514.81 0 2.6 3.6 4.6 3.5 1.7 3.1 4.1 .92.91.3 6.9 20 266 8 V 2.9 3.3 4.9 11.3 50 9. 20 20 20 7.9 15.0 4.5 50 4.9 20 1.9 0 3.6 50 50 296 B Y 2.8 50 50 50 50 0 50 50 17.718.7 50 50 50 50 50 50 50 50 50 11.3 299 B T 0 3.812.6 9.2 20 5.9120 7.3 4.8 3.2 4.3 8.0 50 12.3 8.8 0.22.1 .4 20 325 B N 0.32-0 5.5 2.2 50 6.1 20 0 10.5 15.5 14.6 1.3 10 2.4 20 2.32.0 1.0 20 328 B L 5.4 5.7 7.3 4.4 50 9.8 20 50 2.5 0 5.1 5.9 50 2.8 7.4 6.1 6.450 50 50 330 8 A 0.6 1.4 3.2 1.3 3.9 3.212J 4.0 1.3 3.7 3.1 0.7 20 0.6 1.3 0 0.414.2 8.2 3.6 332 B I 1.9 3.1 2.7 1.7 5.2 6._9F 1 0.4 1.3 0 1.9 2.6 7.7 1.3 2.2 2.3 1.6 2.0 10.415-6 SPAT' technology; D129G 1 E4K template structure; + carbohydrate Table 59 I63 s WTI A C D E F G H I K L M N P Q R S T V W Y
S 1.4 2.6 3.1 1.0 20 5.7 4.8 3.4 2.0 1.2 2.611.6 4.8 0 2.1 1.3 2.1 3.3 13.819.6 V 2.9 3.5 3.7 4.6 20 8.210. 0 9.1 3.2 5.40.1 4.85.517. 4.0 1.8 1.2 20 20 V 3.64.96.28.7 20 9.9 20 3.74.20.56.7 .150 9.5 20 5.1 3.6 0 20 20 V 1.8 2.8 3.3 2.0 2.9 6.2 3.1 0 2.410.8 3.02.46.1 1.4 2.8 2.4 1.9 0.8 10-22.2 66 V 4.4 5.2 4.9 7.1 20 10.6120 1.0 12.1 4.8 9.1 4.6 50 7.9 12.6 5.8 3.5 0 20 96 Y 1.2 2.9 0:7 1.4 3.1 3.9 2.7 2.4 2.3 1.9 2.2 0 1.6 1.4 3.0 0.9 1.0 3.5 6.0 2.6 994T 0 2.6 6.0 11.5 20 5.3 20 20 6.0 20 4.4 3. 50 14.113. 0.9 3.8 15.115.0 20 25 N 5.2 7.0 6.6 6.9 50 11. 20 1.3 14. 13.513.9 0 5.0 6.0 20 6.0 4.6 3.2 20 50 28 L 4.8 5.5 7.0 3.2 20 10. 20 50 5.1 0 8.5h-5 50 3.5 8.2 5.5 13. 50 20 50 30 A 0.9 1.8 1.1 0.9 3.5 4.0 3.0 2.3 1.2 1.6 2.8 0 14. 0.9 1.1 0.1 0.4 2.0 6.4 3.2 32 1 5.3 6.4 6.7 4.8 8.2 9.9 5.2 3.1 0 3.6 5.2 _8 20 3.5 4.6 5.5 4.8 4.011.:
7.1 39 S 0.7 2.3 2.6 2.0 5.3 5.1 3.3 1.7 0 0 2.0 0.815.5 0.9 0.8 0.7 0.7 3.318.2 6.0 40 V 2.3 3.0 4.1 7.3 20 8.1 20 5.1 20 11.10. . 2.0 17. 20 3.6 1.3 0 20 20 63 V 3.2 4.3 7.3 8.3 20 9.6 20 13. 8.5 0.6 20 6.0 50 8.5 20 4.6 4.0 0 20 20 64 V 2.1 3.2 3.7 2.7 17. 6.6 11. 0 2.0 0.8 3.5 3.0 7.8 2.0 1.5 2.5 1.3 1.0 13.

66 B V 5.0 5.0 5.2 16.3 20 11.2 20 2.3 20 14.317.3. 50 11.6 20 5.4 3.9 0 20 20 96 Y 0.9 2.3 1.0 0.5 2.7 3.7 2.5 1.2 1.3 2.1 3.0 0 7.0 0.4 1.1 0.3 0.8 1.8 6.
22.4 99 T 1.1 2.2 7.6 5.4 20 6.4 12. 1.8 3.9 17.5 6.9 3.9 20 4.610. 0.8 0 1.9 20 20 325 N 1 0 . 1 1 1 . 13.111.2 20 15.7 20 8.6 14. 17.1 20 0 16.110.6 20 11.110.
10.5 20 20 328 L 2.9 4.1 4.8 3.5 50 8.5 1.7 9.6 1.5 0 1.5 3. 50 3.3 2.0 3.3 1.9 5.2 50 50 330 B A 0.1 2.0 1.4 1.8 1.6 4.0 3.0 2.0 0.5 0.5 2.6 0 20 0.7 2.0 0.3 0.6 2.1 4.4 2.4 .1 8.2 4.1 0 3.3 1.3 3.3 4-0 15. 0.8 2.1 3.9 2.7 1.1 20 6.1 332B 1 3.4 4.4 3.5 3.1 6.118.214-l' SPAT" technology; Fc/FcyRlib model template structure; - carbohydrate 79 V 84.95.93.8 20 8.816. 1.0 0 2.83.64.520 1.04.1 .52.92.0 20 20 80BD . 3.4 0 1.812. 3.99.817. 3.62.34.0 0.2 50 3.1 3.6 . 8.8112.1113.9112.71 330 B A 4 1.8 1.5 1.2 3.4 3.3 2.7 2.1 1.3 1.9 3.0 0 20 0.6 1.3 .1 0.3 1.8 6.0 3.7 Table 60 (continued) Pos WT A C O E F G H 1 K L M N P Q R S T V W Y
3318 P 1.63.67.810.6 7.3 6.54.68.97.713.66.35.7 0 8-3 7.7 1.75.3 5.216.5 8.0 3328 I 2.03.02.6 0.9 5.8 6.9 2.6 0 2.1 0.1 2.52.6 50 0 2.42.31.30.915.3 6.6 3338 E 2.22.82.7 0 8.1 6.4 7.8 3.4 3.6 6.1 3.32.6 3.6 1.23.02.41.44.9 8.4 8.8 3348 K 2.23.442 2.1 10.4 7.2 4.1 1.7 1,8 3.1 2.92.6 2.8 1.5 0 2.71.61.4 5.5 10.8 335 B T 0.5 1.1 1.9 0.8 4.8 4.6 4.4 0.5 0.3 3.7 2.2 0.8 1.7 1-710.6 0.6 0 0.8 5.2 5.1 3360 I 0.71.52.5 1.0 18.45.05.40.11.9 4.6 1.91.5 20 0 3.0 1.5 0.5 0.4 14.2 19.6 337 8 S 0.4 1.1 4.9 10.6 20 3.4 20 50 7.9 11.0 5.1 3.6 12.8 6.2 7.0 0 4.6 50 3388 K 4.58.27.4 8.0 20 9.6 20 5.3 0 2.0 5.76.0 5.8 6.84.95.46.46.7 20 20 3398 A 1.52 -83.0 2.1 2.4 5.5 3.3 0 0.410.2 2.8 1.5 0.90.71.51.1 0.5 6.6 2.6 340B K 1.02.71.7 1.3 1.7 3.72.12.4 0 2.1 1.90.6 1.0 0 1.0 0.2 1.0 2-317.0 1.8 SPAT"" technology; I DN2 template structure; + carbohydrate [204] The results of the design calculations presented above in Tables 1 - 60 were used to construct a series of Fe variant libraries for experimental production and screening. Experimental libraries were designed in successive rounds of computational and experimental screening. Design of subsequent Fc libraries benefitted from feedback from prior libraries, and thus typically comprised combinations of Fc variants that showed favorable properties in the previous screen. The entire set of Fc variants that were constructed and experimentally tested is shown in Table 61. In this table, row 1 lists the variable positions, and the rows that follow indicate the amino acids at those variable positions for WT and the Fc variants. For example, variant 18 has the following four mutations:
F241 E. F243Y, V262T, and V264R. The variable position residues that compose this set of Fc variants are illustrated structurally in Figure 4, and are presented in the context of the human tgG1 Fc sequence in Figure 5.

Table 61 Variant Substitutions Variant Substitution(s) 11 F241 LN2621. 60 A330L

13 F243L.N2621N264W 62 13320 R18I F24,1Y1F243YN262TN264T 63 N297S

23 L328M/1332E* 72 L328Q/1332E
Table 61 (continued) Variant Substitution(s) Variant Substitution s 110 1332EN264l/A3301- 155 A330V

136 V240M 181 .V2641/1332E/S239E/A330Y

Table 61 (continued) Variant Substitution(s) Variant Substitution(s) .227 S267D 272 K3261 Table 61 (continued) FVariant Substitutions Variant Substitution(s) 279 _P331 V 293 S239D/A330Y/1332E/L2341 280 P331 H 294 S239D/A330Y/l332E/L235D

[2051 Example 2: Experimental production and screening of Fc libraries The majority of experimentation on the Fc variants was carried out in the context of the anti-cancer antibody alemtuzumab (Campath , a registered trademark of Ilex Pharmaceuticals LP).
Alemtuzumab binds a short linear epitope within its target antigen CD52 (Hale et al., 1990, Tissue Antigens 35:118-127; Hale, 1995, lmmunotechnology 1:175-187). Alemtuzumab has been chosen as the primary engineering template because its efficacy is due in part to its ability to recruit effector cells (Dyer et al., 1989, Blood 73:1431-1439; Friend et at., 1991, Transplant Proc 23:2253-2254; Hale el al., 1998, Blood 92:4581-4590; Glennie et al., 2000, lmmunol Today 21:403-4 10). and because production and use of its antigen in binding assays are relatively straightforward. In order to evaluate the optimized Fc variants of the present invention in the context of other antibodies, select Fc variants were evaluated in the anti-CD20 antibody rituximab (Rituxan , a registered trademark of IDEC
Pharmaceuticals Corporation), the anti-Her2 antibody trastuzumab (Herceptin , a registered trademark of Genentech), and the anti-EGFR antibody cetuximab (Erbitux , a registered trademark of Imclone). The use of alemtuzumab, rituximab, and trastuzumab for screening purposes is not meant to constrain the present invention to any particular antibody.

[206) The IgG 1 full length light (VL-CL) and heavy (VH-Cyl-Cy2-Cy3) chain antibody genes for alemtuzumab, rituximab, and trastuzumab were constructed with convenient end restriction sites to facilitate subcloning. The genes were ligated into the mammalian expression vector pcDNA3.lZeo (Invitrogen). The VH-Cy1-Cy2-Cy3 clone in pcDNA3.lzeo was used as a template for mutagenesis of the Fc region. Mutations were introduced into this clone using PCR-based mutagenesis techniques.
Fc variants were sequenced to confirm the fidelity of the sequence. Plasmids containing heavy chain gene (VH-Cy1-Cy2-Cy3) (wild-type or variants) were co-transfected with plasmid containing light chain gene (VL-Cr) into 293T cells. Media were harvested 5 days after transfection.
Expression of immunoglobulin was monitored by screening the culture supernatant of transfectomas by western using peroxidase-conjugated goat-anti human IgG (Jackson ImmunoResearch, catalog if 109-035-088). Figure 6 shows expression of wild-type alemtuzumab and variants 1 through 10 in 293T cells-Antibodies were purified from the supernatant using protein A affinity chromatography (Pierce.
Catalog # 20334. Figure 7 shows results of the protein purification for WT
alemtuzumab. Antibody Fc variants showed similar expression and purification results to WT. Some Fc variants were deglycosylated in order to determine their solution and functional properties in the absence of carbohydrate. To obtain deglycosylated antibodies, purified alemtuzumab antibodies were incubated with peptide-N-glycosidase (PNGase F) at 37 C for 24h. Figure 8 presents an SDS PAGE gel confirming deglycosylation for several Fc variants and WT alemtuzumab.

[207] In order to confirm the functional fidelity of alemtuzumab produced under these conditions, the antigenic CD52 peptide, fused to GST, was expressed in E.coli BL21 (DE3) under IPTG induction.
Both un-induced and induced samples were run on a SDS PAGE gel, and transferred to PVDF
membrane. For western analysis, either alemtuzumab from Sotec (final concentration 2.5ng/ul) or media of transfected 293T cells (final alemtuzumab concentration about 0. 1 -0.2ng/ul) were used as primary antibody, and peroxidase-conjugated goat-anti human IgG was used as secondary antibody.
Figure 9 presents these results. The ability to bind target antigen confirms the structural and functional fidelity of the expressed alemtuzumab. Fc variants that have the same variable region as WT alemtuzumab are anticipated to maintain a comparable binding affinity for antigen.

[208] In order to screen for Fc/FcyR binding, the extracellular regions of human V158 FcyRllla, human F158 FcyRIIIa, human FcyRIIb, human FcyRlla, and mouse FcyRlll, were expressed and purified. Figure 10 presents an SDS PAGE gel that shows the results of expression and purification of human V158 FcyRllla_ The extracellular region of this receptor was obtained by PCR from a clone obtained from the Mammalian Gene Collection (MGC:22630). The receptor was fused with glutathione S-Transferase (GST) to enable screening. Tagged FcyRIlIa was transfected in 293T cells, and media containing secreted FcyRllla were harvested 3 days later and purified. For western analysis, membrane was probed with anti-GST antibody.

[209] Binding affinity to FcyRllla and FcyRllb was measured for all designed Fc variants using an AlphaScreenTM' assay (Amplified Luminescent Proximity Homogeneous Assay (ALPHA), PerkinElmer, Wellesley, MA), a bead-based non-radioactive luminescent proximity assay.
Laser excitation of a donor bead excites oxygen, which if sufficiently close to the acceptor bead generates a cascade of chemiluminescent events, ultimately leading to fluorescence emission at 520-620 nm. The AlphaScreen TM' assay was applied as a competition assay for screening Fc variants. WT
alemtuzumab antibody was biotinylated by standard methods for attachment to streptavidin donor beads, and GST-tagged FcyR was bound to glutathione chelate acceptor beads. In the absence of competing Fc variants, WT antibody and FcyR interact and produce a signal at 520-620 nm. Addition of untagged Fc variant competes with the WT Fc/FcvR interaction. reducing fluorescence quantitatively to enable determination of relative binding affinities. All Fc variants were screened for V158 FcyRllla binding using the AlphaScreenT" assay- Fc variants were screened in the context of either alemtuzumab or trastuzumab, and select Fc variants were also screened in the context of rituximab and cetuximab. Select Fc variants were subsequently screened for binding to FcyRllb, as well as other FcyRs and Fc ligands_ [210] Figure 11 shows AlphaScreenT" data for binding to human V158 FcyRllla by select Fc variants. The binding data were normalized to the maximum and minimum luminescence signal for each particular curve, provided by the baselines at low and high antibody concentrations respectively.
The data were fit to a one site competition model using nonlinear regression, and these fits are represented by the curves in the figure. These fits provide the inhibitory concentration 50% (IC50) (i.e. the concentration required for 50% inhibition) for each antibody, illustrated by the dotted lines in Figure 11, thus enabling the relative binding affinities of Fc variants to be quantitatively determined.
Here. WT alemtuzumab has an IC50 of (4.63x10-9)x(2) = 9.2 nM, whereas S239D
has an IC50 of (3.98x10-70)x(2) = 0.8_nM. Thus S239D alemtuzumab binds 9.2 nM / 0.8 nM =
11.64-fold more tightly than WT alemtuzumab to human V158 FcyRIlla. Similar calculations were performed for the binding of all Fc variants to human V158 FcyRllla. Select Fc variants were also screened for binding to human FcyRllb, and examples of these AlphaScreen TM binding data are shown in Figure 12_ Table 62 presents the fold-enhancement or fold-reduction relative to the parent antibody for binding of Fc variants to human V158 FcyRllla (column 3) and human FcyRllb (column 4). as determined by the AlphaScreenTM assay. For these data, a fold above 1 indicates an enhancement in binding affinity, and a fold below 1 indicates a reduction in binding affinity relative to WT
Fc. Data for 1-206 and 217-218 were obtained in the context of alemtuzumab, except for those indicated with an asterix (`), which were tested in the context of trastuzumab. All data for 207-216 and 219-303 were obtained in the context of trastuzumab.

Table 62 FcyRllla FcyRllb Fcylila-fold :
Variant Substitution(s) Fold Fold Fcyllb-fold 1 V264A 0.53 2 V264L 0.56 3 V2641 1.43 4 F241 W 0.29 F241 L 0.26 6 F243W 0.51 7 F243L 0.51 8 F241 L1F243LN2621N2641 0.09 9 F241 W/F243W 0.07 F241W/F243W1V262A1V264A 0.04 11 F241 LN2621 0.06 12 F243LN2641 1.23 13 F243LIV2621N264W 0.02 14 F241YIF243YN262TN264T 0.05 F241E/F243RN262EN264R 0.05 16 F241 E/F2430/V262TN264E 0.07 17 F241 R/F243QN262TN264R 0.02 18 F241 E/F243YN262TN264R 0.05 19 L328M 0.21 L328E 0.12 21 L328F 0.24 22 1332E 6.72 3.93 1.71 23 L328M/1332E 2.60 24 P244H 0.83 P245A 0.25 26 P247V 0.53 27 W313F 0.88 28 P244H/P245A/P247V 0.93 29 P247G 0.54 V264111332E 12.49 1.57* 7.96 31 F241E/F243R1V262EN264R/1332E 0.19 34 F241E/F243YN262TN264R/1332E 0.10 S298A 2.21 36 5298A/1332E 21.73 37 S298A/E333A/K334A 2.56 41 S239E/1332E 5.80 3.49 1.66 42 S2390/1332E 6.60 4.68 1.41 43 S239E 10.16 44 D265G <0.02 D265N <0.02 46 S239E/D265G <0.02 47 S239E/D265N 0.02 48 S239EID265Q 0.05 49 Y296E 0.73 1.11 0-66 Y2960 0.52 0.43 1.21 Table 62 (continued) Variant Substitution(s) FcyRllla FcyRllb Fcyllla-fold Fold Fold Fcyllb-fold 51 S298T 0.94 <0.02 52 S298N 0.41 <0.02 53 _ T2991 <0.02 54 A327S 0.23 0.39 0.59 55 A327N 0.19 1.15 0.17 56 S26701A327S 0.03 57 S267UA327S <0.02 58 A327L 0.05 59 P329F <0.02 60 A330L 0.73 0.38 1.92 61 A330Y 1.64 0.75 2.19 62 13320 17.80 3.34 5.33 63 N297S <0.02 64 N297D <0.02 65 N297S/1332E <0.02 66 N297D/1332E 0.08 <0.02 67 N297E/1332E <0.02 68 D265Y/N297D/1332E <0.02 69 D265Y/N2970/T299U1332E <0.02 70 D265F/N297E/1332E <0.02 71 L328111332E 7.03 72 L3280/1332E 1.54 73 1332N 0.39 74 1332Q 0.37 75 V264T 2.73 76 V264F 0.16 77 V240( 3.25 78 V2631 0.10 79 V2661 1.86 80 T299A 0.03 81 T299S 0.15 82 T299V <0.02 83 N325Q <0.02 84 N325L <0.02 85 N3251 <0.02 86 32390 11.64 4.47` 2.60 87 3239N <0.02 88 S239F 0.22 <0.02 89 S239D/1332D 14.10 90 S239011332E 56.10 19.71 2.85 91 S239D/1332N . 7.19 92 S239D/1332Q 9.28 93 S239E/13320 9.33 94 3239E/1332N 11.93 95 S239E/1332Q 3.80 96 S239N/1332D 3.08 97 S239N/1332E 14.21 98 S239N/1332N 0.43 Table 62 (continued) FcyRllla. FcyRllb Fcyllla-fold :
Variant Substitution(s) Fold Fold Fcyllb-fold 99 S239N/1332Q 0.56 100 S239Q/1332D 5.05 101 S2390/1332N 0.39 102 S2390113320 0.59 103 K326E 3.85 104 Y296D 0.62 105 Y296N 0.29 N297D/1332E 0.15 107 A330Y/1332E 12.02 4.40 2.73 108 V2641/A330Y/1332E 12.00 3.54 3.39 109 A330U1332E 10.34 2.03 5.09 110 V2641/A330U1332E 11.15 1.79 6.23 111 L234D 0.21 112 L234E 1.34 2.21 0.61 113 L234N 0.56 1.39 0.40 114 L234Q 0.37 115 L234T 0.35 116 L234 H 0.33 117 L234Y 1.42 1.08 1.31 118 L2341 1.55 1.14 1.36 119 L234V 0.38 120 L234F 0.30 121 L2350 1.66 3.63 0.46 123 L235N 0.40 124 L235Q 0.51 125 L235T 0.52 126 L235H 0.41 127 L235Y 1.19 10.15 0.12 128 L2351 1.10 0.94 1.17 129 L235V 0.48 130 L235F 0.73 3.53 0.21 131 S239T 1.34 132 S239H 0.20 133 S239Y 0.21 134 V240A 0.70 0.14 5.00 136 V240M 2.06 1.38 1.49 138 V263T 0.43 139 V263M 0.05 140 V264M 0.26 141 V264Y 1.02 027 3.78 142 V266A <0.02 143 V266T 0.45 145 E269H <0.02 146 E269Y 0.12 Table 62 (continued) FcyR11Ia FcyRIlb Fcyllla-fold :
Variant Substitution(s) Fold Fold Fcyllb-fold 147 F269F 0.16 148 E269R 0.05 149 Y296S 0.12 150 Y296T <0.02 151 Y296L 0.22 152 Y2961 0.09 153 A298H 0.27 154 T299H <0.02 155 A330V 0.43 156 A3301 1.71 0.02 85.5 157 A330F 0.60 158 A330R <0.02 159 A330H 0.52 160 N325D 0.41 161 N325E <0.02 162 N325A 0.11 163 N325T 1.10 164 N325V 0.48 165 N325H 0.73 166 L328D/1332E 1.34 167 L328E/1332E 0.20 168 L328N/1332E <0.02 169 L3280/1332E 0.70 170 L328V/1332E 2.06 171 L328T/1332E 1.10 172 L328H/1332E <0.02 173 L3281/1332E 3.49 174 L328A 0.20 175 1332T 0.72 176 1332H 0.46 177 1332Y 0.76 178 1332A 0.89 179 S239EN2641/1332E 15.46 180 S2390N264(/1332E 2.14 181 S239EN2641/A330Y/1332E 8.53 183 S239D/N297D/1332E 0.28 184 S239E/N297D/1332E 0.06 185 3239D/D265V/N297D/1332E 0.03 186 S239D/D2651/N297D/1332E 0.01 187' S239D/D265UN297D/1332E <0.02 188 S239D/D265F/N297D/1332E <0.02 189 S239D/D265Y/N297D/1332E 0.02 190 S239D/D265H/N2970/1332E 0.04 191 S239D/D265T/N297D/1332E <0.02 192 V264E/N297D/1332E 0.05 194 Y296E/N297D/1332E <0.02 Table 62 (continued) Variant Substitution(s) FcyRllla FcyRllb Fcyllla-fold :
Fold Fold Fcyllb-fold 195 Y296N/N297D/1332E 0.04 196 Y296Q/N297D/1332E <0.02 197 Y296H/N297D/1332E <0.02 198 Y296T/N297D/1332E <0.02 199 N297D/T299V/1332E <0.02 200 N297D/T2991/1332E <0.02 201 N297D/T299U1332E <0.02 202 N2970/T299F/(332E <0.02 203 N297DIT299H/1332E <0-02 204 N297D/T299E/1332E <0.02 205 N297D/A330Y/1332E 0.43 207 S2390/A330Y/1332E 129.58 208 S239N/A330Y/1332E 14.22 209 S239DIA33OU1332E 138.63 7-50 18.48 210 S239N/A330U1332E 12.95 211 V2641/S298A/1332E 16.50 212 S239D/S298A/1332E 295.16 6.16 47.92 213 S239N/S298A/1332E 32.14 5.15 6.24 214 S239DN2641/1332E 36-58 14.39 2.54 217 L328N 0.59 218 L328H <0.02 219 S239D/1332E/A3301 59.1 222 E233D 0.85 223 P230A/E233D 0.92 229 E269T <0.02 230 E269L <0.02 231 E269N <0.02 232 D2700 <0-02 233 D270T <0-02 234 D270H <0.02 235 _ E272S

238 E272Y 8.70 240 K274T 1.41 241 K274E 6.11 243 K274L 1.09 244 K274Y 1.06 Table 62 (continued) FcyRllla FcyRllb Fcyllla-fold :
Variant Substitution(s) Fold Fold Fcyllb-fold 246 N276S 0.41 247 N276E 0.87 248 N276R 0.66 249 N276L 1.07 250 N276Y 0.56 251 Y278T 1.87 252 Y278E 0.90 254 Y278W 0.41 255 E283R 0.67 256 V3021 1.01 257 E318R 1.06 263 V3231 0.83 265 S324D 1.07 266 S324R 0.71 267 S3241 1.15 268 S324V 1.17 269 S324L <0.02 270 S324Y 0.98 272 K3261 1.43 273 K326T 1.88 274 A327D <0.02 275 A327T <0.02 281 E333T 0.78 282 E333H 0.75 288 T335D 2.79 289 T335R 2.58 290 T335Y 1.56 291 1-2341/1-235D 0.07 292 V240IN2661 1.72 293 S239D/A330Y/1332E/L2341 22.39 294 S239D/A330Y/1332E/L235D 7.04 295 S239D/A330Y/1332EN2401 27.97 Table 62 (continued) FcyRllla FcyRllb Fcyllla-fold :
Variant Substitution(s) Fold Fold Fcyllb-fold 296 S2390/A330Y/1332E/V264T 17.72 298 S239D1A330YI1332E1K326E 64.14 299 S239D/A330Y/1332E/K326T 59.03 300 S239D/N2970/1332E/A330Y <0.02 301 F241 SIF243HN262TN264T <0.02 [211] Example 3: Selectively enhanced binding to FcyRs A number of promising Fc variants with optimized properties were obtained from the FcyRllla and FcyRllb screen. Table 62 provides Fc variants that bind more tightly to FcyRllla, and thus are candidates for improving the effector function of antibodies and Fc fusions.
These include a number of variants that comprise substitutions at 239, 264, 272, 274, 330, and 332.
Figures 13a and 13b show AlphaScreenTM' binding data for some of these Fc variants. The majority of these Fc variants provide substantially greater FcyRllla binding enhancements over S298A/E333A/K334A.

_ [2121 Select Fc variants were screened in the context of multiple antibodies in order to investigate the breadth of their applicability. AlphaScreenI data for binding of select Fc variants to human V158 FcyRllla in the context of trastuzumab, rituximab, and cetuximab are shown in Figures 14a, 14b, 15a, and 15b. Together with the data for alemtuzumab in Figure 13, the results indicate consistent binding enhancements regardless of the antibody context, and thus that the Fc variants of the present invention are broadly applicable to antibodies and Fc fusions.

[2131 Fc variants have been obtained that show differentially enhanced binding to Fc'Rllla over FcyRllb. As discussed, optimal effector function may result from Fc variants wherein affinity for activating FcyRs is greater than affinity for the inhibitory FcyRllb.
AlphaScreenTM data directly comparing binding to FcyRilla and FcyRllb for two Fc variants with this specificity profile are shown in Figures 16a and 16b. This concept can be defined quantitatively as the fold-enhancement or -reduction of the activating FyR (Table 62, column 3) divided by the fold-enhancement or -reduction of the inhibitory FcyR (Table 62, column 4). herein referred to as the FcyRIlla-fold: FcyRllb-fold ratio.
This value is provided in Column 5 in Table 62. Table 62 shows that Fc variants provide this specificity profile, with a FcyRllla-fold:FcyRllb-fold ratio as high as 86:1.

[214] Some of the most promising Fc variants of the present invention for enhancing effector function have both substantial increases in affinity for FcyRilla and favorable FcyRllla-fold:FcyRllb-fold ratios. These include, for example, S239011332E (FcyRllla-fold = 56, FcyRllla-fold:FcyRllb-fold = 3), S239D/A330Y/1332E (FcyRllla-fold = 130), S239D/A330U1332E (FcyRllla-fold =
139, FcyRllla-fold:FcyRllb-fold = 18), and S239D1S298A/1332E (FcyRllla-fold = 295, FcyRllla-fold:FcyRllb-fold = 48).
Figure 17 shows AlphaScreenTM' binding data for these and other Fc variants to human V158 FcyRllla.

[215] Because there are a number of FcyRs that contribute to effector function, it may be worthwhile to additionally screen Fc variants against other receptors. Figure 18 shows AlphaScreenTM data for binding of select Fc variants to human R131 FcyRlla. As can be seen, those aforementioned variants with favorable binding enhancements and specificity profiles also show enhanced binding to this activating receptor. The use of FcyRllla, FcyRllb, and FcyRllc for screening is not meant to constrain experimental testing to these particular FcyRs; other FcyRs are contemplated for screening, including but not limited to the myriad isoforms and allotypes of FcyRl, FcyRll, and FcyRlll from humans, mice, rats, monkeys, and the like, as previously described.

[216] Taken together, the FcyR binding data provided in Figures 11 - 18 and Table 62 indicate that a number of substitions at positions 234, 235, 239, 240, 243, 264, 266, 272, 274, 278, 325, 328, 330, and 332 are promising candidates for improving the effector function of antibodies and Fc fusions.
Because combinations of some of these substitutions have typically resulted in additive or synergistic binding improvements, it is anticipated that as yet unexplored combinations of the Fc variants provided in Table 62 will also provide favorable results. Thus all-combinations of the Fc variants in Table 62 are contemplated. Likewise, combinations of any of the Fc variants in Table 62 with other discovered or undiscovered Fc variants may also provide favorable properties, and these combinations are also contemplated- Furthermore, it is anticipated from these results that other substitutions at positions 234, 235, 239, 240, 243, 264, 266, 325, 328, 330, and 332 may also provide favorable binding enhancements and specificities, and thus substitutions at these positions other than those presented in Table 62 are contemplated.

[217] Example 4: Reduced binding to FcyRs As discussed, although there is a need for greater effector function, for some antibody therapeutics, reduced or eliminated effector function may be desired. Several Fc variants in Table 62 substantially reduce or ablate FcyR binding, and thus may find use in antibodies and Fc fusions wherein effector function is undesirable. AlphaScreenT' binding data for some examples of such variants are shown in Figures 19a and 19b. These Fc variants, as well as their use in combination, may find use for eliminating effector function when desired, for example in antibodies and Fc fusions whose mechanism of action involves blocking or antagonism but not killing of the cells bearing target antigen.
[218] Example 5: Aglycosylated Fc variants As discussed, one goal of the current experiments was to obtain optimized aglycosylated Fc variants.
Several Fc variants provide significant progress towards this goal. Because it is the site of glycosylation, substitution at N297 results in an aglycosylated Fc_ Whereas all other Fc variants that comprise a substitution at N297 completely ablate FcyR binding, N297D/1332E
has significant binding affinity for FcyRllla, shown in Table 62 and illustrated in Figure 20. The exact reason for this result is uncertain in the absence of a high-resolution structure for this variant, although the computational screening predictions suggest that it is potentially due to a combination of new favorable Fc/FcyR
interactions and favorable electrostatic properties. Indeed other electrostatic substitutions are envisioned for further optimization of aglycosylated Fc. Table 62 shows that other aglycosylated Fc variants such as S239D/N297D/1332E and N297D/A330Y/1332E provide binding enhancements that bring affinity for FcyRllla within 0.28- and 0.43-fold respectively of glycosylated WT alemtuzumab.
Combinations of these variants with other Fr- variants that enhance FcyR
binding are contemplated, with the goal of obtaining aglycosylated Fc variants that bind one or more FcyRs with affinity that is approximately the same as or even better than glycosylated parent Fc. An additional set of promising Fc variants provide stability and solubility enhancements in the absence of carbohydrate. Fc variants.
that comprise substitutions at positions 241, 243. 262, and 264, positions that do not mediate FyR
binding but do determine the interface between the carbohydrate and Fc, ablate FyR binding.
presumably because they perturb the conformation of the carbohydrate. In deglycosylated form, however, Fc variants F241E/F243RN262E/V264R, F241E/F243QN262TN264E, F241 R/F2430N262TN264R. and F241 E/F243YN262TN264R show stronger binding to FcyRllla than in glycosylated form, as shown by the AlphaScreenI data in Figure 21.
This result indicates that these are key positions for optimization of the structure, stability, solubility, and function of aglycosylated Fc. Together these results suggests that protein engineering can be used to restore the favorable functional and solution properties of antibodies and Fc fusions in the absence of carbohydrate, and pave the way for aglycosylated antibodies and Fc fusions with favorable solution properties and full functionality that comprise substitutions at these and other Fc positions.
[219] Example 6. Affinity of Fc variants for polymorphic forms of FcyRllla As discussed above, an important parameter of Fc-mediated effector function is the affinity of Fc for both V158 and F158 polymorphic forms of FcyRllla. AlphaScreenTM' data comparing binding of select variants to the two receptor allotypes are shown in Figure 22a (V158 FcyRllla) and Figure 22b (F158 FcyRllla). As can be seen, all variants improve binding to both FcyRllla allotypes_ These data indicate that those Fc variants of the present invention with enhanced effector function will be broadly applicable to the entire patient population, and that enhancement to clinical efficacy will potentially be greatest for the low responsive patient population who need it most.

[220] The FcyR binding affinities of these Fc variants were further investigated using Surface Plasmon Resonance (SPR) (Biacore, Uppsala, Sweden). SPR is a sensitive and extremely quantitative method that allows for the measurement of binding affinities of protein-protein interactions, and has been used to effectively measure FcfFcyR binding (Radaev et at, 2001, J Bi'ol Chem 276:16478-16483). SPR thus provides an excellent complementary binding assay to the AlphaScreenTM assay. His-tagged V158 FcyRllla was immobilized to an SPR chip, and WT and Fc variant alemtuzumab antibodies were flowed over the chip at a range of concentrations. Binding constants were obtained from fitting the data using standard curve-fitting methods. Table 63 presents dissociation constants (Kd) for binding of select Fc variants to V158 FcyRllla and F158 FcyRllla obtained using SPR, and compares these with IC50s obtained from the AlphaScreenTM' assay- By dividing the Kd and 1C50 for each variant by that of WT alemtuzumab, the fold-improvements over WT
(Fold) are obtained.

Table 63 SPR SPR AlphaScreenTM' AlphaScreenTM' Fc Rllla F Rllla V158 FcyRllla F158 FcyRII1a Kd Fold Kd Fold IC50 Fold IC50 Fold (nM) (nM) nM) (nM) WT 68 730 6.4 17.2 V2641 64 1.1 550 1.3 4.5 1.4 11.5 1.5 1332E 31 2.2 72 10.1 1.0 6.4 2.5 6.9 V2 6 41113 3 2E 17 4.0 52 14.0 0.5 12.8 1.1 15.6 S298A 52 1.3 285 2.6 2.9 2.2 12.0 1.4 S298A1E333AI 39 17 156 4.7 2.5 2.6 7.5 2.3 (2211 The SPR data corroborate the improvements to FcyRllla affinity observed by AlphaScreenTM
assay. Table 63 further indicates the superiority of V2641/1332E and 1332E
over S298A and S298A/E333A/K334A; whereas S298A/E333A/K334A improves Fc binding to V158 and F158 FcyRllla by 1.7-fold and 4.7-fold respectively, 1332E shows binding enhancements of 2.2-fold and 10.1-fold respectively, and V264111332E shows binding enhancements of 4.0-fold and 14-fold respectively. Also worth noting is that the affinity of V264111332E for F158 FcyRllla (52 nM) is better than that of WT for the V158 allotype (68 nM), suggesting that this Fc variant, as well as those with even greater improvements in binding, may enable the clinical efficacy of antibodies for the low responsive patient population to achieve that currently possible for high responders- The correlation between the SPR
and AlphaScreen"' binding measurements are shown in Figures 23a - 23d. Figures 23a and 23b show the Kd - IC50 correlations for binding to V158 FcyRllla and F158 FcyRllla respectively, and Figures 23c and 23d show the fold-improvement correlations for binding to VI
58 FcyRllla and F 158 FcyRllla respectively. The good fits of these data to straight lines (r2 =
0.9, r2 = 0.84, r2 = 0.98, and r2 0.90) support the accuracy the AlphaScreenTM' measurements, and validate its use for determining the relative FcyR binding affinities of Fc variants.

(222] SPR data were also acquired for binding of select trastuzumab Fc variants to human V158 FcyRttla, F158 FcyRllla. and FcyRllb. These data are shown in Table 64. The Fc variants tested show substantial binding enhancements to the activating receptor FcyRllla, with over 100-fold tighter binding observed for interaction of S2390/1332E/S298A with F158 FcyRllla_ Furthermore, for the best FcyRIlla binders, F158 FcyRllla/FcyRIIb ratios of 3 - 4 are observed.

Table 64 SPR SPR SPR
V158 F RIIIa F158 F Rllla Fc Rllb nM Fold Kd Fold InM Fold WT 363.5 503 769 V2641/1332E 76.9 4.7 252 2.0 756 1.0 V264111332E1 113.0 32 A330L 88 5.7 353 2.2 S239D/1332E1 8.2 44.3 8.9 56.5 46 16.7 S239D/1332E1 8.7 41 S298A .8 4.9 102.7 32 24.0 S239D/1332E/ 12.7 28.6 6.3 79.8 35 22.0 [223] Example 7. AOCC of Fc variants In order to determine the effect on effector function, cell-based ADCC assays were performed on select Fc variants. ADCC was measured using the DELFIAO EuTDA-based cytotoxicity assay (Perkin Elmer, MA) with purified human peripheral blood monocytes (PBMCs) as effector cells. Target cells were loaded with BATDA at 1x106 cells/ml, washed 4 times and seeded into 96-well plate at 10,000 cells/well. The target cells were then opsonized using Fc variant or WT
antibodies at the indicated final concentration. Human PBMCs, isolated from buffy-coat were added at the indicated fold-excess of target cells and the plate was incubated at 37 C for 4 hrs. The co-cultured cells were centrifuged at 500xg, supernatants were transferred to a separate plate and incubated with Eu solution, and relative fluorescence units were measured using a Packard Fusion TM' a-FP HT reader (Packard Biosciences, IL). Samples were run in triplicate to provide error estimates (n=3, +/-S.D.). PBMCs were allotyped for the V158 or F158 FcyRllla allotype using PCR.

[224] ADCC assays were run on Fc variant and WT alemtuzumab using DoHH-2 lymphoma target cells. Figure 24a is a bar graph showing the ADCC of these proteins at 10 ng/ml antibody. Results show that alemtuzumab Fc variants 1332E, V2641, and 1332EN2641 have substantially enhanced ADCC compared to WT alemtuzumab, with the relative ADCC enhancements proportional to their binding improvements to FcyRllla as indicated by AlphaScreen"M assay and SPR.
The dose dependence of ADCC on antibody concentration is shown in Figure 24b. The binding data were normalized to the minimum and maximum fluorescence signal for each particular curve, provided by the baselines at low and high antibody concentrations respectively. The data were fit to a sigmoidal dose-response model using nonlinear regression, represented by the curve in the figure. The fits enable determination of the effective concentration 50% (EC50) (i.e. the concentration required for 50% effectiveness), which provides the relative enhancements to ADCC for each Fc variant. The EC50s for these binding data are analogous to the lC50s obtained from the AlphaScreenT"
competition data, and derivation of these values is thus analogous to that described in Example 2 and Figure 11. In Figure 24b, the log(EC50)s, obtained from the fits to the data, for WT, V2641/1332E, and S239D/I332E alemtuzumab are 0.99, 0.60, and 0.49 respectively, and therefore their respective EC50s are 9.9, 4.0, and 3Ø Thus V264111332E and S239E/1332E provide a 2.5-fold and 3.3-fold enhancement respectively in ADCC over WT alemtuzumab using PBMCs expressing heterozygous V1581F158 FcyRllla. These data are summarized in Table 65 below.

Table 65 f Iog(EC50) EC50 (ng/ml) Fold Improvement Over WT
WT 0.99 9.9 V2641/1332E 0.60 - 4.0 2.5 8239011332E 0.49 3.0 3.3 1225] In order to determine whether these ADCC enhancements are broadly applicable to antibodies, select Fc variants were evaluated in the context of trastuzumab and rituximab. ADCC
assays were run on Fcvariant and WT trastuzumab using two breast carcinoma target cell lines BT474 and Sk-Br-3. Figure 25a shows a bar graph illustrating ADCC at I nglmf antibody. Results indicate that V2641 and V2641/1332E trastuzumab provide substantially enhanced ADCC compared to WT trastuzumab, with the relative ADCC enhancements proportional to their binding improvements to FcyRIIIa as indicated by AlphaScreentm assay and SPR. Figures 25b and 25c show the dose dependence of ADCC on antibody concentration for select Fc variants. The EC50s obtained from the fits of these data and the relative fold-improvements in ADCC are provided in Table 66 below.
Significant ADCC improvements are observed for 1332E trastuzumab when combined with A330L and A330Y. Furthermore, S239D/A33OU1332E provides a substantial ADCC enhancement, greater than 300-fold for PBMCs expressing homozygous F158/F158 FcyRIfla, relative to WT
trastuzumab and S298A/E333A/K334A, consistent with the FcyR binding data observed by the AlphaScreenT" assay and SPR.

Table 66 log(EC50) EC50 (nglml) Fold Improvement Over WT
Figure 25b WT 1.i 11.5 1332E 0.34 2.2 5.2 A330YI1332E -0.04 0.9 12.8 A330U1332E 0.04 1.1 10.5 Figure 25d WT -0.15 0.71 S298AIE333A1K334A -0.72 0.20 3.6 S239D!A330L/1332E -2.65 0.0022 323 [226] ADCC assays were run on V2641/1332E, WT, and S298A/D333A/K334A rituximab using WIL2-S lymphoma target cells. Figure 26a presents a bar graph showing the ADCC
of these proteins at I ng/ml antibody. Results indicate that V264111332E rituximab provides substantially enhanced ADCC relative to WT rituximab, as well as superior ADCC to S298A/D333A/K334A, consistent with the FcyRllla binding improvements observed by AlphaScreenTM assay and SPR.
Figures 26b and 26c show the dose dependence of ADCC on antibody concentration for select Fc variants. The EC50s obtained from the fits of these data and the relative fold-improvements in ADGC are provided in Table 67 below. As can be seen S239D/1332E/A330L rituximab provides greater than 900-fold enhancement in EC50 over WT for PBMCs expressing homozygous Fl 58/17158 FcyRllla. The differences in ADCC enhancements observed for alemtuzumab, trastuzumab, and rituximab are likely due to the use of different PBMCs, different antibodies, and different target cell lines.

Table 67 log(EC50) EC50 (nglml) Fold Improvement Over WT
Figure 26b WT 0.23 1.7 S298AIE333AIK334A -0.44 0.37 4.6 V264111332E -0.83 0.15 11.3 Figure 26c .
WT 0.77 5.9 S239D/1332E/A330L -2.20 0.0063 937 [227] Thus far, ADCC data has been normalized such that the lower and upper baselines of each Fc polypeptide are set to the minimal and maximal fluorescence signal for that specific Fc polypeptide, typically being the fluorescence signal at the lowest and highest antibody concentrations respectively. Although presenting the data in this matter enables a straightforward visual comparison of the relative EC50s of different antibodies (hence the reason for presenting them in this way), important information regarding the absolute level of effector function achieved by each Fc polypeptide is lost. Figures 27a and 27b present cell-based ADCC data for trastuzumab and rituximab respectively that have been normalized according to the absolute minimal lysis for the assay, provided by the fluorescence signal of target cells in the presence of PBMCs alone (no antibody), and the absolute maximal lysis for the assay, provided by the fluorescence signal of target cells in the presence of Triton X1000. The graphs show that the antibodies differ not only in their EC50, reflecting their relative potency, but also in the maximal level of ADCC
attainable by the antibodies at saturating concentrations, reflecting their relative efficacy.
Thus far these two terms, potency and efficacy, have been used loosely to refer to desired clinical properties. In the current experimental context, however, they are denoted as specific quantities, and therefore are here explicitly defined. By " oten ' as used in the current experimental context is meant the EC50 of an antibody or Fc fusion. By "effica as used in the current experimental context is meant the maximal possible effector function of an antibody or Fc fusion at saturating levels.
In addition to the substantial enhancements to potency described thus far, Figures 27a and 27b show that the Fc variants of the present invention provide greater than 100% enhancements in efficacy over WT
trastuzumab and rituximab.

[228] A critical parameter governing the clinical efficacy of anti-cancer antibodies is the expression level of target antigen on the surface of tumor cells. Thus a major clinical advantage of Fc variants that enhance ADCC may be that it enables the targeting of tumors that express lower levels of antigen. In To test this hypothesis, WT and Fc variant trastuzumab antibodies were tested for their ability to mediate ADCC against different cell lines expressing varying levels of the Her2lneu target antigen. ADCC assays were run with various cell lines expressing amplified to low levels of Her2/neu receptor, including Sk-Br-3 (1 x106 copies), SkOV3 (-1 x105), OVCAR3(-1 x104), and MCF-7 (-3x103 copies), using the DELFIA EuTDA Cytotoxicity kit (PerkinElmer, Boston, MA).
Target cells were loaded with BATDA in batch for 25 minutes, washed multiple times with medium and seeded at 10,000 cells per well in 96-well plates. Target cells were opsonized for 15 minutes with various antibodies and concentrations (final conc. ranging from 100 ng/ml to .0316 ng/ml in V. log steps, including no treatment control). Human PBMCs, isolated from buffy-coat and allotyped as homozygous F158/F158 FcyRllla were then added to opsonized cells at 25-fold excess and co-cultured at 37 C for 4 his. Thereafter, plates were centrifuged, supernatants were removed and treated with Eu3+ solution, and relative fluorescence units (correlating to the level of cell lysis) were measured using a Packard Fusion'"" a-FP HT reader (PerkinElmer, Boston, MA).
The experiment was carried out in triplicates- Figure 28 shows the ADCC data comparing WT and Fc variant trastuzumab against the four different Her2/neu* cell lines. The S239D/1332E
and S239D/1332E/A330L variants provide substantial ADCC enhancements over WT
trastuzumab at high, moderate, and low expression levels of target antigen. This result suggests that the Fc variants of the present invention may broaden the therapeutic window of anti-cancer antibodies.

[2291 Natural killer (NK) cells are a subpopulation of cells present in PBMCs that are thought to play a significant role in ADCC. Select Fc variants were tested in a cell-based ADCC assay in which natural killer (NK) cells rather than PBMCs were used as effector cells- In this assay the release of endogenous lactose dehydrogenase (LDH), rather than EuTDA, was used to monitor cell lysis. Figure 29 shows that the Fc variants show substantial ADCC enhancement when NK cells are used as effector cells. Furthermore, together with previous assays, the results indicate that the Fe variants of the present invention show substantial ADCC enhancements regardless of the type of effector cell or the detection method used.

(2301 Example 8. ADCP of Fc Variants Another important FcyR-mediated effector function is ADCP. Phagocytosis of target cancer cells may not only lead to the immediate destruction of target cells, but because phagocytosis is a potential mechanism for antigen uptake and processing by antigen presenting cells, enhanced ADCP may also improve the capacity of the antibody or Fc fusion to elicit an adaptive immune response. The ability of the Fc variants of the present invention to mediate ADCP was therefore investigated. Monocytes were isolated from heterozygous VI581F158 FcyRllla PBMCs using a Percoll gradient. After one week in culture in the presence of 0.1 ng/ml, differentiated macrophages were detached with EDTA/PBS- and labeled with the lipophilic fluorophore. PKH26, according to the manufacturer's protocol (Sigma, St Louis, Mo). Sk-Br-3 target cells were labeled with PKH67 (Sigma, St Louis, Mo), seeded in a 96-well plate at 20,000 cells per well, and treated with designated final concentrations of WT or Fc variant trastuzumab. PKH26-labeled macrophages were then added to the opsonized, labeled Sk-Br-3 cells at 20,000 cells per well and the cells were co-cultured for 18 his before processing cells for analysis of dual label f ow cytometry. Percent phagocytosis was determined as the number of cells co-labeled with PKH76 and PKH26 (macrophage + Sk-Br-3) over the total number of Sk-Br-3 in the population (phagocytosed + non-phagocytosed) after 10,000 counts. Figure 30 shows data comparing WT and Fc variant trastuzumab at various antibody concentrations. The results indicate that the S239D/1332E/A330L variant provides a significant enhancement in ADCP
over WT trastuzumab.

[2311 Example 9. Complement binding and activation by Fc variants Complement protein C1q binds to a site on Fc that is proximal to the FcyR
binding site, and therefore it was prudent to determine whether the Fc variants have maintained their capacity to recruit and activate complement. The AlphaScreen Tm assay was used to measure binding of select Fc variants to the complement protein C1q. The assay was carried out with biotinylated WT
alemtuzumab antibody attached to streptavidin donor beads as described in Example 2, and using C 1 q coupled directly to acceptor beads. Binding data of V2641, 1332E, S239E, and V2641/1332E rituximab shown in Figure 31 a indicate that C1 q binding is uncompromised. Cell-based CDC assays were also performed on select Fc variants to investigate whether Fc variants maintain the capacity to activate complement. Alamar Blue was used to monitor lysis of Fc variant and WT
rituximab-opsonized WIL2-S lymphoma cells by human serum complement (Quidel, San Diego, CA). The data in Figure 31b show that CDC is uncompromised for the Fc variants S239E, V2641, and V2641/1332E rituximab. In contrast, Figure 31c shows that CDC of the Fc variant S239D/1332E/A330L is completely ablated, whereas the S239DII332E variant mediates CDC that is comparable to WT
rituximab. These results indicate that protein engineering can be used to distinguish between different effector functions. Such control will not only enable the generation of antibodies and Fc fusions with properties tailored for a desired clinical outcome, but also provide a unique set of reagents with which to experimentally investigate effector function biology.
[232] Example 10. Protein A and FcRn binding by Fc variants As discussed, bacterial proteins A and G and the neonatal Fc receptor FcRn bind to the Fc region between the Cy2 and Cy3 domains. Protein A is frequently employed for antibody purification, and FcRn plays a key role in antibody pharmacokinetics and transport. It was therefore important to investigate the ability of the Fc variants of the present invention to bind protein A and FcRn. The AlphaScreenTO assay was used to measure binding of select Fc variants to protein A and human FcRn using biotinylated WT alemtuzumab antibody attached to streptavidin donor beads as described in Example 2, and using protein A and FcRn coupled directly to acceptor beads.
The binding data are shown in Figure 32 for protein A and Figure 33 for FcRn. The results indicate that the C72-Cy3 hinge region is unaffected by the Fc substitutions, and importantly that the capacity of the Fc variants to bind protein A and FcRn is uncompromised.

[233] Example 11. Capacity of Fc variants to bind mouse FcyRs Optimization of Fc to nonhuman FcyRs may be useful for experimentally testing Fc variants in animal models. For example, when tested in mice (for example nude mice, SCID mice, xenograft mice, and/or transgenic mice), antibodies and Fc fusions that comprise Fc variants that are optimized for one or more mouse FcyRs may provide valuable information with regard to clinical efficacy, mechanism of action, and the like. In order to evaluate whether the Fc variants of the present invention may be useful in such experiments, affinity of select Fc variants for mouse FcyRIII was measured using the AlphaScreen Tm assay. The AlphaScreen TM assay was carried out using biotinylated WT alemtuzumab attached to streptavidin donor beads as described in Example 2, and GST-tagged mouse FcyRIll bound to glutathione chelate acceptor beads, expressed and purified as described in Example 2. These binding data are shown in Figures 34a and 34b in the context of alemtuzumab and trastuzumab respectively. Results show that some Fc variants that enhance binding to human FcyRIlla also enhance binding to mouse FcyRIII. The enhancement of mouse effector function by the Fc variants was investigated by performing the aforementioned cell-based ADCC assays using mouse rather than human PBMC's. Figure 35 shows that the S239D/1332E/A330L trastuzumab variant provides substantial ADCC enhancement over WT in the presence of mouse immune cells. This result indicates that the Fc variants of the present invention, or other Fc variants that are optimized for nonhuman FcyRs, may find use in experiments that use animal models.

[2341 Example 12. Validation of Fc variants expressed in CHO cells Whereas the Fc variants of the present invention were expressed in 293T cells for screening purposes, large scale production of antibodies is typically carried out by expression in Chinese Hamster Ovary (CHO) cell lines. In order to evaluate the properties of CHO-expressed Fc variants, select Fc variants and WT alemtuzumab were expressed in CHO cells and purified as described in Example 2. Figure 36 shows AlphaScreenw data comparing binding of CHO- and 293T- expressed Fc variant and WT alemtuzumab to human V158 FcyR11Ia. The results indicate that the Fc variants of the present invention show comparable FcyR binding enhancements whether expressed in 293T or CHO.

[2351 Example 13. Enhancement of Fc variants in Fucose Minus Strain.

Combinations of the Fc variants of the present invention with other Fc modifications are contemplated with the goal of generating novel antibodies or Fc fusions with optimized properties. It may be beneficial to combine the Fc variants of the present invention with other Fc modifications, including modifications that alter effector function or interaction with one or more Fc ligands. Such combination may provide additive, synergistic. or novel properties in antibodies or Fc fusions- For example, a number of methods exist for engineering different glycoforms of Fc that alter effector function.
Engineered glycoforms may be generated by a variety of methods known in the art, many of these techniques are based on controlling the level of fucosylated and/or bisecting oligosaccharides that are covalently attached to the Fc region. One method for engineering Fc glycoforms is to express the Fc polypeptide in a cell line that generates altered glycoforms, for example Lec-13 CHO cells. In order to investigate the properties of Fc variants combined with engineered glycoforms, WT and V209 (S239D/1332E/A330L) trastuzumab were expressed in Lec-13 CHO cells and purified as described above. Figure 37a shows AlphaScreenTM binding data comparing the binding to human V158 FcyRilla by WT and V209 trastuzumab expressed in 2937. CHO. and Lec-1 3 cells.
The results show that there is substantial synergy between the engineered glycoforms produced by this cell line and the Fc variants of the present invention. The cell-based ADCC assay, shown in Figure 37b, supports this result. Together these data indicate that other Fc modifications, particularly engineered glycoforms, may be combined with the Fc variants of the present invention to generate antibodies and Fc fusions with optimized effector functions.

[2361 Example 14. Therapeutic application of Fc variants A number of Fc variants described in the present invention have significant potential for improving the therapeutic efficacy of anticancer antibodies. For illustration purposes, a number of Fc variants of the present invention have been incorporated into the sequence of the antibody rituximab. The WT
rituximab light chain and heavy chain, described in US 5,736,137, are provided in Figures 38a and 38b. The improved anti-CD20 antibody sequences are provided in Figure 38c. The improved anti-CD20 antibody sequences comprise at least non-WT amino acid selected from the group consisting of X1, X2, X3, X4, X5, Xs, X7. and X8. These improved anti-CD20 antibody sequences may also comprise a substitution Z, and/or Z2. The use of rituximab here is solely an example, and is not meant to constrain application of the Fc variants to this antibody or any other particular antibody or Fc fusion.
[237] Example 15. A complete structure/function analysis Fc I Fc ligand specificity It is clear from the results of these experiments that protein engineering is a powerful tool for mining Fc substitutions that significantly after its biological function and specificity. Given the profound clinical value of antibodies and Fc fusions, the implication is that the protein engineering methods of the present invention can be used to tune the clinical properties of these important biotherapeutics.
Such capability, however, demands a more complete understanding of the relationship between the structure and function of Fc and Fc ligands. In addition, the lack of available information on the determinants of Fc / Fc ligand specificity means that it is not possible to actively design Fc variants with all desired properties as target goals. Thus it is likely that, despite the aggressive experimental effort described in the present invention, there are therapeutically useful Fc variants that have not been mined, and biochemical properties of Fc variants that remain undiscovered. Equally important to obtaining new Fc variants for biotherapeutic application is the ability to improve the predictiveness of the design method, thereby permitting variants to be identified even more efficiently. Towards these goals, a more thorough characterization of Fc / Fc ligand biology was carried out. This included: 1) an expansion of the primary screen to include all relevant Fc ligands, and 2) an increase in the number of Fc variants to explore a greater set of substitutions at all relevant Fc positions.
Together this broadened approach will enable a more thorough'mining of useful Fr- variants, provide a greater understanding of Fc / Fc ligand specificity and biology, and provide a greater data set to enable a rigorous quantitative assessment of the predictiveness of the design methods.

[2381 Expansion of the primary screen In order to better characterize the structural and functional determinants of Fc specificity, the primary screen was expanded to include all relevant Fc ligands. Thus all Fc variants are tested in parrallel for binding to FcyRl, FcyRlla, FcyRIlb, FcyRllc, FcyRllla (Val158 isoform), FcRn, and C1q. The AlphaScreenN assay was used as described above. All Fc variants were-screened in the context of either alemtuzumab or trastuzumab according to Table 62. Table 68 shows an example of the parrallel screen for a set of substitutions at Fc positions 234 and 235. In this table, light grey indicates that Fc variant / Fc ligand affinity is 0.5-fold or less than WT. medium grey indicates that Fc variant 1 Fc ligand affinity is within 0.5 - 2.0 of WT, dark grey indicates that Fc variant / Fc ligand affinity is increased by 2-fold or greater, and white indicates that the Fc variant / Fc ligand interaction was not measured or that the data did not allow an accurate determination of affinity.
Thus Fc variants are grouped as those that significantly decrease, those that do not substantially alter, and those that significantly increase binding to a given Fc ligand. Visualization of the data in this way provides a structure/function map of Fc, enabling a straightforward interpretation of the results for each position such that useful and interesting variants can be efficiently identified, and such that predictiveness of the design method can be assessed in a practical manner.

Table 68 Variant Substitution(s) FcyRl FcyRlia FcyRlib FeyRIlc FcyRilla FcRn C1q 111 12340 u r ~~ ~7 112 L234E kL~ : ,'1~6 a X63 51 ' 113 L234N 0 t1, 0 t)7 `' t}r}+_i, r;- )&%4 ~` .

022, ~ 51 f 0 1 Q 8 115 L234T Sd H18, f05 9` ' ~y1'"t3 99 117 L234Y X06 aa~ (1B ~ 0 .
118 L2341 48` ~ 38. `60 6 119 L234V ~` sou B d .ro 120 L234F I 0 ii `~ 's 4 b M'S n 7 - ~-~ ~; 7E- t-<
j_.
121 L2350 04 , T 1( ` 0 ` s Vlv 123 L235N o 7 Ij5~ ~ 0 O 1 T f 1 10 124 L2350 00r, ! E X08 89'?081 i24 31 Ys. 235 = -`Y~t ~'-{ NA
125 L235T ~o i0 113 9 0. 01' 0 n (?
t a #~;
126 L235H 0 US 142 p172 p_4b b 88 19.
127 L235Y v~009/0,73g ~1~~OSSr 128 L2351 0:2100 2 _ I:G* .1 129 L235V 0 22 it9 1 -0e 130 L235F 0 OJ ;78; ~t) fl _9: ; F

[239] A number of substitutions at positions 234 and 235 show differenct specificities for binding to the various Fc ligands. Although the differences in some cases are subtle, the results indicate that it is indeed possible to engineer Fc specificity for different Fc ligands, even at at the FcyR interface where a number of highly homologous receptors bind to the same site. Other Fc variants that provide more distinct affinity differences are presented in Table 69.

Table 69 Variant Substitution(s) FcyRI FcyRlla FcyRilb FcyRllc FcyRllla FcRn Clq 109 A3301JI332E 1 ` t. ¾
a y I,fs 4 16 c 1 08 167 L328E/1332E 0 1 ; 0 31.
171 L328T/1332E 1.42 0 3.4 1 174 L328A 0.80', ~1]. 8+ .,1 11 Y.O: `1i~ 6 [240] These data show even more convincingly that it is possible to tune Fc for Fc ligand specificity, often by using very subtle mutational differences- For example, the A330Y/1332E variant enhances binding to all FcyRs, particularly FcyRllla, as well as FcRn, while maintaining binding to C1q.
However the A30001332E variant shows enhanced binding to FcyRI and FcyRlIla, but has WT affinity for the FcyRII's. In contrast, mutations at L328 provide preferential enhancement of the FcyRll's over FcyRl and FcyRllla_ In the case of the L328E11332E variant, affinity for all Fc)Rll's is increased, whereas L328T/1332E provides a dear enhancement specificity profile of FcyRllc > FcyRllb > FcyRlla.
In contrast, L328A significantly enhances binding to FcyRlla, but provides WT
affinity for all other FcyR's including FcyRllb and FcyRllc. it is dear from these results that very subtle mutational differences can provide substantial differences in specificity. Accordingly, collections of Fc variants such as these will not only enable the generation of antibodies and Fc fusions that have effector function tailored for the desired outcome, but they also provide a unique set of reagents with which to experimentally investigate and characterize effector function biology.

[2411 Expansion of the Fc variant set Because of the incomplete information concerning the structural and functional determinants of Fc /
Fc ligand interaction, it has not been possible to actively engineer Fc for all desired optimization goals.
The distinct specificity differences observed in Tables 68 and 69 to the various FcyRs were due more to the aggressive screening approach of the present invention; these Fc variants were not actively designed with their particular properties as the target goals due to the lack of structural information for binding of Fc to the different FcyRs, as well as the lack of understanding of how the structure and flexibility of the hinge impacts FcyR binding. Indeed the decision to explore a large number and variety of substitutions at these positions 234 and 235 was based on the knowledge that they are near the Fc/FcyR binding site, that mutations at these positions affect FcyR
binding, and that according to computational screening calculations a large number and variety of substitutions are permissible at these positions. Overall, the lack of structural information on the determinants of Fc/FcyR specificity, the lack of high-resolution structural information for the Fc/Clq complex, and the inability to account for indirect affects of substitutions on Fc / Fc ligand binding, together make it a certainty that all of the interesting and potentially useful Fc variants will not be explored using the current engineering methods. In order to fully mine useful Fc variants, as well as to obtain a more complete picture of the structural and function determinants of Fe / Fc ligand interaction, the set of Fc variants was expanded to explore a broader set of mutations. All Fc positions at or near the binding sites for FcyR's and C1q, chosen by visual inspection of the available structures and using the information provided by the results of previous Fc variant screening, were saturated such that all substitutions were constructed that have not been tested previously. At Fc positions significantly distal to the FcyR and Clq binding sites, a subset of select substitutions were designed based on predicted energies in previously described computational screening calculations, and based on available data from existing Fe variants. This new set of Fc variants, 576 total, is presented in Table 70.

Table 70 Position WT Substitution(s) Variant = 52620-2 Table 70 (continued) Position WT - Substitution(s) Variant 291 P D.E Q T HIG 849-855 297* N Q K R T H V LIF M Y W P G 856-869 ` Substitutions at 297 were made in the context of S239D/1332E

[241] Whereas particular embodiments of the invention have been described above for purposes of illustration, it will be appreciated by those skilled in the art that numerous variations of the details may be made without departing from the invention as described in the appended claims.

SEQUENCE LISTING
<110> Xencor Lazar, Gregory Alan Chirino, Arthur J.
Dang, Wei Desjarlais, John R.
Doberstein, Stephen Kohl Hayes, Robert J.
Karki, Sher Bahadur Vafa, Omid <120> OPTIMIZED Fc VARIANTS AND METHODS FOR THEIR GENERATION
<130> FP-71386-8-PC

<140> PCT/US 2004/009298 <141> 2004-03-26 <150> US 10/672,280 <151> 2003-09-26 <150> US 60/477,839 <151> 2003-06-12 <150> US 60/467,606 <151> 2003-05-02 <160> 308 <170> Patentln version 3.2 <210> 1 <211> 451 <212> PRT
<213> Homo sapiens <400> 1 Gln Val Gln Leu Gln Glu Ser Gly Pro Gly Leu Val Arg Pro Ser Gln Thr Leu Ser Leu Thr Cys Thr Val Ser Gly Phe Thr Phe Thr Asp Phe Tyr Met Asn Trp Val Arg Gln Pro Pro Gly Arg Gly Leu Glu Trp Ile Gly Phe Ile Arg Asp Lys Ala Lys Gly Tyr Thr Thr Glu Tyr Asn Pro Ser Val Lys Gly Arg Val Thr Met Leu Val Asp Thr Ser Lys Asn Gln Phe Ser Leu Arg Leu Ser Ser Val Thr Ala Ala Asp Thr Ala Val Tyr Tyr Cys Ala Arg Glu Gly His Thr Ala Ala Pro Phe Asp Tyr Trp Gly Gln Gly Ser Leu Val Thr Val Ser Ser Ala Ser Thr Lys Gly Pro Ser Val Phe Pro Leu Ala Pro Ser Ser Lys Ser Thr Ser Gly Gly Thr Ala Ala Leu Gly Cys Leu Val Lys Asp Tyr Phe Pro Glu Pro Val Thr Val Ser Trp Asn Ser Gly Ala Leu Thr Ser Gly Val His Thr Phe Pro Ala Val Leu Gln Ser Ser Gly Leu Tyr Ser Leu Ser Ser Val Val Thr Val Pro Ser Ser Ser Leu Gly Thr Gln Thr Tyr Ile Cys Asn Val Asn His Lys Pro Ser Asn Thr Lys Val Asp Lys Lys Val Glu Pro Lys Ser Cys Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 2 <211> 227 <212> PRT
<213> Homo sapiens <400> 2 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 3 <211> 213 <212> PRT
<213> Homo sapiens <400> 3 Gln Ile Val Leu Ser Gln Ser Pro Ala Ile Leu Ser Ala Ser Pro Gly Glu Lys Val Thr Met Thr Cys Arg Ala Ser Ser Ser Val Ser Tyr Ile His Trp Phe Gln Gln Lys Pro Gly Ser Ser Pro Lys Pro Trp Ile Tyr Ala Thr Ser Asn Leu Ala Ser Gly Val Pro Val Arg Phe Ser Gly Ser Gly Ser Gly Thr Ser Tyr Ser Leu Thr Ile Ser Arg Val Glu Ala Glu Asp Ala Ala Thr Tyr Tyr Cys Gln Gln Trp Thr Ser Asn Pro Pro Thr Phe Gly Gly Gly Thr Lys Leu Glu Ile Lys Arg Thr Val Ala Ala Pro Ser Val Phe Ile Phe Pro Pro Ser Asp Glu Gln Leu Lys Ser Gly Thr Ala Ser Val Val Cys Leu Leu Asn Asn Phe Tyr Pro Arg Glu Ala Lys Val Gln Trp Lys Val Asp Asn Ala Leu Gln Ser Gly Asn Ser Gln Glu Ser Val Thr Glu Gln Asp Ser Lys Asp Ser Thr Tyr Ser Leu Ser Ser Thr Leu Thr Leu Ser Lys Ala Asp Tyr Glu Lys His Lys Val Tyr Ala Cys Glu Val Thr His Gln Gly Leu Ser Ser Pro Val Thr Lys Ser Phe Asn Arg Gly Glu Cys <210> 4 <211> 451 <212> PRT
<213> Homo sapiens <400> 4 Gln Val Gln Leu Gln Gln Pro Gly Ala Glu Leu Val Lys Pro Gly Ala Ser Val Lys Met Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Ser Tyr Asn Met His Trp Val Lys Gln Thr Pro Gly Arg Gly Leu Glu Trp Ile Gly Ala Ile Tyr Pro Gly Asn Gly Asp Thr Ser Tyr Asn Gln Lys Phe Lys Gly Lys Ala Thr Leu Thr Ala Asp Lys Ser Ser Ser Thr Ala Tyr Met Gln Leu Ser Ser Leu Thr Ser Glu Asp Ser Ala Val Tyr Tyr Cys Ala Arg Ser Thr Tyr Tyr Gly Gly Asp Trp Tyr Phe Asn Val Trp Gly Ala Gly Thr Thr Val Thr Val Ser Ala Ala Ser Thr Lys Gly Pro Ser Val Phe Pro Leu Ala Pro Ser Ser Lys Ser Thr Ser Gly Gly Thr Ala Ala Leu Gly Cys Leu Val Lys Asp Tyr Phe Pro Glu Pro Val Thr Val Ser Trp Asn Ser Gly Ala Leu Thr Ser Gly Val His Thr Phe Pro Ala Val Leu Gln Ser Ser Gly Leu Tyr Ser Leu Ser Ser Val Val Thr Val Pro Ser Ser Ser Leu Gly Thr Gln Thr Tyr Ile Cys Asn Val Asn His Lys Pro Ser Asn Thr Lys Val Asp Lys Lys Ala Glu Pro Lys Ser Cys Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 5 <211> 451 <212> PRT
<213> Homo sapiens <220>
<221> misc_feature <222> (243)..(243) <223> Xaa can be one of the following amino acids: serine, aspartic acid, glutamic acid, asparagine, glutamine or threonine <220>
<221> misc_feature <222> (244)..(244) <223> Xaa can be one of the following amino acids: valine, isoleucine or methionine <220>
<221> misc_feature <222> (268)..(268) <223> Xaa can be one of the following amino acids: valine, isoleucine, threonine or tyrosine <220>
<221> misc_feature <222> (276)..(276) <223> Xaa can be one of the following amino acids: glutamic acid or tyrosine <220>
<221> misc_feature <222> (278)..(278) <223> Xaa can be one of the following amino acids: lysine or glutamic acid <220>
<221> misc feature <222> (301)..(301) <223> Xaa can be one of the following amino acids: asparagine or aspartic acid <220>
<221> misc_feature <222> (302)..(302) <223> Xaa can be one of the following amino acids: serine or alanine <220>
<221> misc_feature <222> (330) .. (330) <223> Xaa can be one of the following amino acids: lysine, glutamic acid or threonine <220>
<221> misc_feature <222> (334)..(334) <223> Xaa can be one of the following amino acids: alanine, tyrosine, leucine or isoleucine <220>
<221> misc_feature <222> (336)..(336) <223> Xaa can be one of the following amino acids: isoleucine, aspartic acid, glutamic acid, asparagine or glutamine <400> 5 Gln Val Gln Leu Gln Gln Pro Gly Ala Glu Leu Val Lys Pro Gly Ala Ser Val Lys Met Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Ser Tyr Asn Met His Trp Val Lys Gln Thr Pro Gly Arg Gly Leu Glu Trp Ile Gly Ala Ile Tyr Pro Gly Asn Gly Asp Thr Ser Tyr Asn Gln Lys Phe Lys Gly Lys Ala Thr Leu Thr Ala Asp Lys Ser Ser Ser Thr Ala Tyr Met Gln Leu Ser Ser Leu Thr Ser Glu Asp Ser Ala Val Tyr Tyr Cys Ala Arg Ser Thr Tyr Tyr Gly Gly Asp Trp Tyr Phe Asn Val Trp Gly Ala Gly Thr Thr Val Thr Val Ser Ala Ala Ser Thr Lys Gly Pro Ser Val Phe Pro Leu Ala Pro Ser Ser Lys Ser Thr Ser Gly Gly Thr Ala Ala Leu Gly Cys Leu Val Lys Asp Tyr Phe Pro Glu Pro Val Thr Val Ser Trp Asn Ser Gly Ala Leu Thr Ser Gly Val His Thr Phe Pro Ala Val Leu Gln Ser Ser Gly Leu Tyr Ser Leu Ser Ser Val Val Thr Val Pro Ser Ser Ser Leu Gly Thr Gln Thr Tyr Ile Cys Asn Val Asn His Lys Pro Ser Asn Thr Lys Val Asp Lys Lys Ala Glu Pro Lys Ser Cys Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Xaa Xaa Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Xaa Asp Val Ser His Glu Asp Pro Xaa Val Xaa Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Xaa Xaa Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Xaa Ala Leu Pro Xaa Pro Xaa Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 6 <211> 5 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 6 Gly Ser Gly Gly Ser <210> 7 <211> 5 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 7 Gly Gly Gly Gly Ser <210> 8 <211> 4 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 8 Gly Gly Gly Ser <210> 9 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 9 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Ala Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gin Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 10 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 10 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Leu Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gin Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 11 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 11 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Ile Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 12 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 12 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Trp Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 13 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 13 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Leu Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 14 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 14 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Trp Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 15 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 15 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Leu Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 16 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 16 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Leu Leu Leu Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Ile Val Ile Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 17 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 17 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Trp Leu Trp Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gin Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 18 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 18 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Trp Leu Trp Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Ala Val Ala Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 19 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 19 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Leu Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Ile Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 20 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 20 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Leu Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Ile Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 21 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 21 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Leu Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Ile Val Trp Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 22 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 22 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Tyr Leu Tyr Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Thr Val Thr Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 23 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 23 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Glu Leu Arg Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Glu Val Arg Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 24 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 24 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Glu Leu Gln Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Thr Val Glu Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 25 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 25 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Arg Leu Gln Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Thr Val Arg Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 26 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 26 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Glu Leu Tyr Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Thr Val Arg Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gin Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 27 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 27 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Met Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 28 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 28 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Glu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 29 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 29 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Phe Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 30 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 30 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gin Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 31 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 31 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Met Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 32 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 32 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe His Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gin Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 33 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 33 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Ala Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 34 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 34 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Val Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 35 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 35 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Phe Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 36 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 36 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe His Ala Lys Val Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 37 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 37 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Gly Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 38 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 38 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Ile Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 39 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 39 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Glu Leu Arg Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Glu Val Arg Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 40 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 40 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Glu Leu Gln Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Thr Val Glu Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 41 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 41 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Arg Leu Gln Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Thr Val Arg Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 42 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 42 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Glu Leu Tyr Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Thr Val Arg Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gin Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 43 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 43 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ala Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 44 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 44 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ala Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 45 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 45 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ala Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Ala Ala Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 46 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 46 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Glu Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 47 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 47 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Gln Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 48 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 48 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Glu Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 49 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 49 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Gly Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 50 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 50 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asn Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 51 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 51 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Glu Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Gly Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 52 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 52 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Glu Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asn Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 53 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 53 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Glu Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Gln Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 54 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 54 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Glu Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 55 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 55 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Gln Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gin Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 56 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 56 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Thr Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 57 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 57 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Asn Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 58 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 58 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Ile Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 59 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 59 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ser Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 60 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 60 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Asn Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 61 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 61 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Gln His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ser Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 62 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 62 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Leu His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ser Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 63 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 63 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Leu Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 64 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 64 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Phe Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 65 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 65 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Leu Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 66 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 66 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Tyr Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gin Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 67 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 67 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Asp Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 68 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 68 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Ser Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 69 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 69 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asp Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gin Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 70 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 70 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Ser Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 71 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 71 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asp Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gin Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 72 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 72 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Glu Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 73 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 73 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Tyr Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asp Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 74 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 74 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Tyr Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asp Ser Leu Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gin Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 75 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 75 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Phe Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Glu Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 76 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 76 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Ile Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 77 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 77 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Gln Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gin Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 78 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 78 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Asn Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 79 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 79 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Gln Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 80 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 80 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Thr Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 81 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 81 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Phe Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 82 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 82 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Ile Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 83 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 83 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Ile Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 84 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 84 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Ile Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 85 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 85 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Ala Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 86 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 86 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Ser Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gin Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 87 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 87 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Val Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 88 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 88 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Gln Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gin Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 89 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 89 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Leu Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gin Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 90 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 90 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Ile Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 91 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 91 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Asp Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 92 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 92 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Asn Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 93 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 93 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Phe Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 94 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 94 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Asp Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Asp Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 95 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 95 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Asp Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 96 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 96 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Asp Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Asn Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 97 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 97 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Asp Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Gln Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gin Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 98 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 98 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Glu Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Asp Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 99 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 99 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Glu Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Asn Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 100 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 100 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Glu Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Gln Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 101 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 101 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Asn Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Asp Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 102 <211> 227 <212> PRT
<213> Artificial <220>
<223> synthetic <400> 102 Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Asn Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gln Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gln Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Glu Glu Lys Thr Ile Ser Lys Ala Lys Gly Gln Pro Arg Glu Pro Gln Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gln Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gln Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gln Gln Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gln Lys Ser Leu Ser Leu Ser Pro Gly Lys DEMANDES OU BREVETS VOLUMINEUX
LA PRESENTE PARTIE DE CETTE DEMANDE OU CE BREVETS
COMPREND PLUS D'UN TOME.

NOTE: Pour les tomes additionels, veillez contacter le Bureau Canadien des Brevets.

JUMBO APPLICATIONS / PATENTS

THIS SECTION OF THE APPLICATION / PATENT CONTAINS MORE
THAN ONE VOLUME.

NOTE: For additional volumes please contact the Canadian Patent Office.

Claims (13)

CLAIMS:
1. A polypeptide comprising an Fc variant of a parent Fc polypeptide, said parent Fc polypeptide comprising an Fc region, wherein said Fc variant comprises an amino acid modification in the Fc region of said parent Fc polypeptide at position 332, wherein said Fc variant exhibits an increase in affinity for an Fc gamma receptor (Fc.gamma.R) as compared to the parent Fc polypeptide, wherein numbering is according to the EU index.
2. The polypeptide according to claim 1, wherein said the amino acid modification at position 332 is to 332A, 332D, 332E, 332H, 332N, 332Q, 332T, or 332Y.
3. The polypeptide according to claim 1, wherein said Fc variant binds with greater affinity to human Fc.gamma.RI and Fc.gamma.RIIIa as compared to the parent Fc polypeptide.
4. The polypeptide according to claim 1, wherein said Fc variant further comprises an engineered glycoform.
5. The polypeptide according to claim 4, wherein said engineered glycoform comprises an altered level of fucosylation or bisecting oligosaccharides as compared to the parent Fc polypeptide.
6. The polypeptide according to claim 4, wherein said engineered glycoform improves effector function.
7. The polypeptide according to any one of claims 1 to 6, wherein said parent Fc polypeptide is an antibody comprising said Fc region.
8. The polypeptide according to any one of claims 1 to 6, wherein said Fc polypeptide is an Fc fusion protein comprising said Fc region.
9. The polypeptide according to claim 7, wherein said antibody is a full length antibody.
10. The polypeptide according to claim 7, wherein said antibody is selected from the group consisting of a human antibody, a humanized antibody, and a monoclonal antibody.
11. The polypeptide according to claim 7, wherein said antibody is an antibody fragment.
12. A pharmaceutical composition comprising the polypeptide according to any one of claims 1 to 11 and a pharmaceutically acceptable carrier.
13. Use of the polypeptide of any one of claims 1 to 11 to produce a medicament.
CA2524399A 2003-05-02 2004-03-26 Optimized fc variants and methods for their generation Expired - Lifetime CA2524399C (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CA2766627A CA2766627C (en) 2003-05-02 2004-03-26 Optimized fc variants and methods for their generation

Applications Claiming Priority (7)

Application Number Priority Date Filing Date Title
US46760603P 2003-05-02 2003-05-02
US60/467,606 2003-05-02
US47783903P 2003-06-12 2003-06-12
US60/477,839 2003-06-12
US10/672,280 2003-09-26
US10/672,280 US20040132101A1 (en) 2002-09-27 2003-09-26 Optimized Fc variants and methods for their generation
PCT/US2004/009298 WO2004099249A2 (en) 2003-05-02 2004-03-26 Optimized fc variants and methods for their generation

Related Child Applications (1)

Application Number Title Priority Date Filing Date
CA2766627A Division CA2766627C (en) 2003-05-02 2004-03-26 Optimized fc variants and methods for their generation

Publications (2)

Publication Number Publication Date
CA2524399A1 CA2524399A1 (en) 2004-11-18
CA2524399C true CA2524399C (en) 2013-02-26

Family

ID=33437072

Family Applications (2)

Application Number Title Priority Date Filing Date
CA2916863A Expired - Lifetime CA2916863C (en) 2003-05-02 2004-03-26 Optimized fc variants and methods for their generation
CA2524399A Expired - Lifetime CA2524399C (en) 2003-05-02 2004-03-26 Optimized fc variants and methods for their generation

Family Applications Before (1)

Application Number Title Priority Date Filing Date
CA2916863A Expired - Lifetime CA2916863C (en) 2003-05-02 2004-03-26 Optimized fc variants and methods for their generation

Country Status (15)

Country Link
US (12) US20040132101A1 (en)
EP (4) EP3101030B1 (en)
JP (1) JP4578467B2 (en)
KR (2) KR100890586B1 (en)
CN (3) CN104788565A (en)
AU (2) AU2004236160B2 (en)
BR (2) BRPI0410031A (en)
CA (2) CA2916863C (en)
DK (1) DK2368911T3 (en)
ES (1) ES2638568T3 (en)
HU (1) HUE034268T2 (en)
IL (3) IL171723A (en)
PL (1) PL2368911T4 (en)
SI (1) SI2368911T1 (en)
WO (1) WO2004099249A2 (en)

Families Citing this family (660)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7183387B1 (en) 1999-01-15 2007-02-27 Genentech, Inc. Polypeptide variants with altered effector function
WO2000042072A2 (en) 1999-01-15 2000-07-20 Genentech, Inc. Polypeptide variants with altered effector function
US6737056B1 (en) 1999-01-15 2004-05-18 Genentech, Inc. Polypeptide variants with altered effector function
EP1448588A4 (en) * 2001-10-23 2006-10-25 Psma Dev Company L L C Psma antibodies and protein multimers
US20050215472A1 (en) * 2001-10-23 2005-09-29 Psma Development Company, Llc PSMA formulations and uses thereof
WO2003035835A2 (en) * 2001-10-25 2003-05-01 Genentech, Inc. Glycoprotein compositions
US20100311954A1 (en) * 2002-03-01 2010-12-09 Xencor, Inc. Optimized Proteins that Target Ep-CAM
US20080260731A1 (en) * 2002-03-01 2008-10-23 Bernett Matthew J Optimized antibodies that target cd19
US20040132101A1 (en) 2002-09-27 2004-07-08 Xencor Optimized Fc variants and methods for their generation
US7317091B2 (en) * 2002-03-01 2008-01-08 Xencor, Inc. Optimized Fc variants
US7662925B2 (en) * 2002-03-01 2010-02-16 Xencor, Inc. Optimized Fc variants and methods for their generation
US20090042291A1 (en) * 2002-03-01 2009-02-12 Xencor, Inc. Optimized Fc variants
US8188231B2 (en) * 2002-09-27 2012-05-29 Xencor, Inc. Optimized FC variants
US8946387B2 (en) * 2002-08-14 2015-02-03 Macrogenics, Inc. FcγRIIB specific antibodies and methods of use thereof
US8044180B2 (en) * 2002-08-14 2011-10-25 Macrogenics, Inc. FcγRIIB specific antibodies and methods of use thereof
US8968730B2 (en) 2002-08-14 2015-03-03 Macrogenics Inc. FcγRIIB specific antibodies and methods of use thereof
US8187593B2 (en) * 2002-08-14 2012-05-29 Macrogenics, Inc. FcγRIIB specific antibodies and methods of use thereof
US8193318B2 (en) * 2002-08-14 2012-06-05 Macrogenics, Inc. FcγRIIB specific antibodies and methods of use thereof
US8530627B2 (en) * 2002-08-14 2013-09-10 Macrogenics, Inc. FcγRIIB specific antibodies and methods of use thereof
BRPI0314814C1 (en) * 2002-09-27 2021-07-27 Xencor Inc antibody comprising an fc variant
US20060235208A1 (en) * 2002-09-27 2006-10-19 Xencor, Inc. Fc variants with optimized properties
US20040175359A1 (en) * 2002-11-12 2004-09-09 Desjarlais John Rudolph Novel proteins with antiviral, antineoplastic, and/or immunomodulatory activity
AU2004204942A1 (en) * 2003-01-08 2004-07-29 Xencor, Inc Novel proteins with altered immunogenicity
EP2368578A1 (en) 2003-01-09 2011-09-28 Macrogenics, Inc. Identification and engineering of antibodies with variant Fc regions and methods of using same
US7960512B2 (en) * 2003-01-09 2011-06-14 Macrogenics, Inc. Identification and engineering of antibodies with variant Fc regions and methods of using same
US20090010920A1 (en) 2003-03-03 2009-01-08 Xencor, Inc. Fc Variants Having Decreased Affinity for FcyRIIb
US8388955B2 (en) * 2003-03-03 2013-03-05 Xencor, Inc. Fc variants
US9051373B2 (en) 2003-05-02 2015-06-09 Xencor, Inc. Optimized Fc variants
TWI353991B (en) 2003-05-06 2011-12-11 Syntonix Pharmaceuticals Inc Immunoglobulin chimeric monomer-dimer hybrids
US7709610B2 (en) 2003-05-08 2010-05-04 Facet Biotech Corporation Therapeutic use of anti-CS1 antibodies
CA2897608C (en) * 2003-05-09 2018-07-31 Duke University Cd20-specific antibodies and methods employing same
WO2005000899A2 (en) 2003-06-27 2005-01-06 Biogen Idec Ma Inc. Modified binding molecules comprising connecting peptides
CA2536408A1 (en) 2003-08-22 2005-03-03 Biogen Idec Ma Inc. Improved antibodies having altered effector function and methods for making the same
US8883147B2 (en) 2004-10-21 2014-11-11 Xencor, Inc. Immunoglobulins insertions, deletions, and substitutions
US20150071948A1 (en) * 2003-09-26 2015-03-12 Gregory Alan Lazar Novel immunoglobulin variants
US20060134105A1 (en) * 2004-10-21 2006-06-22 Xencor, Inc. IgG immunoglobulin variants with optimized effector function
US8101720B2 (en) 2004-10-21 2012-01-24 Xencor, Inc. Immunoglobulin insertions, deletions and substitutions
US9714282B2 (en) 2003-09-26 2017-07-25 Xencor, Inc. Optimized Fc variants and methods for their generation
US8399618B2 (en) 2004-10-21 2013-03-19 Xencor, Inc. Immunoglobulin insertions, deletions, and substitutions
GB0324368D0 (en) * 2003-10-17 2003-11-19 Univ Cambridge Tech Polypeptides including modified constant regions
US20070218060A1 (en) 2003-11-04 2007-09-20 Chiron Corporation Use of Antagonist Anti-Cd40 Monoclonal Antibodies for Treatment of Multiple Myeloma
US20070098717A1 (en) 2003-11-04 2007-05-03 Chiron Corporation Methods of therapy for solid tumors expressing the cd40 cell-surface antigen
WO2005044854A2 (en) 2003-11-04 2005-05-19 Chiron Corporation Antagonist anti-cd40 monoclonal antibodies and methods for their use
CA2544368C (en) 2003-11-04 2014-04-01 Chiron Corporation Methods of therapy for b cell-related cancers
AU2004287480B2 (en) 2003-11-04 2011-09-15 Novartis Vaccines And Diagnostics, Inc. Use of antagonist anti-CD40 antibodies for treatment of chronic lymphocytic leukemia
EA036531B1 (en) 2003-11-05 2020-11-19 Роше Гликарт Аг Type ii anti-cd20 humanized antibody (variants), pharmaceutical composition comprising these antibody variants, and use thereof
WO2005047327A2 (en) * 2003-11-12 2005-05-26 Biogen Idec Ma Inc. NEONATAL Fc RECEPTOR (FcRn)-BINDING POLYPEPTIDE VARIANTS, DIMERIC Fc BINDING PROTEINS AND METHODS RELATED THERETO
WO2005063815A2 (en) * 2003-11-12 2005-07-14 Biogen Idec Ma Inc. Fcϝ receptor-binding polypeptide variants and methods related thereto
EP1701979A2 (en) * 2003-12-03 2006-09-20 Xencor, Inc. Optimized antibodies that target the epidermal growth factor receptor
WO2005056759A2 (en) * 2003-12-04 2005-06-23 Xencor, Inc. Methods of generating variant proteins with increased host string content and compositions thereof
WO2005077981A2 (en) * 2003-12-22 2005-08-25 Xencor, Inc. Fc POLYPEPTIDES WITH NOVEL Fc LIGAND BINDING SITES
PT2311873T (en) 2004-01-07 2018-11-20 Novartis Vaccines & Diagnostics Inc M-csf-specific monoclonal antibody and uses thereof
BRPI0506771A (en) * 2004-01-12 2007-05-22 Applied Molecular Evolution antibody and pharmaceutical composition
SI2511297T1 (en) * 2004-02-06 2015-07-31 Morphosys Ag Anti-CD38 human antibodies and uses therefor
AU2005227326B2 (en) * 2004-03-24 2009-12-03 Xencor, Inc. Immunoglobulin variants outside the Fc region
US20170166655A1 (en) * 2004-03-26 2017-06-15 Xencor, Inc. Novel immunoglobulin variants
WO2005110474A2 (en) * 2004-05-10 2005-11-24 Macrogenics, Inc. HUMANIZED FcϜRIIB SPECIFIC ANTIBODIES AND METHODS OF USE THEREOF
RU2427588C2 (en) * 2004-07-09 2011-08-27 Чугаи Сейяку Кабусики Кайся Glypican-3 antibody
WO2006085967A2 (en) * 2004-07-09 2006-08-17 Xencor, Inc. OPTIMIZED ANTI-CD20 MONOCONAL ANTIBODIES HAVING Fc VARIANTS
BRPI0510674A (en) * 2004-07-15 2007-12-26 Xencor Inc optimized fc variants
US20150010550A1 (en) 2004-07-15 2015-01-08 Xencor, Inc. OPTIMIZED Fc VARIANTS
KR20070047327A (en) 2004-07-26 2007-05-04 비오겐 아이덱 엠에이 아이엔씨. Anti-cd154 antibodies
EP2213683B1 (en) 2004-08-04 2013-06-05 Mentrik Biotech, LLC Variant Fc regions
CA2577329A1 (en) * 2004-08-16 2006-03-02 Medimmune, Inc. Eph receptor fc variants with enhanced antibody dependent cell-mediated cytotoxicity activity
EP1800693B1 (en) 2004-08-24 2013-07-17 Chugai Seiyaku Kabushiki Kaisha Adjuvant therapy with the use of anti-glypican 3 antibody
RU2451030C2 (en) * 2004-10-26 2012-05-20 Чугаи Сейяку Кабусики Кайся Anti-glypican 3-antibody having modified sugar chain
US7632497B2 (en) * 2004-11-10 2009-12-15 Macrogenics, Inc. Engineering Fc Antibody regions to confer effector function
US8802820B2 (en) 2004-11-12 2014-08-12 Xencor, Inc. Fc variants with altered binding to FcRn
US8546543B2 (en) 2004-11-12 2013-10-01 Xencor, Inc. Fc variants that extend antibody half-life
US8367805B2 (en) 2004-11-12 2013-02-05 Xencor, Inc. Fc variants with altered binding to FcRn
DK2325207T3 (en) * 2004-11-12 2017-06-06 Xencor Inc Fc variants with altered binding to FcRn
US8329186B2 (en) * 2004-12-20 2012-12-11 Isu Abxis Co., Ltd Treatment of inflammation using BST2 inhibitor
EP1674479A1 (en) * 2004-12-22 2006-06-28 Memorial Sloan-Kettering Cancer Center Modulation of Fc Gamma receptors for optimizing immunotherapy
DE602006005200D1 (en) 2005-01-05 2009-04-02 F Star Biotech Forsch & Entw Synthetic immunoglobulin domains with modified binding properties in regions of the molecule other than the complementarity determining regions
EP1858925A2 (en) * 2005-01-12 2007-11-28 Xencor, Inc. Antibodies and fc fusion proteins with altered immunogenicity
WO2006082515A2 (en) 2005-02-07 2006-08-10 Glycart Biotechnology Ag Antigen binding molecules that bind egfr, vectors encoding same, and uses thereof
US20060182744A1 (en) * 2005-02-15 2006-08-17 Strome Scott E Anti-CD137 antibody as an agent in the treatment of cancer and glycosylation variants thereof
US20060263357A1 (en) 2005-05-05 2006-11-23 Tedder Thomas F Anti-CD19 antibody therapy for autoimmune disease
KR101289537B1 (en) 2005-02-15 2013-07-31 듀크 유니버시티 Anti-cd19 antibodies and uses in oncology
US20080019905A9 (en) * 2005-02-18 2008-01-24 Strome Scott E Method of using an anti-CD137 antibody as an agent for radioimmunotherapy or radioimmunodetection
TW200714289A (en) * 2005-02-28 2007-04-16 Genentech Inc Treatment of bone disorders
EP1871882A1 (en) * 2005-03-25 2008-01-02 GlycArt Biotechnology AG Antigen binding molecules directed to mcsp and having increased fc receptor binding affinity and effector function
WO2006104989A2 (en) * 2005-03-29 2006-10-05 Verenium Corporation Altered antibody fc regions and uses thereof
CA2602663A1 (en) * 2005-03-31 2006-10-05 Xencor, Inc. Fc variants with optimized properties
JP2008537941A (en) * 2005-03-31 2008-10-02 ゼンコー・インコーポレイテッド Fc variants with optimized properties
US11254748B2 (en) 2005-04-15 2022-02-22 Macrogenics, Inc. Covalent diabodies and uses thereof
US9963510B2 (en) * 2005-04-15 2018-05-08 Macrogenics, Inc. Covalent diabodies and uses thereof
US9284375B2 (en) * 2005-04-15 2016-03-15 Macrogenics, Inc. Covalent diabodies and uses thereof
US9296816B2 (en) * 2005-04-15 2016-03-29 Macrogenics, Inc. Covalent diabodies and uses thereof
WO2006114700A2 (en) * 2005-04-26 2006-11-02 Bioren, Inc. Method of producing human igg antibodies with enhanced effector functions
WO2006116260A2 (en) 2005-04-26 2006-11-02 Medimmune, Inc. Modulation of antibody effector function by hinge domain engineering
CN101228189A (en) * 2005-05-09 2008-07-23 格黎卡特生物技术股份公司 Antigen binding molecules having modified FC regions and altered binding to FC receptors
JP5421590B2 (en) 2005-05-18 2014-02-19 ノバルティス アーゲー Methods for diagnosis and treatment of diseases with autoimmune and / or inflammatory components
CN103127523A (en) * 2005-06-20 2013-06-05 Psma开发有限公司 Psma antibody-drug conjugates
US8309690B2 (en) * 2005-07-01 2012-11-13 Medimmune, Llc Integrated approach for generating multidomain protein therapeutics
WO2007008943A2 (en) * 2005-07-08 2007-01-18 Xencor, Inc. Optimized anti-ep-cam antibodies
SG164379A1 (en) 2005-07-21 2010-09-29 Genmab As Potency assays for antibody drug substance binding to an fc receptor
EP1913028B1 (en) * 2005-07-28 2015-03-04 Novartis AG Use of antibody to m-csf
JP5457671B2 (en) * 2005-07-28 2014-04-02 ノバルティス アーゲー M-CSF specific monoclonal antibody and use thereof
DK1919503T3 (en) * 2005-08-10 2014-12-15 Macrogenics Inc Identification and preparation of antibodies with variant fc regions and methods of use thereof
US8008453B2 (en) * 2005-08-12 2011-08-30 Amgen Inc. Modified Fc molecules
BRPI0615397B1 (en) * 2005-08-26 2023-10-03 Roche Glycart Ag ANTI-CD20 ANTIBODY, PHARMACEUTICAL COMPOSITION CONTAINING IT AND USE THEREOF
CA2623197A1 (en) * 2005-09-22 2007-03-29 Prosci Incorporated Glycosylated polypeptides produced in yeast mutants and methods of use thereof
CA2624081C (en) * 2005-09-29 2014-09-16 Medimmune, Inc. Method of identifying membrane ig specific antibodies and use thereof for targeting immunoglobulin-producing precursor cells
CA2624189A1 (en) * 2005-10-03 2007-04-12 Xencor, Inc. Fc variants with optimized fc receptor binding properties
US8088896B2 (en) 2005-10-12 2012-01-03 Morphosys Ag Generation and profiling of fully human gold-derived therapeutic antibodies specific for human CD38
KR20080073293A (en) 2005-10-14 2008-08-08 메디뮨 엘엘씨 Cell display of antibody libraries
US20070087005A1 (en) 2005-10-14 2007-04-19 Lazar Gregory A Anti-glypican-3 antibody
KR20080068089A (en) * 2005-10-21 2008-07-22 지티씨바이오쎄라퓨틱스,인크. Antibodies with enhanced antibody-dependent cellular cytotoxicity activity, methods of their production and use
EP1957099B1 (en) 2005-11-07 2015-03-25 The Rockefeller University Reagents, methods and systems for selecting a cytotoxic antibody or variant thereof
US7981414B2 (en) * 2005-12-20 2011-07-19 Cephalon Australia Pty Ltd Anti-inflammatory dAb
JP5259423B2 (en) * 2006-02-01 2013-08-07 セファロン・オーストラリア・ピーティーワイ・リミテッド Domain antibody construct
AU2007212147A1 (en) * 2006-02-03 2007-08-16 Medimmune, Llc Protein formulations
EP2540741A1 (en) 2006-03-06 2013-01-02 Aeres Biomedical Limited Humanized anti-CD22 antibodies and their use in treatment of oncology, transplantation and autoimmune disease
CA2644903A1 (en) * 2006-03-10 2007-09-20 Macrogenics, Inc. Identification and engineering of antibodies with variant heavy chains and methods of using same
EP4001409A1 (en) 2006-03-31 2022-05-25 Chugai Seiyaku Kabushiki Kaisha Methods for controlling blood pharmacokinetics of antibodies
CN101426817B (en) 2006-04-21 2013-07-10 诺华有限公司 Antagonist anti-cd40 antibody pharmaceutical compositions
ES2489646T3 (en) 2006-05-26 2014-09-02 Macrogenics, Inc. Humanized antibodies specific to Fc gamma RIIB and its methods of use
EP2023955A4 (en) * 2006-06-06 2009-10-28 Tolerrx Inc Administration of anti-cd3 antibodies in the treatment of autoimmune diseases
EP2032159B1 (en) * 2006-06-26 2015-01-07 MacroGenics, Inc. Combination of fcgammariib antibodies and cd20-specific antibodies and methods of use thereof
EP2505209A1 (en) 2006-06-26 2012-10-03 MacroGenics, Inc. Fcgamma-RIIB-specific antibodies and methods of the use thereof
AT503889B1 (en) 2006-07-05 2011-12-15 Star Biotechnologische Forschungs Und Entwicklungsges M B H F MULTIVALENT IMMUNE LOBULINE
JP5622390B2 (en) 2006-07-18 2014-11-12 サノフイ Anti-EPHA2 antagonist antibody for cancer treatment
GB0615266D0 (en) * 2006-08-01 2006-09-06 Immunobiology Ltd Composition and method for mediating an immune response
CN101626783A (en) * 2006-08-04 2010-01-13 诺华有限公司 EPHB3-specific antibody and its application
AR062223A1 (en) 2006-08-09 2008-10-22 Glycart Biotechnology Ag MOLECULES OF ADHESION TO THE ANTIGEN THAT ADHER TO EGFR, VECTORS THAT CODE THEM, AND THEIR USES OF THESE
ES2457072T3 (en) 2006-08-14 2014-04-24 Xencor, Inc. Optimized antibodies that select as target CD19
EP3415532A1 (en) 2006-08-18 2018-12-19 XOMA Technology Ltd. Prlr-specific antibody and uses thereof
WO2008030564A2 (en) * 2006-09-08 2008-03-13 Verenium Corporation Aglycosylated antibodies and methods of making and using those antibodies
DK2066349T3 (en) 2006-09-08 2012-07-09 Medimmune Llc HUMANIZED ANTI-CD19 ANTIBODIES AND USE THEREOF IN TREATMENT OF TUMORS, TRANSPLANTATION AND AUTOIMMUNE DISEASES
EP2083017A4 (en) 2006-09-14 2011-01-12 Med & Biological Lab Co Ltd Antibody having enhanced adcc activity and method for production thereof
US20080112961A1 (en) * 2006-10-09 2008-05-15 Macrogenics, Inc. Identification and Engineering of Antibodies with Variant Fc Regions and Methods of Using Same
EP1914242A1 (en) 2006-10-19 2008-04-23 Sanofi-Aventis Novel anti-CD38 antibodies for the treatment of cancer
PE20081250A1 (en) * 2006-11-28 2008-10-07 Centelion Fc FUSIONS WITH RECEIVER FOR MODIFIED SOLUBLE FGF, WITH IMPROVED BIOLOGICAL ACTIVITY
CA2671264C (en) 2006-11-30 2015-11-24 Research Development Foundation Improved immunoglobulin libraries
ES2523915T5 (en) 2006-12-01 2022-05-26 Seagen Inc Variant Target Binding Agents and Uses Thereof
WO2008070780A1 (en) 2006-12-07 2008-06-12 Novartis Ag Antagonist antibodies against ephb3
US8652466B2 (en) * 2006-12-08 2014-02-18 Macrogenics, Inc. Methods for the treatment of disease using immunoglobulins having Fc regions with altered affinities for FcγRactivating and FcγRinhibiting
WO2008090960A1 (en) 2007-01-24 2008-07-31 Kyowa Hakko Kirin Co., Ltd. Genetically recombinant antibody composition capable of binding specifically to ganglioside gm2
WO2008090959A1 (en) 2007-01-24 2008-07-31 Kyowa Hakko Kirin Co., Ltd. Genetically recombinant antibody composition having enhanced effector activity
MX2009010120A (en) 2007-03-22 2009-10-19 Ucb Pharma Sa Binding proteins, including antibodies, antibody derivatives and antibody fragments, that specifically bind cd154 and uses thereof.
US20100015139A1 (en) * 2008-07-10 2010-01-21 Rekha Bansal METHOD OF INHIBITING COMPLEMENT ACTIVATION WITH FACTOR Ba SPECIFIC ANTIBODIES AND USE THEREOF
US8629245B2 (en) 2007-05-01 2014-01-14 Research Development Foundation Immunoglobulin Fc libraries
EP2703011A3 (en) 2007-05-07 2014-03-26 MedImmune, LLC Anti-icos antibodies and their use in treatment of oncology, transplantation and autoimmune disease
ES2441189T3 (en) 2007-05-14 2014-02-03 Novimmune Sa Fc receptor binding polypeptides with modified effector functions
DK2176298T3 (en) * 2007-05-30 2018-02-12 Xencor Inc Methods and compositions for inhibiting CD32B-expressing cells
EP2164869A2 (en) 2007-05-31 2010-03-24 Merck Sharp & Dohme Corp. Antigen-binding proteins targeting s. aureus orf0657n
CN101802006B (en) 2007-06-26 2013-08-14 F-星生物技术研究与开发有限公司 Display of binding agents
US20110077383A1 (en) * 2007-07-03 2011-03-31 Medimmune, Llc Hinge domain engineering
CA2694488A1 (en) 2007-07-31 2009-02-05 Medimmune, Llc Multispecific epitope binding proteins and uses thereof
PE20120259A1 (en) 2007-08-09 2012-04-04 Boehringer Ingelheim Int ANTI-CD37 ANTIBODIES
CN101874042B9 (en) 2007-09-26 2019-01-01 中外制药株式会社 Method for changing isoelectric point of antibody by using amino acid substitution of CDR
JP5620106B2 (en) * 2007-10-24 2014-11-05 株式会社糖鎖工学研究所 Polypeptide having enhanced effector function
CN104109208A (en) 2007-11-14 2014-10-22 中外制药株式会社 Diagnosis And Treatment Of Cancer Using Anti-gpr49 Antibody
US7892760B2 (en) 2007-11-19 2011-02-22 Celera Corporation Lung cancer markers, and uses thereof
LT3002298T (en) 2007-11-21 2019-12-10 Univ Oregon Health & Science Anti-factor xi monoclonal antibodies and methods of use thereof
WO2009117030A2 (en) * 2007-12-19 2009-09-24 Macrogenics, Inc. Improved compositions for the prevention and treatment of smallpox
US8092804B2 (en) 2007-12-21 2012-01-10 Medimmune Limited Binding members for interleukin-4 receptor alpha (IL-4Rα)-173
MX343594B (en) 2007-12-21 2016-11-11 Medimmune Ltd BINDING MEMBERS FOR INTERLEUKIN-4 RECEPTOR ALPHA (IL-4Ra) - 173.
EP4098661A1 (en) 2007-12-26 2022-12-07 Xencor, Inc. Fc variants with altered binding to fcrn
SG187457A1 (en) * 2008-01-11 2013-02-28 Univ Tokyo Anti-cldn6 antibody
BRPI0907046A2 (en) 2008-01-18 2015-07-28 Medimmune Llc Engineered cysteine antibody, isolated nucleic acid, vector, host cell, antibody conjugate, pharmaceutical composition, methods of detecting cancer, autoimmune, inflammatory or infectious disorders in an individual and inhibiting proliferation of a target cell
BRPI0906387A2 (en) * 2008-02-05 2015-07-07 Bristol Myers Squibb Co Alpha 5 - beta 1 antibodies and their uses
AU2009212273B2 (en) * 2008-02-08 2014-07-31 Astrazeneca Ab Anti-IFNAR1 antibodies with reduced Fc ligand affinity
MX2010010387A (en) 2008-04-02 2010-10-15 Macrogenics Inc Bcr-complex-specific antibodies and methods of using same.
DK2247304T3 (en) 2008-04-02 2016-09-26 Macrogenics Inc Her2 / neu-specific antibodies and methods of use thereof
NZ602884A (en) 2008-04-11 2014-08-29 Chugai Pharmaceutical Co Ltd Antigen-binding molecule capable of binding to two or more antigen molecules repeatedly
WO2009129538A2 (en) * 2008-04-18 2009-10-22 Xencor, Inc. Human equivalent monoclonal antibodies engineered from nonhuman variable regions
WO2009134389A2 (en) * 2008-05-01 2009-11-05 Gtc Biotherapeutics, Inc. An anti-cd137 antibody as an agent in the treatment of inflammatory conditions
EP2113255A1 (en) 2008-05-02 2009-11-04 f-star Biotechnologische Forschungs- und Entwicklungsges.m.b.H. Cytotoxic immunoglobulin
US20110081347A1 (en) * 2008-06-04 2011-04-07 Macrogenics, Inc. Antibodies with Altered Binding to FcRn and Methods of Using Same
EP2310412B1 (en) 2008-06-20 2018-02-21 Novartis AG Immunoglobulins with reduced aggregation
EP2796469B1 (en) 2008-09-17 2019-05-08 Xencor, Inc. Novel compositions and methods for treating ige-mediated disorders
WO2010032060A1 (en) 2008-09-19 2010-03-25 Medimmune Llc Antibodies directed to dll4 and uses thereof
US8298533B2 (en) 2008-11-07 2012-10-30 Medimmune Limited Antibodies to IL-1R1
US20110293605A1 (en) 2008-11-12 2011-12-01 Hasige Sathish Antibody formulation
US8950583B2 (en) 2008-12-06 2015-02-10 Ermes Medical Company Limited Method to remove heavy metals from a mammal
JP2012513194A (en) 2008-12-23 2012-06-14 アストラゼネカ アクチボラグ Targeted binding agents directed to α5β1 and uses thereof
WO2010078526A1 (en) 2008-12-31 2010-07-08 Biogen Idec Ma Inc. Anti-lymphotoxin antibodies
US9238878B2 (en) 2009-02-17 2016-01-19 Redwood Bioscience, Inc. Aldehyde-tagged protein-based drug carriers and methods of use
BRPI1009460A2 (en) 2009-03-16 2016-03-01 Cephalon Australia Pty Ltd antibody binding domain, antibody, use of a binding domain or antibody, method for detecting the presence of cancer cells in a sample.
WO2010112413A1 (en) 2009-03-31 2010-10-07 Roche Glycart Ag Treatment of cancer with a humanized anti-egfr igg1 antibody and irinotecan
EP3320920A1 (en) 2009-05-08 2018-05-16 Vaccinex, Inc. Anti-cd100 antibodies and methods for using the same
WO2010138725A1 (en) * 2009-05-28 2010-12-02 Amgen Inc. Treatment of pancreatic cancer using a dr5 agonist in combination with gemcitabine
JP5918129B2 (en) 2009-06-22 2016-05-18 メディミューン,エルエルシー Engineered Fc region for site-specific conjugation
CN102549016B (en) * 2009-06-30 2015-05-06 研究发展基金会 Immunoglobulin FC polypeptides
EP2456787A4 (en) 2009-07-24 2013-01-30 Univ Leland Stanford Junior Cytokine compositions and methods of use thereof
CA2772051C (en) 2009-08-24 2020-08-18 Amunix Operating Inc. Coagulation factor ix compositions and methods of making and using same
RU2570554C2 (en) 2009-08-31 2015-12-10 Роше Гликарт Аг Affinity-matured humanised anti-cea monoclonal antibodies
WO2011028952A1 (en) 2009-09-02 2011-03-10 Xencor, Inc. Compositions and methods for simultaneous bivalent and monovalent co-engagement of antigens
EP2480888B1 (en) 2009-09-25 2016-11-30 XOMA Technology Ltd. Screening methods
US8926976B2 (en) 2009-09-25 2015-01-06 Xoma Technology Ltd. Modulators
US8575218B2 (en) * 2009-09-28 2013-11-05 The University Of Kentucky Research Foundation Thiol-containing compounds for the removal of elements from tissues and formulations therefor
US20110076246A1 (en) * 2009-09-28 2011-03-31 Haley Boyd E Thiol-containing compounds for the removal of elements from contaminated milieu and methods of use
AR078470A1 (en) 2009-10-02 2011-11-09 Sanofi Aventis ANTIBODIES THAT SPECIFICALLY JOIN THE EPHA2 RECEIVER
EP2486141B1 (en) 2009-10-07 2018-01-10 MacroGenics, Inc. Fc region-containing polypeptides that exhibit improved effector function due to alterations of the extent of fucosylation, and methods for their use
KR20120093932A (en) 2009-10-10 2012-08-23 일레븐 바이오테라피틱스, 아이엔씨. Il-17 family cytokine compositions and uses
JP2013013327A (en) * 2009-10-29 2013-01-24 Actgen Inc Antibody binding to mansc1 protein and having anticancer activity
WO2011053982A2 (en) 2009-11-02 2011-05-05 University Of Washington Therapeutic nuclease compositions and methods
EP2496257A4 (en) 2009-11-05 2013-02-27 Cephalon Australia Pty Ltd Treatment of cancer involving mutated kras or braf genes
NZ628923A (en) 2009-11-24 2016-02-26 Medimmune Ltd Targeted binding agents against b7-h1
EP3336102A3 (en) * 2009-12-21 2018-08-01 Regeneron Pharmaceuticals, Inc. Humanized fc gamma r mice
HUE028629T2 (en) 2009-12-23 2016-12-28 Synimmune Gmbh Anti-flt3 antibodies and methods of using the same
US8362210B2 (en) 2010-01-19 2013-01-29 Xencor, Inc. Antibody variants with enhanced complement activity
US20110189178A1 (en) * 2010-02-04 2011-08-04 Xencor, Inc. Immunoprotection of Therapeutic Moieties Using Enhanced Fc Regions
RU2573994C2 (en) 2010-02-10 2016-01-27 Иммьюноджен, Инк Anti-cd20 antibodies and thereof application
WO2011108502A1 (en) 2010-03-02 2011-09-09 協和発酵キリン株式会社 Modified antibody composition
NZ705128A (en) 2010-03-04 2015-04-24 Macrogenics Inc Antibodies reactive with b7-h3, immunologically active fragments thereof and uses thereof
US8802091B2 (en) 2010-03-04 2014-08-12 Macrogenics, Inc. Antibodies reactive with B7-H3 and uses thereof
US8426368B2 (en) * 2010-03-25 2013-04-23 The University Of Kentucky Research Foundation Method of ameliorating oxidative stress and supplementing the diet
US20110237776A1 (en) * 2010-03-25 2011-09-29 Haley Boyd E Aromatic compounds with sulfur containing ligands
US20150231215A1 (en) 2012-06-22 2015-08-20 Randolph J. Noelle VISTA Antagonist and Methods of Use
CA2794745A1 (en) 2010-03-29 2011-10-06 Zymeworks, Inc. Antibodies with enhanced or suppressed effector function
US20110245469A1 (en) * 2010-04-02 2011-10-06 Athena Discovery, Inc. Intermediates formed in biosynthesis of relaxin-fusion proteins with extended in vivo half-lives
JP2013528599A (en) * 2010-05-14 2013-07-11 アムジェン インコーポレイテッド Enhanced death receptor agonist
JP5956982B2 (en) * 2010-05-27 2016-07-27 メルク・シャープ・エンド・ドーム・コーポレイション Method for producing antibodies having improved properties
AU2011274423B2 (en) 2010-07-09 2016-02-11 Bioverativ Therapeutics Inc. Chimeric clotting factors
EP2601216B1 (en) 2010-08-02 2018-01-03 MacroGenics, Inc. Covalent diabodies and uses thereof
AU2011288487B2 (en) 2010-08-13 2015-10-01 Roche Glycart Ag Anti-FAP antibodies and methods of use
MX2013001336A (en) 2010-08-13 2013-03-08 Roche Glycart Ag Anti-tenascin-c a2 antibodies and methods of use.
WO2012022734A2 (en) 2010-08-16 2012-02-23 Medimmune Limited Anti-icam-1 antibodies and methods of use
CA2810217C (en) 2010-09-02 2019-03-12 Vaccinex, Inc. Anti-cxcl13 antibodies and methods of using the same
TW201302793A (en) 2010-09-03 2013-01-16 Glaxo Group Ltd Novel antigen binding proteins
CN103328511B (en) 2010-09-10 2016-01-20 埃派斯进有限公司 Anti-IL-1 β antibody and using method thereof
UA112062C2 (en) 2010-10-04 2016-07-25 Бьорінгер Інгельхайм Інтернаціональ Гмбх CD33-Binding Agent
WO2012075111A1 (en) 2010-11-30 2012-06-07 Novartis Ag Uses of anti-cd40 antibodies in combination therapy for b cell-related cancers
KR102385507B1 (en) 2010-11-30 2022-04-12 추가이 세이야쿠 가부시키가이샤 Antigen-binding molecule capable of binding to plurality of antigen molecules repeatedly
CN103415621A (en) 2011-01-14 2013-11-27 雷德伍德生物科技股份有限公司 Aldehyde-tagged immunoglobulin polypeptides and method of use thereof
CA2826467C (en) 2011-02-07 2019-11-12 Research Development Foundation Engineered immunoglobulin fc polypeptides
EP2672999A2 (en) 2011-02-10 2013-12-18 Roche Glycart AG Improved immunotherapy
WO2012132067A1 (en) 2011-03-30 2012-10-04 中外製薬株式会社 Retention of antigen-binding molecules in blood plasma and method for modifying immunogenicity
US20140093496A1 (en) 2011-02-25 2014-04-03 Chugai Seiyaku Kabushiki Kaisha Fc-gamma-RIIb-SPECIFIC Fc ANTIBODY
PL2681244T3 (en) 2011-03-02 2018-04-30 Roche Glycart Ag Cea antibodies
JP6097702B2 (en) 2011-03-03 2017-03-15 アペクシジェン, インコーポレイテッド Anti-IL-6 receptor antibody and method of use thereof
JP5832559B2 (en) 2011-03-10 2015-12-16 オメロス コーポレーション Generation of anti-FN14 monoclonal antibodies by accelerated antibody evolution ex vivo
US20140112926A1 (en) * 2011-03-16 2014-04-24 Amgen Inc. Fc VARIANTS
MX354359B (en) * 2011-03-29 2018-02-28 Roche Glycart Ag Antibody fc variants.
EP3825325A3 (en) 2011-03-30 2021-10-13 Chugai Seiyaku Kabushiki Kaisha Retention of antigen-binding molecules in blood plasma and method for modifying immunogenicity
KR20240027154A (en) 2011-03-30 2024-02-29 추가이 세이야쿠 가부시키가이샤 Method for altering plasma retention and immunogenicity of antigen-binding molecule
US9321833B2 (en) 2011-04-04 2016-04-26 The Trustees Of Dartmouth College Methods of therapy with anti-CD154 antibodies having impaired FcR binding and/or complement binding properties
WO2012138768A2 (en) * 2011-04-04 2012-10-11 Trustees Of Dartmouth College Anti-cd154 antibodies having impaired fcr binding and/or complement binding properties and the use thereof in immune therapies
US9028826B2 (en) 2011-04-04 2015-05-12 The Trustees Of Dartmouth College Methods of immune therapy with anti-CD154 antibodies having impaired FcR binding and/or complement binding properties
ES2608835T3 (en) 2011-04-13 2017-04-17 Bristol-Myers Squibb Company Fc fusion proteins comprising new linkers or arrangements
US10654916B2 (en) 2011-04-21 2020-05-19 The Regents Of The University Of California, A California Corporation Compositions and methods for the treatment of neuromyelitis optica
BR112013027829B1 (en) 2011-04-29 2022-05-10 Apexigen, Inc Anti-cd40 antibodies or antigen-binding fragments thereof, a composition comprising said antibodies and use of said composition to treat or ameliorate symptoms of cancer, autoimmune disease or inflammatory disease
SI2704737T1 (en) 2011-04-29 2018-06-29 University Of Washington Therapeutic nuclease compositions and methods
AU2012259162C1 (en) 2011-05-21 2020-05-21 Macrogenics, Inc. Deimmunized serum-binding domains and their use for extending serum half-life
CA2837169C (en) 2011-05-24 2021-11-09 Zyngenia, Inc. Multispecific complexes comprising angiopoietin-2-binding peptide and their uses
CA2834589A1 (en) * 2011-05-25 2012-11-29 Merck Sharp & Dohme Corp. Method for preparing fc-containing polypeptides having improved properties
SG10201902706VA (en) 2011-06-03 2019-04-29 Xoma Technology Ltd Antibodies specific for tgf-beta
CA2838833A1 (en) 2011-06-10 2012-12-13 Biogen Idec Ma Inc. Pro-coagulant compounds and methods of use thereof
RU2641256C2 (en) 2011-06-30 2018-01-16 Чугаи Сейяку Кабусики Кайся Heterodimerizated polypeptide
UA117901C2 (en) * 2011-07-06 2018-10-25 Ґенмаб Б.В. Antibody variants and uses thereof
US9738707B2 (en) 2011-07-15 2017-08-22 Biogen Ma Inc. Heterodimeric Fc regions, binding molecules comprising same, and methods relating thereto
JP5944994B2 (en) 2011-08-12 2016-07-05 オメロス コーポレーション Anti-FZD10 monoclonal antibodies and methods for their use
UY34317A (en) 2011-09-12 2013-02-28 Genzyme Corp T cell antireceptor antibody (alpha) / ß
WO2013039954A1 (en) 2011-09-14 2013-03-21 Sanofi Anti-gitr antibodies
TW201817745A (en) 2011-09-30 2018-05-16 日商中外製藥股份有限公司 Therapeutic antigen-binding molecule with a FcRn-binding domain that promotes antigen clearance
WO2013047748A1 (en) 2011-09-30 2013-04-04 中外製薬株式会社 Antigen-binding molecule promoting disappearance of antigens having plurality of biological activities
BR112014007487A2 (en) 2011-09-30 2017-04-04 Dana Farber Cancer Inst Inc therapeutic peptides
US20140335089A1 (en) 2011-09-30 2014-11-13 Chugai Seiyaku Kabushiki Kaisha Antigen-binding molecule for promoting elimination of antigens
CA2850322C (en) 2011-09-30 2023-10-10 Chugai Seiyaku Kabushiki Kaisha Antigen-binding molecule inducing immune response to target antigen
ES2669209T3 (en) 2011-10-11 2018-05-24 Vaccinex, Inc. Use of semaforin-4D binding molecules for the modulation of the blood brain barrier permeability
BR112014009925B1 (en) 2011-10-28 2022-09-20 Teva Pharmaceuticals Australia Pty Ltd POLYPEPTIDE BUILDERS AND THEIR USES
CN104011207B (en) 2011-10-31 2018-09-18 中外制药株式会社 Control the antigen binding molecules of the association of heavy chain and light chain
WO2013067098A1 (en) 2011-11-02 2013-05-10 Apexigen, Inc. Anti-kdr antibodies and methods of use
KR20140100532A (en) 2011-11-30 2014-08-14 추가이 세이야쿠 가부시키가이샤 Drug containing carrier into cell for forming immune complex
US9416179B2 (en) 2011-12-05 2016-08-16 X-Body, Inc. PDGF receptor beta binding polypeptides
EP2793944A4 (en) 2011-12-23 2015-09-02 Nicholas B Lydon Immunoglobulins and variants directed against pathogenic microbes
EP3539982A3 (en) 2011-12-23 2020-01-15 Pfizer Inc Engineered antibody constant regions for site-specific conjugation and methods and uses therefor
US9988439B2 (en) 2011-12-23 2018-06-05 Nicholas B. Lydon Immunoglobulins and variants directed against pathogenic microbes
TWI593705B (en) 2011-12-28 2017-08-01 Chugai Pharmaceutical Co Ltd Humanized anti-epiregulin antibody and cancer therapeutic agent containing the antibody as an active ingredient
KR102041412B1 (en) * 2011-12-30 2019-11-11 한미사이언스 주식회사 Derivatives of Immunglobulin Fc fragment
HUE046396T2 (en) 2012-01-12 2020-02-28 Bioverativ Therapeutics Inc Chimeric factor viii polypeptides and uses thereof
JP6226752B2 (en) * 2012-02-09 2017-11-08 中外製薬株式会社 Modified Fc region of antibody
KR102008190B1 (en) 2012-02-15 2019-08-07 바이오버라티브 테라퓨틱스 인크. Recombinant factor viii proteins
ES2935489T3 (en) 2012-02-15 2023-03-07 Bioverativ Therapeutics Inc Factor VIII compositions and methods of preparation and use thereof
JP6193275B2 (en) 2012-03-02 2017-09-06 ヴァクシネックス, インコーポレイテッド Methods for treating B cell mediated inflammatory diseases
UA117097C2 (en) 2012-03-28 2018-06-25 Санофі Antibodies to bradykinin b1 receptor ligands
JP6280031B2 (en) 2012-03-29 2018-02-14 中外製薬株式会社 Anti-LAMP5 antibody and use thereof
WO2013163297A1 (en) 2012-04-25 2013-10-31 Momenta Pharmaceuticals, Inc. Modified glycoproteins
WO2013166290A1 (en) 2012-05-04 2013-11-07 Abbvie Biotherapeutics Inc. P21 biomarker assay
CA2872856A1 (en) 2012-05-07 2013-11-14 Sanofi Methods for preventing biofilm formation
AU2013260172B2 (en) * 2012-05-11 2017-11-23 Medimmune Limited CTLA-4 variants
WO2013175276A1 (en) 2012-05-23 2013-11-28 Argen-X B.V Il-6 binding molecules
WO2013177386A1 (en) 2012-05-24 2013-11-28 Abbvie Biotherapeutics Inc. Biomarkers for predicting response to tweak receptor (tweakr) agonist therapy
US20150353630A1 (en) 2012-05-30 2015-12-10 Chugai Seiyaku Kabushiki Kaisha Antigen-binding molecule for eliminating aggregated antigens
DK2857420T3 (en) 2012-05-30 2020-11-23 Chugai Pharmaceutical Co Ltd TARGET TISSUE SPECIFIC ANTIGIN BINDING MOLECULE
CN104427995A (en) 2012-06-08 2015-03-18 比奥根艾迪克Ma公司 Chimeric clotting factors
AU2013270682A1 (en) 2012-06-08 2014-12-11 Biogen Ma Inc. Procoagulant compounds
JP6628966B2 (en) 2012-06-14 2020-01-15 中外製薬株式会社 Antigen binding molecule containing an altered Fc region
EP3404105A1 (en) 2012-07-06 2018-11-21 Bioverativ Therapeutics Inc. Cell line expressing single chain factor viii polypeptides and uses thereof
JP6603128B2 (en) 2012-07-11 2019-11-06 バイオベラティブ セラピューティクス インコーポレイテッド Complex of factor VIII with XTEN and von Willebrand factor protein and uses thereof
US20140154253A1 (en) * 2012-07-13 2014-06-05 Zymeworks Inc. Bispecific Asymmetric Heterodimers Comprising Anti-CD3 Constructs
WO2014009465A1 (en) 2012-07-13 2014-01-16 Roche Glycart Ag Bispecific anti-vegf/anti-ang-2 antibodies and their use in the treatment of ocular vascular diseases
BR112015001459B1 (en) 2012-07-25 2023-02-14 Celldex Therapeutics, Inc ISOLATED ANTIBODY OR FRAGMENT THEREOF, CONJUGATE, USES THEREOF, PHARMACEUTICAL COMPOSITION, POLYNUCLEOTIDE, VECTOR, HOST CELL, ISOLATED CELL, KIT, IN VITRO METHOD TO INHIBIT KIT ACTIVITY, METHOD TO PRODUCE AN ANTIBODY
MY175687A (en) 2012-08-07 2020-07-06 Roche Glycart Ag Composition comprising two antibodies engineered to have reduced and increased effector function
RU2729831C2 (en) 2012-08-24 2020-08-12 Чугаи Сейяку Кабусики Кайся Versions of fcγriib-specific fc-region
JP6774164B2 (en) 2012-08-24 2020-10-21 中外製薬株式会社 Mouse FcγRII specific Fc antibody
AU2013312211B2 (en) 2012-09-07 2018-03-29 King's College London VISTA modulators for diagnosis and treatment of cancer
US9790268B2 (en) 2012-09-12 2017-10-17 Genzyme Corporation Fc containing polypeptides with altered glycosylation and reduced effector function
AU2013315499B2 (en) * 2012-09-12 2018-08-09 Genzyme Corporation Fc containing polypeptides with altered glycosylation and reduced effector function
JP6273205B2 (en) 2012-10-05 2018-01-31 協和発酵キリン株式会社 Heterodimeric protein composition
US10028998B2 (en) * 2012-10-30 2018-07-24 Suppremol Gmbh Method for treating an inflammatory disease and/or an autoimmune disease with a soluble FcγRIIb
NZ707086A (en) 2012-10-30 2019-07-26 Apexigen Inc Anti-cd40 antibodies and methods of use
MX2015005874A (en) 2012-11-09 2015-09-10 Pfizer Platelet-derived growth factor b specific antibodies and compositions and uses thereof.
EP3686218A1 (en) 2012-12-10 2020-07-29 Biogen MA Inc. Anti-blood dendritic cell antigen 2 antibodies and uses thereof
TWI693073B (en) 2012-12-21 2020-05-11 日商中外製藥股份有限公司 Therapeutic agent for GPC3 target is the effective therapeutic agent for GPC3 target administered to patients
EP3557260B1 (en) 2012-12-21 2022-05-18 Chugai Seiyaku Kabushiki Kaisha Gpc3-targeting drug which is administered to patient responsive to gpc3-targeting drug therapy
US10766960B2 (en) 2012-12-27 2020-09-08 Chugai Seiyaku Kabushiki Kaisha Heterodimerized polypeptide
TWI682941B (en) 2013-02-01 2020-01-21 美商再生元醫藥公司 Antibodies comprising chimeric constant domains
ES2813501T3 (en) 2013-02-12 2021-03-24 Bristol Myers Squibb Co Protein Refolding Methods Based on Tangential Flow Filtration
US10065987B2 (en) 2013-02-12 2018-09-04 Bristol-Myers Squibb Company High pH protein refolding methods
ES2755181T3 (en) 2013-02-13 2020-04-21 Lab Francais Du Fractionnement Highly galactosylated anti-TNF-alpha antibodies and uses thereof
WO2014140927A2 (en) 2013-02-13 2014-09-18 Laboratoire Francais Du Fractionnement Et Des Biotechnologies Proteins with modified glycosylation and methods of production thereof
ES2747920T3 (en) 2013-02-14 2020-03-12 Innate Pharma Anti-NKP46 antibody for diagnosis of peripheral non-cutaneous T-cell lymphoma (PTCL)
EP4223772A3 (en) 2013-02-15 2023-10-18 Bioverativ Therapeutics Inc. Optimized factor viii gene
CN105026427B (en) 2013-02-20 2019-12-24 依奈特制药公司 Compounds that specifically bind to KIR3DL2 for use in the treatment of peripheral T cell lymphoma
US9184589B2 (en) * 2013-02-27 2015-11-10 Mitsubishi Electric Research Laboratories, Inc. Method for optimizing power flows in electric power networks
US9487587B2 (en) 2013-03-05 2016-11-08 Macrogenics, Inc. Bispecific molecules that are immunoreactive with immune effector cells of a companion animal that express an activating receptor and cells that express B7-H3 and uses thereof
US20160002325A1 (en) 2013-03-08 2016-01-07 Vaccinex, Inc. Anti-cxcl13 antibodies and associated epitope sequences
KR102420934B1 (en) 2013-03-11 2022-07-15 젠자임 코포레이션 Hyperglycosylated binding polypeptides
US10344060B2 (en) 2013-03-12 2019-07-09 Amgen Inc. Potent and selective inhibitors of Nav1.7
AR096927A1 (en) 2013-03-12 2016-02-10 Amgen Inc POWERFUL AND SELECTIVE INHIBITORS OF NaV1.7
AP2015008740A0 (en) 2013-03-14 2015-09-30 Macrogenics Inc Bispecific molecules that are immunoreactive with immune effector cells that express an activating receptor and an antigen expressed by a cell infected by a virus and uses thereof
US9580486B2 (en) 2013-03-14 2017-02-28 Amgen Inc. Interleukin-2 muteins for the expansion of T-regulatory cells
BR112015023752B1 (en) 2013-03-15 2023-11-14 Zyngenia, Inc. MODULAR RECOGNITION DOMAIN (MRD), COMPLEX COMPRISING MRD AND CETUXIMAB, USES OF THE COMPLEX TO INHIBIT ANGIOGENESIS AND TREAT CANCER AND PHARMACEUTICAL COMPOSITION COMPRISING SAID COMPLEX
AU2014228924B2 (en) 2013-03-15 2019-04-18 Amgen Inc. Human PAC1 antibodies
BR112015023084A2 (en) * 2013-03-15 2017-11-21 Abbvie Biotechnology Ltd monoclonal anti-cd25 antibody or anti-cd25 binding fragment of a monoclonal antibody, antibody-drug conjugate, pharmaceutical composition, nucleic acid, vector, prokaryotic and eukaryotic host cell, method for producing an anti-cd25 antibody or binding fragment anti-cd25, and use of a monoclonal anti-cd25 antibody from an antibody-drug conjugate or pharmaceutical composition
SG11201505926VA (en) 2013-03-15 2015-09-29 Biogen Ma Inc Factor ix polypeptide formulations
US20140377253A1 (en) * 2013-03-15 2014-12-25 Abbvie Biotherapeutics Inc. Fc variants
US20140294812A1 (en) * 2013-03-15 2014-10-02 Xencor, Inc. Fc variants that improve fcrn binding and/or increase antibody half-life
US10035859B2 (en) 2013-03-15 2018-07-31 Biogen Ma Inc. Anti-alpha V beta 6 antibodies and uses thereof
WO2014151680A1 (en) 2013-03-15 2014-09-25 Biogen Idec Ma Inc. Treatment and prevention of acute kidney injury using anti-alpha v beta 5 antibodies
AU2014233503A1 (en) * 2013-03-15 2015-09-24 Abbvie Biotechnology Ltd. Anti-CD25 antibodies and their uses
BR112015021576A2 (en) 2013-03-15 2017-10-10 Dana Farber Cancer Inst Inc therapeutic peptides
WO2014143739A2 (en) 2013-03-15 2014-09-18 Biogen Idec Ma Inc. Anti-alpha v beta 6 antibodies and uses thereof
EP3783017A1 (en) 2013-04-02 2021-02-24 Chugai Seiyaku Kabushiki Kaisha Fc region variant
UY35517A (en) * 2013-04-04 2014-10-31 Mabxience S A A PROCEDURE TO INCREASE THE FORMATION OF PYROGLUTAMIC ACID OF A PROTEIN
US11117975B2 (en) 2013-04-29 2021-09-14 Teva Pharmaceuticals Australia Pty Ltd Anti-CD38 antibodies and fusions to attenuated interferon alpha-2B
EA033115B1 (en) 2013-04-29 2019-08-30 Тева Фармасьютикалз Острэйлиа Пти Лтд. Anti-cd38 antibodies and fusion proteins with attenuated interferon alpha-2b
RU2655439C2 (en) 2013-05-31 2018-05-28 Займворкс Инк. Heteromultimers with reduced or silenced effector function
EP3015115A4 (en) 2013-06-24 2017-02-22 Chugai Seiyaku Kabushiki Kaisha Therapeutic agent comprising humanized anti-epiregulin antibody as active ingredient for non-small-cell lung carcinoma excluding adenocarcinoma
BR112015032690B1 (en) 2013-06-25 2020-03-10 Vaccinex, Inc. USE OF SEMAPHORIN-4D INHIBITOR MOLECULES IN COMBINATION WITH AN IMMUNOMODULATIVE THERAPY TO INHIBIT TUMORAL GROWTH AND METASTASIS
LT3708583T (en) * 2013-08-01 2022-04-11 Five Prime Therapeutics, Inc. Afucosylated anti-fgfr2iiib antibodies
EP3875106A1 (en) 2013-08-08 2021-09-08 Bioverativ Therapeutics Inc. Purification of chimeric fviii molecules
UA116479C2 (en) 2013-08-09 2018-03-26 Макродженікс, Інк. Bi-specific monovalent fc diabodies that are capable of binding cd32b and cd79b and uses thereof
US11384149B2 (en) 2013-08-09 2022-07-12 Macrogenics, Inc. Bi-specific monovalent Fc diabodies that are capable of binding CD32B and CD79b and uses thereof
US9845363B2 (en) 2013-08-13 2017-12-19 Sanofi Antibodies to plasminogen activator inhibitor-1 (PAI-1) and uses thereof
TWI592426B (en) 2013-08-13 2017-07-21 賽諾菲公司 Antibodies to plasminogen activator inhibitor-1 (pai-1) and uses thereof
US10548953B2 (en) 2013-08-14 2020-02-04 Bioverativ Therapeutics Inc. Factor VIII-XTEN fusions and uses thereof
EP2839842A1 (en) 2013-08-23 2015-02-25 MacroGenics, Inc. Bi-specific monovalent diabodies that are capable of binding CD123 and CD3 and uses thereof
EP2840091A1 (en) 2013-08-23 2015-02-25 MacroGenics, Inc. Bi-specific diabodies that are capable of binding gpA33 and CD3 and uses thereof
WO2015035044A2 (en) * 2013-09-04 2015-03-12 Abbvie Biotherapeutics Inc. Fc VARIANTS WITH IMPROVED ANTIBODY-DEPENDENT CELL-MEDIATED CYTOTOXICITY
EP3903599A1 (en) 2013-09-25 2021-11-03 Bioverativ Therapeutics Inc. On-column viral inactivation methods
WO2015050959A1 (en) 2013-10-01 2015-04-09 Yale University Anti-kit antibodies and methods of use thereof
BR112016006999B1 (en) 2013-10-02 2023-11-14 Medimmune, Llc ANTI-INFLUENZA NEUTRALIZING ANTIBODIES AND THEIR USES, THEIR PRODUCTION METHOD, COMPOSITION THAT COMPRISES THEM, NUCLEIC ACID AND VECTOR
NZ630881A (en) 2013-10-10 2016-03-31 Vaccinex Inc Use of semaphorin-4d binding molecules for treatment of atherosclerosis
WO2015057939A1 (en) 2013-10-18 2015-04-23 Biogen Idec Ma Inc. Anti-s1p4 antibodies and uses thereof
NZ630892A (en) 2013-10-21 2016-03-31 Vaccinex Inc Use of semaphorin-4d binding molecules for treating neurodegenerative disorders
ES2759252T3 (en) 2013-10-31 2020-05-08 Resolve Therapeutics Llc Nuclease-albumin fusions and therapeutic methods
EP3065769A4 (en) 2013-11-08 2017-05-31 Biogen MA Inc. Procoagulant fusion compound
TWI736515B (en) 2013-11-13 2021-08-21 美商輝瑞大藥廠 Tumor necrosis factor-like ligand 1a specific antibodies and compositions and uses thereof
CN110240655B (en) * 2013-11-19 2023-05-16 荣昌生物制药(烟台)股份有限公司 anti-HER 2 antibodies and conjugates thereof
MX2016007312A (en) 2013-12-04 2017-01-13 Chugai Pharmaceutical Co Ltd Antigen-binding molecules, the antigen-binding activity of which varies according to the concentration of compounds, and libraries of said molecules.
EP3077504B1 (en) 2013-12-06 2019-08-14 Dana-Farber Cancer Institute, Inc. Therapeutic peptides
US8986691B1 (en) 2014-07-15 2015-03-24 Kymab Limited Method of treating atopic dermatitis or asthma using antibody to IL4RA
US8980273B1 (en) 2014-07-15 2015-03-17 Kymab Limited Method of treating atopic dermatitis or asthma using antibody to IL4RA
CN112142843A (en) 2013-12-24 2020-12-29 阿尔金克斯有限公司 FcRn antagonists and methods of use
SG11201605242YA (en) 2014-01-10 2016-07-28 Biogen Ma Inc Factor viii chimeric proteins and uses thereof
WO2015109212A1 (en) 2014-01-17 2015-07-23 Pfizer Inc. Anti-il-2 antibodies and compositions and uses thereof
UY36021A (en) 2014-03-05 2015-09-30 Ucb Biopharma Sprl FC MULTIMÈRIC PROTEINS
MX2016011748A (en) 2014-03-14 2016-12-12 Innate Pharma Humanized antibodies with increased stability.
CN113491766A (en) 2014-03-14 2021-10-12 达纳-法伯癌症研究所公司 Vaccine compositions and methods for restoring function of the NKG2D pathway against cancer
TWI754319B (en) 2014-03-19 2022-02-01 美商再生元醫藥公司 Methods and antibody compositions for tumor treatment
SI3129067T1 (en) 2014-03-19 2023-06-30 Genzyme Corporation Site-specific glycoengineering of targeting moieties
CN106164094B (en) 2014-03-21 2021-05-14 X博迪公司 Bispecific antigen binding polypeptides
TWI726842B (en) 2014-04-07 2021-05-11 日商中外製藥股份有限公司 Immune activation antigen binding molecule
UA119352C2 (en) 2014-05-01 2019-06-10 Тева Фармасьютикалз Острейліа Пті Лтд Combination of lenalidomide or pomalidomide and cd38 antibody-attenuated interferon-alpha constructs, and the use thereof
SG11201609014TA (en) 2014-05-08 2016-12-29 Chugai Pharmaceutical Co Ltd Gpc3 -targeting drug which is administered to patient responsive to gpc3-targeting drug therapy
WO2015175375A1 (en) 2014-05-13 2015-11-19 Short Jay M Conditionally active biological proteins
EP3144388B1 (en) 2014-05-13 2020-07-01 Chugai Seiyaku Kabushiki Kaisha T cell-redirecting antigen-binding molecule for cells having immunosuppression function
PE20170441A1 (en) 2014-06-06 2017-04-26 Bristol Myers Squibb Co ANTIBODIES AGAINST THE GLUCOCORTICOID-INDUCED TUMOR NECROSIS FACTOR RECEPTOR (GITR) AND ITS USES
GB2527286A (en) * 2014-06-11 2015-12-23 Rsr Ltd Glycoprotein hormone receptor mutations
WO2015197598A2 (en) 2014-06-27 2015-12-30 Innate Pharma Multispecific antigen binding proteins
US10519234B2 (en) 2014-06-27 2019-12-31 Innate Pharma NKp46 binding proteins
US11008561B2 (en) 2014-06-30 2021-05-18 Bioverativ Therapeutics Inc. Optimized factor IX gene
US10294292B2 (en) 2014-07-15 2019-05-21 Medimmune, Llc Neutralizing anti-influenza B antibodies and uses thereof
WO2016030488A1 (en) 2014-08-27 2016-03-03 Innate Pharma Treatment of celiac disease
MX2017003247A (en) 2014-09-15 2017-11-30 Amgen Inc Bi-specific anti-cgrp receptor/pac1 receptor antigen binding proteins and uses thereof.
CA2959428A1 (en) 2014-09-19 2016-03-24 Regeneron Pharmaceuticals, Inc. Chimeric antigen receptors
MA40764A (en) 2014-09-26 2017-08-01 Chugai Pharmaceutical Co Ltd THERAPEUTIC AGENT INDUCING CYTOTOXICITY
SG11201701803XA (en) 2014-09-26 2017-04-27 Bayer Pharma AG Stabilized adrenomedullin derivatives and use thereof
BR112017006515A8 (en) 2014-09-29 2018-02-27 Univ Duke bispecific molecules, compositions, method for treating or preventing HIV-1 infection in an individual with this need, and vector
AU2015330869B2 (en) 2014-10-09 2021-07-08 Genzyme Corporation Glycoengineered antibody drug conjugates
ES2753391T3 (en) 2014-10-14 2020-04-08 Halozyme Inc Adenosine deaminase 2 (ADA2) compositions, variants thereof and methods of use thereof
JP6889660B2 (en) 2014-10-23 2021-06-18 イナート・ファルマ・ソシエテ・アノニムInnate Pharma Pharma S.A. Treatment of cancer with anti-NKG2A agents
CN107106656A (en) 2014-10-29 2017-08-29 梯瓦制药澳大利亚股份有限公司 Interferon alpha 2 b variant
AU2015350075B2 (en) 2014-11-17 2021-06-03 Regeneron Pharmaceuticals, Inc. Methods for tumor treatment using CD3xCD20 bispecific antibody
CN113773388A (en) 2014-11-21 2021-12-10 百时美施贵宝公司 anti-CD 73 antibodies and uses thereof
MX2017006323A (en) 2014-11-21 2017-08-21 Bristol Myers Squibb Co Antibodies comprising modified heavy constant regions.
SG11201700841QA (en) 2014-12-19 2017-03-30 Chugai Pharmaceutical Co Ltd Anti-myostatin antibodies, polypeptides containing variant fc regions, and methods of use
KR102644115B1 (en) 2014-12-23 2024-03-05 브리스톨-마이어스 스큅 컴퍼니 Antibodies to tigit
CN114773469A (en) 2015-02-05 2022-07-22 中外制药株式会社 Antibodies comprising an ion concentration-dependent antigen-binding domain, FC region variants, IL-8-binding antibodies and uses thereof
CA2976236A1 (en) * 2015-02-09 2016-08-18 Research Development Foundation Engineered immunoglobulin fc polypeptides displaying improved complement activation
EP3064507A1 (en) 2015-03-06 2016-09-07 Deutsches Krebsforschungszentrum Stiftung des öffentlichen Rechts Fusion proteins comprising a binding protein and an interleukin-15 polypeptide having a reduced affinity for IL15ra and therapeutic uses thereof
MY188761A (en) 2015-03-09 2021-12-29 Argenx Bvba Method of reducing serum levels of fc-containing agents using fcrn antagonists
CA2981312C (en) 2015-03-30 2023-09-26 Regeneron Pharmaceuticals, Inc. Heavy chain constant regions with reduced binding to fc gamma receptors
RS61438B1 (en) 2015-03-31 2021-03-31 Medimmune Ltd A novel il33 form, mutated forms of il33, antibodies, assays and methods of using the same
AR104368A1 (en) 2015-04-03 2017-07-19 Lilly Co Eli ANTI-CD20- / ANTI-BAFF BIESPECTIFIC ANTIBODIES
US10167334B2 (en) 2015-04-03 2019-01-01 Xoma Technology Ltd. Treatment of cancer using anti-TGF-BETA and PD-1 antibodies
UA126270C2 (en) 2015-04-10 2022-09-14 Емджен Інк. Interleukin-2 muteins for the expansion of t-regulatory cells
JOP20200116A1 (en) 2015-04-24 2017-06-16 Amgen Inc Methods for treating or preventing migraine headache
TWI820377B (en) 2015-05-07 2023-11-01 美商艾吉納斯公司 Anti-ox40 antibodies and methods of use thereof
LT3303394T (en) 2015-05-29 2020-10-12 Agenus Inc. Anti-ctla-4 antibodies and methods of use thereof
HUE061253T2 (en) 2015-05-29 2023-06-28 Bristol Myers Squibb Co Antibodies against ox40 and uses thereof
CA2990518A1 (en) 2015-06-23 2016-12-29 Innate Pharma Multispecific nk engager proteins
AU2016284866B2 (en) 2015-06-23 2022-09-29 Innate Pharma Multispecific antigen binding proteins
WO2017002934A1 (en) 2015-07-01 2017-01-05 中外製薬株式会社 Gpc3-targeted therapeutic agent administered to patient in whom gpc3-targetd therapeutic ag
US11066481B2 (en) 2015-07-23 2021-07-20 The Regents Of The University Of California Antibodies to coagulation factor XIa and uses thereof
EA201890423A1 (en) 2015-08-03 2018-07-31 Биовератив Терапьютикс Инк. SLIGHT PROTEINS OF THE FACTOR IX, METHODS OF THEIR RECEPTION AND APPLICATION
US20190022092A1 (en) 2015-09-15 2019-01-24 Acerta Pharma B.V. Therapeutic Combinations of a BTK Inhibitor and a GITR Binding Molecule, a 4-1BB Agonist, or an OX40 Agonist
CA2993423C (en) 2015-09-18 2024-03-12 Chugai Seiyaku Kabushiki Kaisha Il-8-binding antibodies and uses thereof
TWI703158B (en) 2015-09-18 2020-09-01 美商希佛隆公司 Antibodies that specifically bind to tl1a
RU2694903C1 (en) 2015-10-12 2019-07-18 АПРОДЖЕН КейАйСи ИНК. Cd43 antibodies and use thereof for treating cancer
WO2017070561A1 (en) 2015-10-23 2017-04-27 Pfizer Inc. Anti-il-2 antibodies and compositions and uses thereof
US10752686B2 (en) * 2015-10-30 2020-08-25 Zonhon Biopharma Institute Inc. Bispecific antibody binding to human CD26 and human CD3, production method therefor and use thereof
JP6925278B2 (en) 2015-11-18 2021-08-25 中外製薬株式会社 Method of enhancing humoral immune response
JP6931329B2 (en) 2015-11-18 2021-09-01 中外製薬株式会社 Combination therapy using T cell redirection antigen-binding molecule for cells with immunosuppressive function
KR20180082563A (en) 2015-11-19 2018-07-18 브리스톨-마이어스 스큅 컴퍼니 Antibodies to glucocorticoid-induced tumor necrosis factor receptor (GITR) and uses thereof
AU2016368469B2 (en) 2015-12-09 2023-11-02 F. Hoffmann-La Roche Ag Type II anti-CD20 antibody for reducing formation of anti-drug antibodies
EP3178848A1 (en) 2015-12-09 2017-06-14 F. Hoffmann-La Roche AG Type ii anti-cd20 antibody for reducing formation of anti-drug antibodies
EP3390447A1 (en) 2015-12-15 2018-10-24 Amgen Inc. Pacap antibodies and uses thereof
EP3390441B1 (en) 2015-12-15 2021-08-25 Gilead Sciences, Inc. Human immunodeficiency virus neutralizing antibodies
US11359009B2 (en) 2015-12-25 2022-06-14 Chugai Seiyaku Kabushiki Kaisha Anti-myostatin antibodies and methods of use
CA3004288A1 (en) 2015-12-28 2017-07-06 Nobuyuki Tanaka Method for promoting efficiency of purification of fc region-containing polypeptide
EP3192810A1 (en) 2016-01-14 2017-07-19 Deutsches Krebsforschungszentrum Psma binding antibody and uses thereof
BR112018015659A2 (en) 2016-02-01 2018-12-26 Bioverativ Therapeutics Inc optimized factor viii genes
CN108699156A (en) 2016-03-01 2018-10-23 豪夫迈·罗氏有限公司 The outstanding trastuzumab in shore difficult to understand and Rituximab variant of ADCP with reduction
AU2017228470A1 (en) 2016-03-04 2018-08-30 Bristol-Myers Squibb Company Combination therapy with anti-CD73 antibodies
SG11201807523PA (en) 2016-03-10 2018-09-27 Viela Bio Inc Ilt7 binding molecules and methods of using the same
RU2746754C2 (en) 2016-03-14 2021-04-20 Чугаи Сейяку Кабусики Кайся Cell damage inducing therapeutic medicinal product for anticancer therapy
AU2017235274A1 (en) 2016-03-15 2018-08-16 Innate Pharma Anti-mica antibodies
JP6430025B2 (en) 2016-03-15 2018-11-28 中外製薬株式会社 Methods of treating cancer using PD-1 binding antagonists and anti-GPC3 antibodies
JP2019518713A (en) 2016-03-16 2019-07-04 メリマック ファーマシューティカルズ インコーポレーティッド Modified TRAIL for Cancer Therapy
CA3020864A1 (en) 2016-04-15 2017-10-19 Macrogenics, Inc. Novel b7-h3-binding molecules, antibody drug conjugates thereof and methods of use thereof
EP3442579A4 (en) 2016-04-15 2019-12-18 Immunext Inc. Anti-human vista antibodies and use thereof
CN109071634A (en) 2016-04-26 2018-12-21 R.P.谢勒技术有限责任公司 Antibody coupling matter and its preparation and application
EA039084B1 (en) 2016-05-09 2021-12-01 Бристол-Майерс Сквибб Компани Tl1a antibodies and uses thereof
JP7089483B2 (en) 2016-05-11 2022-06-22 エフ・ホフマン-ラ・ロシュ・アクチェンゲゼルシャフト Modified anti-tenascin antibody and usage
US11623958B2 (en) 2016-05-20 2023-04-11 Harpoon Therapeutics, Inc. Single chain variable fragment CD3 binding proteins
MX2018014228A (en) 2016-05-20 2019-08-12 Harpoon Therapeutics Inc Single domain serum albumin binding protein.
EP3252078A1 (en) 2016-06-02 2017-12-06 F. Hoffmann-La Roche AG Type ii anti-cd20 antibody and anti-cd20/cd3 bispecific antibody for treatment of cancer
CN110603266A (en) 2016-06-02 2019-12-20 豪夫迈·罗氏有限公司 Type II anti-CD 20 and anti-CD 20/CD3 bispecific antibodies for the treatment of cancer
DK3462853T3 (en) 2016-06-03 2023-04-03 Regeneron Pharma Rodents expressing exogenous terminal deoxynucleotidyl transferase
MX2018014375A (en) 2016-06-17 2019-04-22 Chugai Pharmaceutical Co Ltd Anti-myostatin antibodies and methods of use.
MA45554A (en) 2016-07-01 2019-05-08 Resolve Therapeutics Llc OPTIMIZED BINUCLEASE FUSIONS.
CN109757103B (en) 2016-07-14 2024-01-02 百时美施贵宝公司 Antibodies against TIM3 and uses thereof
CN117717604A (en) 2016-07-19 2024-03-19 梯瓦制药澳大利亚股份有限公司 anti-CD 47 combination therapy
WO2018022479A1 (en) 2016-07-25 2018-02-01 Biogen Ma Inc. Anti-hspa5 (grp78) antibodies and uses thereof
JP7148493B2 (en) 2016-08-01 2022-10-05 ゾーマ (ユーエス) リミテッド ライアビリティ カンパニー Parathyroid hormone receptor 1 (PTH1R) antibodies and uses thereof
MX2019001458A (en) 2016-08-02 2019-07-04 Visterra Inc Engineered polypeptides and uses thereof.
SG11201801024XA (en) 2016-08-05 2018-05-30 Chugai Pharmaceutical Co Ltd Therapeutic or preventive compositions for il-8-related diseases
WO2018027124A1 (en) 2016-08-05 2018-02-08 Medimmune, Llc Anti-o2 antibodies and uses thereof
TW202233628A (en) 2016-08-16 2022-09-01 英屬開曼群島商百濟神州有限公司 Crystalline form of (s)-7-(1-acryloylpiperidin-4-yl)-2-(4-phenoxyphenyl)-4,5,6,7-tetrahydropyrazolo[1,5-a]pyrimidine-3-carboxamide, preparation, and uses thereof
WO2018044970A1 (en) 2016-08-31 2018-03-08 University Of Rochester Human monoclonal antibodies to human endogenous retrovirus k envelope (herv-k) and uses thereof
WO2018045379A1 (en) 2016-09-02 2018-03-08 Dana-Farber Cancer Institute, Inc. Composition and methods of treating b cell disorders
SG10201607778XA (en) 2016-09-16 2018-04-27 Chugai Pharmaceutical Co Ltd Anti-Dengue Virus Antibodies, Polypeptides Containing Variant Fc Regions, And Methods Of Use
MX2019003543A (en) 2016-09-28 2019-06-17 Xoma Us Llc Antibodies that bind interleukin-2 and uses thereof.
KR20190064636A (en) 2016-10-19 2019-06-10 메디뮨 엘엘씨 Anti-O1 antibodies and uses thereof
WO2018073363A1 (en) 2016-10-21 2018-04-26 Innate Pharma Treatment with anti-kir3dl2 agents
TWI788307B (en) 2016-10-31 2023-01-01 美商艾歐凡斯生物治療公司 Engineered artificial antigen presenting cells for tumor infiltrating lymphocyte expansion
MA46893A (en) 2016-11-23 2019-10-02 Bioverativ Therapeutics Inc BISPECIFIC ANTIBODIES BINDING TO COAGULATION FACTOR IX AND COAGULATION FACTOR X
MA46967A (en) 2016-12-02 2019-10-09 Bioverativ Therapeutics Inc METHODS OF TREATMENT OF HEMOPHILIC ARTHROPATHY USING CHEMERICAL COAGULATION FACTORS
MX2019006446A (en) 2016-12-02 2019-12-11 Bioverativ Therapeutics Inc Methods of inducing immune tolerance to clotting factors.
IL307242A (en) 2016-12-07 2023-11-01 Agenus Inc Anti-ctla-4 antibodies and methods of use thereof
CN110300599A (en) 2016-12-07 2019-10-01 艾吉纳斯公司 Antibody and its application method
AR110414A1 (en) 2016-12-21 2019-03-27 Cephalon Inc ANTIBODIES THAT SPECIFICALLY JOIN HUMAN IL-15 AND USES OF THESE
EP3559032A1 (en) 2016-12-23 2019-10-30 Innate Pharma Heterodimeric antigen binding proteins
US20180230218A1 (en) 2017-01-04 2018-08-16 Immunogen, Inc. Met antibodies and immunoconjugates and uses thereof
MX2019007963A (en) 2017-01-06 2019-10-21 Iovance Biotherapeutics Inc Expansion of tumor infiltrating lymphocytes (tils) with tumor necrosis factor receptor superfamily (tnfrsf) agonists and therapeutic combinations of tils and tnfrsf agonists.
JP2020503351A (en) 2017-01-06 2020-01-30 アイオバンス バイオセラピューティクス,インコーポレイテッド Proliferation of tumor infiltrating lymphocytes by potassium channel agonist and its therapeutic use
CA3051839A1 (en) 2017-02-17 2018-08-23 Bristol-Myers Squibb Company Antibodies to alpha-synuclein and uses thereof
EP3589320A4 (en) 2017-02-28 2020-12-23 Seagen Inc. Cysteine mutated antibodies for conjugation
EP3589662A4 (en) 2017-02-28 2020-12-30 Harpoon Therapeutics, Inc. Inducible monovalent antigen binding protein
KR102627372B1 (en) 2017-03-20 2024-01-19 백시넥스 인코포레이티드 Treatment of cancer using semaphorin-4D antibody in combination with epigenetic modulators
CN113201071A (en) * 2017-03-28 2021-08-03 礼进生物医药科技(上海)有限公司 Therapeutic agents and methods for enhancing immune response in tumor microenvironment
CN106831996B (en) * 2017-03-31 2020-05-19 北京智仁美博生物科技有限公司 Bispecific antibodies with CD3E and/or HER2 targeting function and uses thereof
BR112019023138A2 (en) 2017-05-05 2020-07-28 Vaccinex, Inc. 4d human anti-semaphorin antibody
WO2018209115A1 (en) 2017-05-10 2018-11-15 Iovance Biotherapeutics, Inc. Expansion of tumor infiltrating lymphocytes from liquid tumors and therapeutic uses thereof
WO2019103857A1 (en) 2017-11-22 2019-05-31 Iovance Biotherapeutics, Inc. Expansion of peripheral blood lymphocytes (pbls) from peripheral blood
CN110891974B (en) 2017-05-12 2021-08-06 哈普恩治疗公司 Mesothelin binding proteins
US11168129B2 (en) 2017-05-15 2021-11-09 University Of Rochester Broadly neutralizing anti-influenza human monoclonal antibody and uses thereof
EP3630831B1 (en) 2017-05-25 2022-06-15 Bristol-Myers Squibb Company Antagonistic cd40 monoclonal antibodies and uses thereof
KR20200012907A (en) * 2017-05-25 2020-02-05 브리스톨-마이어스 스큅 컴퍼니 Modified IgG1 Fc Domain and its Anti-CD40 Domain Antibody Fusions
CN116333129A (en) 2017-05-25 2023-06-27 百时美施贵宝公司 Antibodies comprising modified heavy chain constant regions
WO2018237148A1 (en) 2017-06-21 2018-12-27 Gilead Sciences, Inc. Multispecific antibodies that target hiv gp120 and cd3
EP3652206A1 (en) 2017-07-10 2020-05-20 International-Drug-Development-Biotech Treatment of b cell malignancies using afucosylated pro-apoptotic anti-cd19 antibodies in combination with anti cd20 antibodies or chemotherapeutics
JP7374883B2 (en) 2017-08-09 2023-11-07 バイオベラティブ セラピューティクス インコーポレイテッド Nucleic acid molecules and their uses
EP3668536A4 (en) * 2017-08-15 2021-05-26 Kindred Biosciences, Inc. Igg fc variants for veterinary use
MX2020002070A (en) 2017-08-22 2020-03-24 Sanabio Llc Soluble interferon receptors and uses thereof.
WO2019059411A1 (en) 2017-09-20 2019-03-28 Chugai Seiyaku Kabushiki Kaisha Dosage regimen for combination therapy using pd-1 axis binding antagonists and gpc3 targeting agent
WO2019075090A1 (en) 2017-10-10 2019-04-18 Tilos Therapeutics, Inc. Anti-lap antibodies and uses thereof
AR113696A1 (en) 2017-11-17 2020-06-03 Merck Sharp & Dohme SPECIFIC ANTIBODIES FOR IMMUNOGLOBULIN TYPE 3 (ILT3) SIMILAR TRANSCRIPT AND ITS USES
CA3079363A1 (en) 2017-11-21 2019-05-31 Innate Pharma Multispecific antigen binding proteins
EP3720877A1 (en) 2017-12-08 2020-10-14 Argenx BVBA Use of fcrn antagonists for treatment of generalized myasthenia gravis
WO2019118873A2 (en) 2017-12-15 2019-06-20 Iovance Biotherapeutics, Inc. Systems and methods for determining the beneficial administration of tumor infiltrating lymphocytes, and methods of use thereof and beneficial administration of tumor infiltrating lymphocytes, and methods of use thereof
JP7317016B2 (en) 2017-12-19 2023-07-28 スロゼン オペレーティング, インコーポレイテッド Anti-LRP5/6 Antibodies and Methods of Use
AU2018393073A1 (en) 2017-12-19 2020-07-02 Surrozen Operating, Inc. Wnt surrogate molecules and uses thereof
WO2019126536A1 (en) 2017-12-20 2019-06-27 Alexion Pharmaceuticals Inc. Humanized anti-cd200 antibodies and uses thereof
WO2019126133A1 (en) 2017-12-20 2019-06-27 Alexion Pharmaceuticals, Inc. Liquid formulations of anti-cd200 antibodies
CN108218998A (en) * 2017-12-31 2018-06-29 武汉班科生物技术股份有限公司 A kind of Fc segments of saltant type humanized IgG and preparation method and application
JP7339262B2 (en) 2018-01-12 2023-09-05 アムジェン インコーポレイテッド PAC1 antibody and uses thereof
US20220089720A1 (en) 2018-01-12 2022-03-24 Bristol-Myers Squibb Company Antibodies against tim3 and uses thereof
US11078283B2 (en) 2018-01-17 2021-08-03 Apexigen, Inc. Anti-PD-L1 antibodies and methods of use
CN111918674A (en) 2018-02-01 2020-11-10 比奥维拉迪维治疗股份有限公司 Use of lentiviral vectors expressing factor VIII
JP2021512962A (en) 2018-02-13 2021-05-20 アイオバンス バイオセラピューティクス,インコーポレイテッド Expansion culture of tumor-infiltrating lymphocytes (TIL) with adenosine A2A receptor antagonist and therapeutic combination of TIL and adenosine A2A receptor antagonist
CN112119090B (en) 2018-03-15 2023-01-13 中外制药株式会社 Anti-dengue virus antibodies cross-reactive to Zika virus and methods of use
SG11202008593PA (en) 2018-03-21 2020-10-29 Five Prime Therapeutics Inc ANTIBODIES BINDING TO VISTA AT ACIDIC pH
AU2019236865A1 (en) 2018-03-23 2020-10-01 Bristol-Myers Squibb Company Antibodies against MICA and/or MICB and uses thereof
EP3772926A1 (en) 2018-03-26 2021-02-17 Regeneron Pharmaceuticals, Inc. Humanized rodents for testing therapeutic agents
EA202092316A1 (en) 2018-03-28 2021-05-25 Бристол-Маерс Сквибб Компани FUSION PROTEINS OF INTERLEUKIN-2 / ALPHA-RECEPTOR OF INTERLEUKIN-2 AND METHODS OF APPLICATION
SG11202009625WA (en) 2018-04-02 2020-10-29 Bristol Myers Squibb Co Anti-trem-1 antibodies and uses thereof
KR20200139720A (en) 2018-04-02 2020-12-14 암젠 인크 Erenumab composition and use thereof
US20210070871A1 (en) 2018-04-25 2021-03-11 Prometheus Biosciences, Inc. Optimized anti-tl1a antibodies
US11958895B2 (en) 2018-05-03 2024-04-16 University Of Rochester Anti-influenza neuraminidase monoclonal antibodies and uses thereof
BR112020022164A2 (en) 2018-05-18 2021-02-02 Bioverativ Therapeutics Inc. methods of treating hemophilia a
WO2019234576A1 (en) 2018-06-03 2019-12-12 Lamkap Bio Beta Ltd. Bispecific antibodies against ceacam5 and cd47
KR20210027352A (en) 2018-06-04 2021-03-10 바이오젠 엠에이 인코포레이티드 Anti-VLA-4 antibody with reduced effector function
AU2019282264A1 (en) * 2018-06-05 2020-11-26 Amgen Inc. Modulating antibody dependent cellular phagocytosis
CN112584859A (en) 2018-07-02 2021-03-30 美国安进公司 anti-STEAP 1 antigen binding proteins
BR112020026512A2 (en) 2018-07-03 2021-04-06 Bristol-Myers Squibb Company FGF-21 FORMULATIONS
CR20200653A (en) 2018-07-03 2021-02-11 Gilead Sciences Inc Antibodies that target hiv gp120 and methods of use
EP3825333A4 (en) * 2018-07-06 2022-04-06 Abmax Biopharmaceuticals Low functional adcc/cdc monoclonal antibody, preparation method therefor and use thereof
BR112020027095A2 (en) 2018-07-09 2021-03-30 Five Prime Therapeutics, Inc. ILT4 BINDING ANTIBODIES
WO2020014306A1 (en) 2018-07-10 2020-01-16 Immunogen, Inc. Met antibodies and immunoconjugates and uses thereof
KR20210031722A (en) 2018-07-11 2021-03-22 파이브 프라임 테라퓨틱스, 인크. Antibodies that bind to VISTA at acidic pH
CN112703000A (en) 2018-07-23 2021-04-23 特雷维治疗股份有限公司 Treatment of chronic cough, shortness of breath and dyspnea
JP2021533753A (en) 2018-08-09 2021-12-09 バイオベラティブ セラピューティクス インコーポレイテッド Nucleic acid molecules and their use for non-viral gene therapy
TW202031273A (en) 2018-08-31 2020-09-01 美商艾歐凡斯生物治療公司 Treatment of nsclc patients refractory for anti-pd-1 antibody
CN112771077A (en) 2018-08-31 2021-05-07 瑞泽恩制药公司 Dosing strategy for reducing cytokine release syndrome for CD3/C20 bispecific antibodies
KR20210082444A (en) 2018-09-11 2021-07-05 도이체스크레브스포르슝스젠트룸스티프퉁데스외펜트리헨레크츠 Improved anti-FLT3 antigen binding protein
EP3623383A1 (en) 2018-09-11 2020-03-18 Deutsches Krebsforschungszentrum, Stiftung des öffentlichen Rechts Improved bispecific flt3xcd3 antigen binding proteins
CN109321549B (en) * 2018-09-18 2021-09-17 天津科技大学 Directional modification enzyme of heparinase I with improved specific enzyme activity, molecular modification method and expression engineering bacteria
IL281683B2 (en) 2018-09-25 2023-04-01 Harpoon Therapeutics Inc Dll3 binding proteins and methods of use
WO2020076969A2 (en) 2018-10-10 2020-04-16 Tilos Therapeutics, Inc. Anti-lap antibody variants and uses thereof
TW202039831A (en) 2018-11-05 2020-11-01 美商艾歐凡斯生物治療公司 Treatment of nsclc patients refractory for anti-pd-1 antibody
AR117091A1 (en) 2018-11-19 2021-07-07 Bristol Myers Squibb Co MONOCLONAL ANTIBODIES ANTAGONISTS AGAINST CD40 AND THEIR USES
WO2020112781A1 (en) 2018-11-28 2020-06-04 Bristol-Myers Squibb Company Antibodies comprising modified heavy constant regions
CN112969714B (en) 2018-11-30 2022-11-22 江苏恒瑞医药股份有限公司 anti-CD 40 antibodies, antigen binding fragments thereof and medical uses thereof
CA3121699A1 (en) 2018-12-05 2020-06-11 Morphosys Ag Multispecific antigen-binding molecules
WO2020118011A1 (en) 2018-12-06 2020-06-11 Alexion Pharmaceuticals, Inc. Anti-alk2 antibodies and uses thereof
EP3902564A4 (en) * 2018-12-27 2022-09-28 Kindred Biosciences, Inc. Igg fc variants for veterinary use
CN113597319A (en) 2019-01-04 2021-11-02 分解治疗有限责任公司 Treatment of xerosis with nuclease fusion proteins
WO2020154293A1 (en) 2019-01-22 2020-07-30 Bristol-Myers Squibb Company Antibodies against il-7r alpha subunit and uses thereof
BR112021014236A2 (en) 2019-01-22 2021-09-28 Innate Pharma ANTIBODY, PHARMACEUTICAL COMPOSITION, KIT AND METHOD TO PREDICT OR EVALUATE EFFECTIVENESS
CN110205296B (en) * 2019-01-29 2021-08-24 上海鑫湾生物科技有限公司 Combination of antibody with Fc mutant and effector cell, application and preparation method
KR20210134321A (en) 2019-02-01 2021-11-09 노바록 바이오테라퓨틱스 리미티드 Anti-claudin 18 antibodies and methods of use thereof
BR112021016875A2 (en) 2019-03-01 2022-01-04 Iovance Biotherapeutics Inc Process for expansion of peripheral blood lymphocytes
CN113613676A (en) 2019-03-19 2021-11-05 中外制药株式会社 Antigen binding molecule comprising antigen binding domain whose binding activity to antigen is changed by MTA and library for obtaining the same
MA55529A (en) 2019-04-03 2022-02-09 Genzyme Corp REDUCED FRAGMENTATION ANTI-ALPHA BETA TCR BINDING POLYPEPTIDES
MX2021012160A (en) 2019-04-08 2022-01-06 Biogen Ma Inc Anti-integrin antibodies and uses thereof.
GB2589049C (en) 2019-04-11 2024-02-21 argenx BV Anti-IgE antibodies
CN111909268B (en) * 2019-05-07 2022-04-19 北京天成新脉生物技术有限公司 anti-TNF-alpha humanized monoclonal antibody TCX060 with low immunogenicity and low ADCC/CDC function and application thereof
TWI762925B (en) 2019-05-21 2022-05-01 美商基利科學股份有限公司 Methods of identifying hiv patients sensitive to therapy with gp120 v3 glycan-directed antibodies
MX2021014756A (en) 2019-06-07 2022-01-18 Argenx Bvba PHARMACEUTICAL FORMULATIONS OF FcRn INHIBITORS SUITABLE FOR SUBCUTANEOUS ADMINISTRATION.
EP3986918A1 (en) 2019-06-18 2022-04-27 Bayer Aktiengesellschaft Adrenomedullin-analogues for long-term stabilization and their use
JP2022538674A (en) 2019-07-01 2022-09-05 トニックス ファーマ リミテッド ANTI-CD154 ANTIBODY AND USES THEREOF
WO2021011678A1 (en) 2019-07-15 2021-01-21 Bristol-Myers Squibb Company Anti-trem-1 antibodies and uses thereof
JP2022540904A (en) 2019-07-15 2022-09-20 ブリストル-マイヤーズ スクイブ カンパニー Antibodies against human TREM-1 and uses thereof
WO2021021991A1 (en) 2019-08-01 2021-02-04 Vaccinex,Inc. Combined inhibition of semaphorin-4d and tgfb and compositions therefor
MX2022003204A (en) 2019-09-19 2022-04-18 Bristol Myers Squibb Co Antibodies binding to vista at acidic ph.
EP4038182A1 (en) 2019-09-30 2022-08-10 Bioverativ Therapeutics Inc. Lentiviral vector formulations
EP4045083B1 (en) 2019-10-18 2024-01-10 Forty Seven, Inc. Combination therapies for treating myelodysplastic syndromes and acute myeloid leukemia
IL292419A (en) 2019-10-24 2022-06-01 Prometheus Biosciences Inc Humanized antibodies to tnf-like ligand 1a (tl1a) and uses thereof
US20210147568A1 (en) 2019-10-31 2021-05-20 Forty Seven, Inc. Anti-cd47 based treatment of blood cancer
CN112830972A (en) * 2019-11-25 2021-05-25 中山康方生物医药有限公司 Bispecific antibodies against PD-1-anti-VEGFA, pharmaceutical compositions thereof and uses thereof
EP3831849A1 (en) 2019-12-02 2021-06-09 LamKap Bio beta AG Bispecific antibodies against ceacam5 and cd47
CA3160574A1 (en) * 2019-12-03 2021-06-10 Fubin LI Antibody fc region having enhanced binding affinty to fcyriib
CN110964119A (en) * 2019-12-05 2020-04-07 沣潮医药科技(上海)有限公司 Anti-malarial dimeric immunoadhesin, pharmaceutical composition and use
UY38995A (en) 2019-12-20 2021-06-30 Amgen Inc MESOTHELIN TARGETING CD40 AGONIST MULTI-SPECIFIC ANTIBODY CONSTRUCTS FOR THE TREATMENT OF SOLID TUMORS
CR20220303A (en) 2019-12-24 2022-09-02 Gilead Sciences Inc Diacylglycerol kinase modulating compounds
CN111150841B (en) * 2019-12-31 2023-08-15 优锐生物医药科技(深圳)有限公司 Active immune regulation particle and preparation method and application thereof
CN111150842B (en) * 2019-12-31 2023-09-05 优锐生物医药科技(深圳)有限公司 Active immune regulation particle for neutralizing gastrin, and preparation method and application thereof
US20210236596A1 (en) 2020-01-08 2021-08-05 argenx BV Methods for treating pemphigus disorders
TW202140553A (en) 2020-01-13 2021-11-01 美商威特拉公司 Antibody molecules to c5ar1 and uses thereof
CN113214406B (en) * 2020-01-21 2022-08-02 苏州普乐康医药科技有限公司 Preparation method and application of fusion protein combined with GPC3
US20230087600A1 (en) 2020-02-06 2023-03-23 Bristol-Myers Squibb Company Il-10 and uses thereof
JP2023516952A (en) 2020-02-28 2023-04-21 ジェンザイム・コーポレーション Modified binding polypeptides for optimized drug conjugation
WO2021201236A1 (en) 2020-04-01 2021-10-07 協和キリン株式会社 Antibody composition
CA3170570A1 (en) 2020-04-01 2021-10-07 James J. KOBIE Monoclonal antibodies against the hemagglutinin (ha) and neuraminidase (na) of influenza h3n2 viruses
WO2021207449A1 (en) 2020-04-09 2021-10-14 Merck Sharp & Dohme Corp. Affinity matured anti-lap antibodies and uses thereof
SG11202112792WA (en) 2020-04-28 2021-12-30 Univ Rockefeller Neutralizing anti-sars-cov-2 antibodies and methods of use thereof
WO2021231732A1 (en) 2020-05-15 2021-11-18 Bristol-Myers Squibb Company Antibodies to garp
CN111626425B (en) * 2020-05-21 2024-01-19 宿迁学院 Quantum register allocation method and system for two-dimensional neighbor quantum computing architecture
KR20230135556A (en) 2020-06-25 2023-09-25 백시넥스 인코포레이티드 Use of semaphorin-4D binding molecules for the treatment of Rett syndrome
CA3165342A1 (en) 2020-06-29 2022-01-06 James Arthur Posada Treatment of sjogren's syndrome with nuclease fusion proteins
MX2023002001A (en) 2020-08-18 2023-03-21 Cephalon Llc Anti-par-2 antibodies and methods of use thereof.
WO2022076606A1 (en) 2020-10-06 2022-04-14 Iovance Biotherapeutics, Inc. Treatment of nsclc patients with tumor infiltrating lymphocyte therapies
JP2023546359A (en) 2020-10-06 2023-11-02 アイオバンス バイオセラピューティクス,インコーポレイテッド Treatment of NSCLC patients with tumor-infiltrating lymphocyte therapy
MX2023004849A (en) * 2020-11-01 2023-06-02 Provention Bio Inc Methods and compositions for treatment of lupus.
WO2022098870A1 (en) 2020-11-04 2022-05-12 The Rockefeller University Neutralizing anti-sars-cov-2 antibodies
EP4244396A1 (en) 2020-11-11 2023-09-20 Gilead Sciences, Inc. Methods of identifying hiv patients sensitive to therapy with gp120 cd4 binding site-directed antibodies
TW202241468A (en) 2020-12-11 2022-11-01 美商艾歐凡斯生物治療公司 Treatment of cancer patients with tumor infiltrating lymphocyte therapies in combination with braf inhibitors and/or mek inhibitors
JP2023554395A (en) 2020-12-17 2023-12-27 アイオバンス バイオセラピューティクス,インコーポレイテッド Treatment with tumor-infiltrating lymphocyte therapy in combination with CTLA-4 and PD-1 inhibitors
EP4262827A1 (en) 2020-12-17 2023-10-25 Iovance Biotherapeutics, Inc. Treatment of cancers with tumor infiltrating lymphocytes
PL4055055T3 (en) 2020-12-18 2024-04-15 Lamkap Bio Beta Ag Bispecific antibodies against ceacam5 and cd47
JP2024501845A (en) 2020-12-31 2024-01-16 アイオバンス バイオセラピューティクス,インコーポレイテッド Devices and processes for automated production of tumor-infiltrating lymphocytes
AU2022205313A1 (en) 2021-01-06 2023-07-20 Tonix Pharma Limited Methods of inducing immune tolerance with modified anti-cd154 antibodies
US11912781B2 (en) 2021-01-13 2024-02-27 Visterra, Inc. Humanized complement 5A receptor 1 antibodies and methods of use thereof
EP4277926A1 (en) 2021-01-15 2023-11-22 The Rockefeller University Neutralizing anti-sars-cov-2 antibodies
EP4284919A1 (en) 2021-01-29 2023-12-06 Iovance Biotherapeutics, Inc. Methods of making modified tumor infiltrating lymphocytes and their use in adoptive cell therapy
CA3210755A1 (en) 2021-03-05 2022-09-09 Kenneth ONIMUS Tumor storage and cell culture compositions
WO2022198141A1 (en) 2021-03-19 2022-09-22 Iovance Biotherapeutics, Inc. Methods for tumor infiltrating lymphocyte (til) expansion related to cd39/cd69 selection and gene knockout in tils
EP4313122A1 (en) 2021-03-23 2024-02-07 Iovance Biotherapeutics, Inc. Cish gene editing of tumor infiltrating lymphocytes and uses of same in immunotherapy
EP4314253A2 (en) 2021-03-25 2024-02-07 Iovance Biotherapeutics, Inc. Methods and compositions for t-cell coculture potency assays and use with cell therapy products
BR112023019138A2 (en) 2021-03-26 2023-10-24 Innate Pharma MULTI-SPECIFIC PROTEIN, PHARMACEUTICAL COMPOSITION, RECOMBINANT CELL, METHOD OF PREPARING AN NK CELL COMPOSITION, NK CELL COMPOSITION, USE OF A PROTEIN OR COMPOSITION, METHODS AND USE
EP4314068A1 (en) 2021-04-02 2024-02-07 The Regents Of The University Of California Antibodies against cleaved cdcp1 and uses thereof
BR112023021665A2 (en) 2021-04-19 2023-12-19 Iovance Biotherapeutics Inc METHOD FOR TREATING A CANCER, AND, COMPOSITION
JP2024514281A (en) 2021-04-23 2024-04-01 エフ・ホフマン-ラ・ロシュ・アクチェンゲゼルシャフト Prevention or reduction of adverse effects related to NK cell-engaging agents
EP4334343A2 (en) 2021-05-06 2024-03-13 The Rockefeller University Neutralizing anti-sars- cov-2 antibodies and methods of use thereof
JP2024516320A (en) 2021-05-07 2024-04-12 イノベント バイオロジクス(スーチョウ)カンパニー,リミティド Fc variants with altered binding to Fc receptors
WO2022245754A1 (en) 2021-05-17 2022-11-24 Iovance Biotherapeutics, Inc. Pd-1 gene-edited tumor infiltrating lymphocytes and uses of same in immunotherapy
WO2022258678A1 (en) 2021-06-09 2022-12-15 Innate Pharma Multispecific proteins binding to nkp30, a cytokine receptor, a tumour antigen and cd16a
WO2022258673A1 (en) 2021-06-09 2022-12-15 Innate Pharma Multispecific antibodies binding to cd20, nkp46, cd16 and conjugated to il-2
CN117616050A (en) 2021-06-09 2024-02-27 先天制药公司 Multispecific proteins that bind to NKP46, cytokine receptor, tumor antigen and CD16A
WO2022258691A1 (en) 2021-06-09 2022-12-15 Innate Pharma Multispecific proteins binding to nkg2d, a cytokine receptor, a tumour antigen and cd16a
WO2022261510A1 (en) 2021-06-11 2022-12-15 Sage Therapeutics, Inc. Neuroactive steroid for the treatment of alzheimer's disease
IL309378A (en) 2021-06-23 2024-02-01 Gilead Sciences Inc Diacylglyercol kinase modulating compounds
US11926628B2 (en) 2021-06-23 2024-03-12 Gilead Sciences, Inc. Diacylglyercol kinase modulating compounds
WO2022271659A1 (en) 2021-06-23 2022-12-29 Gilead Sciences, Inc. Diacylglyercol kinase modulating compounds
CA3222277A1 (en) 2021-06-23 2022-12-29 Gilead Sciences, Inc. Diacylglyercol kinase modulating compounds
WO2023004074A2 (en) 2021-07-22 2023-01-26 Iovance Biotherapeutics, Inc. Method for cryopreservation of solid tumor fragments
CA3226942A1 (en) 2021-07-28 2023-02-02 Iovance Biotherapeutics, Inc. Treatment of cancer patients with tumor infiltrating lymphocyte therapies in combination with kras inhibitors
AR126970A1 (en) 2021-09-02 2023-12-06 Djs Antibodies Ltd POLYPETIDES
WO2023039488A1 (en) 2021-09-09 2023-03-16 Iovance Biotherapeutics, Inc. Processes for generating til products using pd-1 talen knockdown
KR20230041211A (en) * 2021-09-17 2023-03-24 고려대학교 산학협력단 Fc variants with improved binding to multiple Fc gamma receptors
CA3232700A1 (en) 2021-09-24 2023-03-30 Rafael CUBAS Expansion processes and agents for tumor infiltrating lymphocytes
WO2023048726A1 (en) 2021-09-27 2023-03-30 Vaccinex, Inc. Predictive outcome profiling for use of an anti-semaphorin-4d binding molecule to treat neurodegenerative disorders
TW202331735A (en) 2021-10-27 2023-08-01 美商艾歐凡斯生物治療公司 Systems and methods for coordinating manufacturing of cells for patient-specific immunotherapy
WO2023072159A1 (en) 2021-10-27 2023-05-04 Virtuoso Binco, Inc. Multispecific antibodies for treating cd47-associated diseases
WO2023086803A1 (en) 2021-11-10 2023-05-19 Iovance Biotherapeutics, Inc. Methods of expansion treatment utilizing cd8 tumor infiltrating lymphocytes
WO2023109928A1 (en) * 2021-12-16 2023-06-22 上海宝济药业有限公司 Anti-immunoglobulin degrading enzyme-digested fc variant
WO2023139107A1 (en) 2022-01-18 2023-07-27 argenx BV Galectin-10 antibodies
WO2023147399A1 (en) 2022-01-27 2023-08-03 The Rockefeller University Broadly neutralizing anti-sars-cov-2 antibodies targeting the n-terminal domain of the spike protein and methods of use thereof
WO2023147486A1 (en) 2022-01-28 2023-08-03 Iovance Biotherapeutics, Inc. Tumor infiltrating lymphocytes engineered to express payloads
WO2023147488A1 (en) 2022-01-28 2023-08-03 Iovance Biotherapeutics, Inc. Cytokine associated tumor infiltrating lymphocytes compositions and methods
CN114702593B (en) * 2022-03-11 2023-12-08 苏州思萃免疫技术研究所有限公司 anti-FOLR 1/VEGF (human immunodeficiency virus) fully human bispecific antibody as well as screening method and application thereof
WO2023196877A1 (en) 2022-04-06 2023-10-12 Iovance Biotherapeutics, Inc. Treatment of nsclc patients with tumor infiltrating lymphocyte therapies
WO2023201369A1 (en) 2022-04-15 2023-10-19 Iovance Biotherapeutics, Inc. Til expansion processes using specific cytokine combinations and/or akti treatment
WO2023220608A1 (en) 2022-05-10 2023-11-16 Iovance Biotherapeutics, Inc. Treatment of cancer patients with tumor infiltrating lymphocyte therapies in combination with an il-15r agonist
WO2023242361A1 (en) 2022-06-15 2023-12-21 argenx BV Fcrn binding molecules and methods of use
WO2023242351A1 (en) 2022-06-16 2023-12-21 Lamkap Bio Beta Ag Combination therapy of bispecific antibodies against ceacam5 and cd47 and bispecific antibodies against ceacam5 and cd3
KR20240003757A (en) * 2022-06-29 2024-01-09 고려대학교 산학협력단 Human IgG1 Fc variants with improved Fc gamma RIIa binding
WO2024011114A1 (en) 2022-07-06 2024-01-11 Iovance Biotherapeutics, Inc. Devices and processes for automated production of tumor infiltrating lymphocytes
WO2024020579A1 (en) 2022-07-22 2024-01-25 Bristol-Myers Squibb Company Antibodies binding to human pad4 and uses thereof
WO2024026395A1 (en) 2022-07-27 2024-02-01 Cephalon Llc Anti-tl1a antibodies for the treatment of ulcerative colitis and crohn's disease
WO2024026386A1 (en) 2022-07-27 2024-02-01 Cephalon Llc Anti-tl1a antibody formulations
WO2024030758A1 (en) 2022-08-01 2024-02-08 Iovance Biotherapeutics, Inc. Chimeric costimulatory receptors, chemokine receptors, and the use of same in cellular immunotherapies
US20240101691A1 (en) 2022-09-21 2024-03-28 Sanofi Biotechnology Humanized anti-il-1r3 antibody and methods of use

Family Cites Families (251)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2320801A (en) 1940-10-03 1943-06-01 Simons Leon Method of coating metal
US2320804A (en) 1942-11-19 1943-06-01 Ralph F Smart Shade roller bracket
US3773919A (en) 1969-10-23 1973-11-20 Du Pont Polylactide-drug mixtures
US3917002A (en) 1971-10-15 1975-11-04 Massey Ferguson Inc Draft control linkage for a tractor
CU22545A1 (en) 1994-11-18 1999-03-31 Centro Inmunologia Molecular OBTAINING A CHEMICAL AND HUMANIZED ANTIBODY AGAINST THE RECEPTOR OF THE EPIDERMAL GROWTH FACTOR FOR DIAGNOSTIC AND THERAPEUTIC USE
WO1981001145A1 (en) 1979-10-18 1981-04-30 Univ Illinois Hydrolytic enzyme-activatible pro-drugs
US4485045A (en) 1981-07-06 1984-11-27 Research Corporation Synthetic phosphatidyl cholines useful in forming liposomes
GB8308235D0 (en) * 1983-03-25 1983-05-05 Celltech Ltd Polypeptides
US4816567A (en) 1983-04-08 1989-03-28 Genentech, Inc. Recombinant immunoglobin preparations
US4544545A (en) 1983-06-20 1985-10-01 Trustees University Of Massachusetts Liposomes containing modified cholesterol for organ targeting
US4753894A (en) 1984-02-08 1988-06-28 Cetus Corporation Monoclonal anti-human breast cancer antibodies
US4943533A (en) 1984-03-01 1990-07-24 The Regents Of The University Of California Hybrid cell lines that produce monoclonal antibodies to epidermal growth factor receptor
AU4434585A (en) 1985-03-30 1986-10-23 Marc Ballivet Method for obtaining dna, rna, peptides, polypeptides or proteins by means of a dna recombinant technique
US5225539A (en) 1986-03-27 1993-07-06 Medical Research Council Recombinant altered antibodies and methods of making altered antibodies
US6548640B1 (en) * 1986-03-27 2003-04-15 Btg International Limited Altered antibodies
ATE147432T1 (en) 1986-05-29 1997-01-15 Ilexus Pty Ltd POLYNUCLEOTIDE SEQUENCES CODING FOR THE HUMAN FC RECEPTOR FOR IMMUNOGLOBULIN
US5763192A (en) 1986-11-20 1998-06-09 Ixsys, Incorporated Process for obtaining DNA, RNA, peptides, polypeptides, or protein, by recombinant DNA technique
IL85035A0 (en) 1987-01-08 1988-06-30 Int Genetic Eng Polynucleotide molecule,a chimeric antibody with specificity for human b cell surface antigen,a process for the preparation and methods utilizing the same
GB8705477D0 (en) 1987-03-09 1987-04-15 Carlton Med Prod Drug delivery systems
AU600575B2 (en) 1987-03-18 1990-08-16 Sb2, Inc. Altered antibodies
US4975278A (en) 1988-02-26 1990-12-04 Bristol-Myers Company Antibody-enzyme conjugates in combination with prodrugs for the delivery of cytotoxic agents to tumor cells
PT88641B (en) 1987-10-02 1993-04-30 Genentech Inc METHOD FOR PREPARING A VARIETY OF ADHESION
JP3040121B2 (en) 1988-01-12 2000-05-08 ジェネンテク,インコーポレイテッド Methods of treating tumor cells by inhibiting growth factor receptor function
US5567584A (en) 1988-01-22 1996-10-22 Zymogenetics, Inc. Methods of using biologically active dimerized polypeptide fusions to detect PDGF
US6018026A (en) 1988-01-22 2000-01-25 Zymogenetics, Inc. Biologically active dimerized and multimerized polypeptide fusions
US5576184A (en) 1988-09-06 1996-11-19 Xoma Corporation Production of chimeric mouse-human antibodies with specificity to human tumor antigens
US20040049014A1 (en) 1988-12-28 2004-03-11 Protein Design Labs, Inc. Humanized immunoglobulins
US5530101A (en) 1988-12-28 1996-06-25 Protein Design Labs, Inc. Humanized immunoglobulins
US5266491A (en) 1989-03-14 1993-11-30 Mochida Pharmaceutical Co., Ltd. DNA fragment and expression plasmid containing the DNA fragment
JP3051411B2 (en) * 1989-03-14 2000-06-12 持田製薬株式会社 Novel DNA and expression plasmid containing it
US5013556A (en) 1989-10-20 1991-05-07 Liposome Technology, Inc. Liposomes with enhanced circulation time
US5208020A (en) 1989-10-25 1993-05-04 Immunogen Inc. Cytotoxic agents comprising maytansinoids and their therapeutic use
EP0462246A4 (en) 1989-11-07 1992-11-25 Bristol-Myers Squibb Company Oligomeric immunoglobulins
US5859205A (en) 1989-12-21 1999-01-12 Celltech Limited Humanised antibodies
WO1991019515A1 (en) 1990-06-21 1991-12-26 The Board Of Trustees Of The Leland Stanford Junior University Oligomeric immunoglobulin constant domain mutant with enhanced complement-mediated cytolytic activity
US5198342A (en) * 1990-07-05 1993-03-30 Immunex Corporation DNA encoding IgA Fc receptors
EP0547137A4 (en) 1990-08-31 1993-12-08 Bristol-Myers Squibb Company Homoconjugated immunoglobulins
GB9022545D0 (en) * 1990-10-17 1990-11-28 Wellcome Found Culture medium
CZ282603B6 (en) 1991-03-06 1997-08-13 Merck Patent Gesellschaft Mit Beschränkter Haftun G Humanized and chimeric monoclonal antibody, expression vector and pharmaceutical preparation
GB9105245D0 (en) 1991-03-12 1991-04-24 Lynxvale Ltd Binding molecules
US6797492B2 (en) * 1991-05-17 2004-09-28 Merck & Co., Inc. Method for reducing the immunogenicity of antibody variable domains
EP0590067A1 (en) 1991-06-14 1994-04-06 Xoma Corporation Microbially-produced antibody fragments and their conjugates
WO1994004679A1 (en) 1991-06-14 1994-03-03 Genentech, Inc. Method for making humanized antibodies
LU91067I2 (en) 1991-06-14 2004-04-02 Genentech Inc Trastuzumab and its variants and immunochemical derivatives including immotoxins
US5264586A (en) 1991-07-17 1993-11-23 The Scripps Research Institute Analogs of calicheamicin gamma1I, method of making and using the same
EP0604580A1 (en) * 1991-09-19 1994-07-06 Genentech, Inc. EXPRESSION IN E. COLI OF ANTIBODY FRAGMENTS HAVING AT LEAST A CYSTEINE PRESENT AS A FREE THIOL, USE FOR THE PRODUCTION OF BIFUNCTIONAL F(ab') 2? ANTIBODIES
US5623053A (en) * 1992-01-10 1997-04-22 California Institute Of Technology Soluble mammal-derived Fc receptor which binds at a pH ranging from about 5.5 to 6.5 and releases at a pH ranging from about 7.5 to 8.5
US5714350A (en) * 1992-03-09 1998-02-03 Protein Design Labs, Inc. Increasing antibody affinity by altering glycosylation in the immunoglobulin variable region
ZA932522B (en) 1992-04-10 1993-12-20 Res Dev Foundation Immunotoxins directed against c-erbB-2(HER/neu) related surface antigens
EP0640094A1 (en) 1992-04-24 1995-03-01 The Board Of Regents, The University Of Texas System Recombinant production of immunoglobulin-like domains in prokaryotic cells
US5736137A (en) 1992-11-13 1998-04-07 Idec Pharmaceuticals Corporation Therapeutic application of chimeric and radiolabeled antibodies to human B lymphocyte restricted differentiation antigen for treatment of B cell lymphoma
WO1994011026A2 (en) 1992-11-13 1994-05-26 Idec Pharmaceuticals Corporation Therapeutic application of chimeric and radiolabeled antibodies to human b lymphocyte restricted differentiation antigen for treatment of b cell lymphoma
US20030108548A1 (en) * 1993-06-01 2003-06-12 Bluestone Jeffrey A. Methods and materials for modulation of the immunosuppressive activity and toxicity of monoclonal antibodies
US5885573A (en) * 1993-06-01 1999-03-23 Arch Development Corporation Methods and materials for modulation of the immunosuppressive activity and toxicity of monoclonal antibodies
EP0714409A1 (en) * 1993-06-16 1996-06-05 Celltech Therapeutics Limited Antibodies
GB9316989D0 (en) 1993-08-16 1993-09-29 Lynxvale Ltd Binding molecules
GB9401182D0 (en) 1994-01-21 1994-03-16 Inst Of Cancer The Research Antibodies to EGF receptor and their antitumour effect
US5605793A (en) 1994-02-17 1997-02-25 Affymax Technologies N.V. Methods for in vitro recombination
US5837458A (en) 1994-02-17 1998-11-17 Maxygen, Inc. Methods and compositions for cellular and metabolic engineering
US6204007B1 (en) 1994-03-29 2001-03-20 Celltech Therapeutics Limited Antibodies against E-selectin
US5773001A (en) 1994-06-03 1998-06-30 American Cyanamid Company Conjugates of methyltrithio antitumor agents and intermediates for their synthesis
AU686466B2 (en) 1994-07-21 1998-02-05 Akzo Nobel N.V. Cyclic ketone peroxide formulations
US5541087A (en) * 1994-09-14 1996-07-30 Fuji Immunopharmaceuticals Corporation Expression and export technology of proteins as immunofusins
US5804396A (en) 1994-10-12 1998-09-08 Sugen, Inc. Assay for agents active in proliferative disorders
US6214388B1 (en) 1994-11-09 2001-04-10 The Regents Of The University Of California Immunoliposomes that optimize internalization into target cells
ATE238668T1 (en) 1995-01-17 2003-05-15 Brigham & Womens Hospital RECEPTOR-SPECIFIC TRANSEPITHELIAL TRANSPORT OF IMMUNOGENS
US6485726B1 (en) 1995-01-17 2002-11-26 The Brigham And Women's Hospital, Inc. Receptor specific transepithelial transport of therapeutics
US6086875A (en) * 1995-01-17 2000-07-11 The Brigham And Women's Hospital, Inc. Receptor specific transepithelial transport of immunogens
US6030613A (en) 1995-01-17 2000-02-29 The Brigham And Women's Hospital, Inc. Receptor specific transepithelial transport of therapeutics
US5731168A (en) * 1995-03-01 1998-03-24 Genentech, Inc. Method for making heteromultimeric polypeptides
WO1996030347A1 (en) 1995-03-30 1996-10-03 Pfizer Inc. Quinazoline derivatives
US6121022A (en) * 1995-04-14 2000-09-19 Genentech, Inc. Altered polypeptides with increased half-life
GB9508538D0 (en) 1995-04-27 1995-06-14 Zeneca Ltd Quinazoline derivatives
GB9508565D0 (en) 1995-04-27 1995-06-14 Zeneca Ltd Quiazoline derivative
US6444789B1 (en) * 1995-05-03 2002-09-03 Applied Research Systems Ars Holding N.V. CD16-II variants
US6365161B1 (en) * 1995-06-07 2002-04-02 Medarex, Inc. Therapeutic compounds comprised of anti-FC receptor binding agents
US5714586A (en) 1995-06-07 1998-02-03 American Cyanamid Company Methods for the preparation of monomeric calicheamicin derivative/carrier conjugates
US5712374A (en) 1995-06-07 1998-01-27 American Cyanamid Company Method for the preparation of substantiallly monomeric calicheamicin derivative/carrier conjugates
JPH11507535A (en) 1995-06-07 1999-07-06 イムクローン システムズ インコーポレイテッド Antibodies and antibody fragments that suppress tumor growth
US5965408A (en) 1996-07-09 1999-10-12 Diversa Corporation Method of DNA reassembly by interrupting synthesis
US5939250A (en) 1995-12-07 1999-08-17 Diversa Corporation Production of enzymes having desired activities by mutagenesis
US6171820B1 (en) 1995-12-07 2001-01-09 Diversa Corporation Saturation mutagenesis in directed evolution
US6352842B1 (en) 1995-12-07 2002-03-05 Diversa Corporation Exonucease-mediated gene assembly in directed evolution
US6358709B1 (en) 1995-12-07 2002-03-19 Diversa Corporation End selection in directed evolution
US6361974B1 (en) 1995-12-07 2002-03-26 Diversa Corporation Exonuclease-mediated nucleic acid reassembly in directed evolution
US6750334B1 (en) 1996-02-02 2004-06-15 Repligen Corporation CTLA4-immunoglobulin fusion proteins having modified effector functions and uses therefor
JP4046354B2 (en) 1996-03-18 2008-02-13 ボード オブ リージェンツ,ザ ユニバーシティ オブ テキサス システム Immunoglobulin-like domain with increased half-life
JP3904238B2 (en) 1996-03-20 2007-04-11 イムノメディクス, インコーポレイテッド Glycosylated humanized B cell specific antibody
CN100503580C (en) 1996-04-12 2009-06-24 沃尼尔·朗伯公司 Irreversible inhibitor of tyrosine kinase
US5834597A (en) 1996-05-20 1998-11-10 Protein Design Labs, Inc. Mutated nonactivating IgG2 domains and anti CD3 antibodies incorporating the same
JP2000516452A (en) 1996-07-16 2000-12-12 プリュックテュン,アンドレアス Immunoglobulin superfamily domains and fragments with increased solubility
EP0918872B1 (en) 1996-08-02 2008-02-20 Bristol-Myers Squibb Company A method for inhibiting immunoglobulin-induced toxicity resulting from the use of immunoglobulins in therapy and in vivo diagnosis
GB9616737D0 (en) 1996-08-09 1996-09-25 Univ Dundee Security in a network environment
WO1998023289A1 (en) 1996-11-27 1998-06-04 The General Hospital Corporation MODULATION OF IgG BINDING TO FcRn
WO1998031806A2 (en) 1997-01-21 1998-07-23 Human Genome Sciences, Inc. Fc RECEPTORS AND POLYPEPTIDES
US6277375B1 (en) * 1997-03-03 2001-08-21 Board Of Regents, The University Of Texas System Immunoglobulin-like domains with increased half-lives
UA73073C2 (en) 1997-04-03 2005-06-15 Уайт Холдінгз Корпорейшн Substituted 3-cyan chinolines
JP2002510966A (en) 1997-04-11 2002-04-09 カリフォルニア・インスティテュート・オブ・テクノロジー Apparatus and method for automatic protein design
EP1255209A3 (en) 1997-04-11 2009-02-11 California Institute Of Technology Apparatus and method for automated protein design
US20020062010A1 (en) * 1997-05-02 2002-05-23 Genentech, Inc. Method for making multispecific antibodies having heteromultimeric and common components
US6235883B1 (en) 1997-05-05 2001-05-22 Abgenix, Inc. Human monoclonal antibodies to epidermal growth factor receptor
US20040191256A1 (en) * 1997-06-24 2004-09-30 Genentech, Inc. Methods and compositions for galactosylated glycoproteins
ZA986729B (en) 1997-07-29 1999-02-02 Warner Lambert Co Irreversible inhibitors of tyrosine kinases
ZA986732B (en) 1997-07-29 1999-02-02 Warner Lambert Co Irreversible inhibitiors of tyrosine kinases
TW436485B (en) 1997-08-01 2001-05-28 American Cyanamid Co Substituted quinazoline derivatives
US20030105294A1 (en) * 1998-02-25 2003-06-05 Stephen Gillies Enhancing the circulating half life of antibody-based fusion proteins
US6194551B1 (en) * 1998-04-02 2001-02-27 Genentech, Inc. Polypeptide variants
IL138608A0 (en) 1998-04-02 2001-10-31 Genentech Inc Antibody variants and fragments thereof
US6242195B1 (en) * 1998-04-02 2001-06-05 Genentech, Inc. Methods for determining binding of an analyte to a receptor
US6528624B1 (en) * 1998-04-02 2003-03-04 Genentech, Inc. Polypeptide variants
ES2340112T3 (en) 1998-04-20 2010-05-28 Glycart Biotechnology Ag ANTIBODY GLICOSILATION ENGINEERING FOR THE IMPROVEMENT OF DEPENDENT CELLULAR CYTOTOXICITY OF ANTIBODIES.
AU3655899A (en) * 1998-04-20 1999-11-08 Regents Of The University Of California, The Modified immunoglobulin molecules and methods for use thereof
AU3871099A (en) * 1998-05-06 1999-11-23 Temple University - Of The Commonwealth System Of Higher Education Reversal of proinflammatory response by ligating the macrophage fcgammari receptor
GB9809951D0 (en) 1998-05-08 1998-07-08 Univ Cambridge Tech Binding molecules
CA2341029A1 (en) 1998-08-17 2000-02-24 Abgenix, Inc. Generation of modified molecules with increased serum half-lives
US6306926B1 (en) * 1998-10-07 2001-10-23 3M Innovative Properties Company Radiopaque cationically polymerizable compositions comprising a radiopacifying filler, and method for polymerizing same
US7315786B2 (en) * 1998-10-16 2008-01-01 Xencor Protein design automation for protein libraries
WO2000023564A2 (en) 1998-10-16 2000-04-27 Xencor, Inc. Protein design automation for protein libraries
US20020048772A1 (en) * 2000-02-10 2002-04-25 Dahiyat Bassil I. Protein design automation for protein libraries
US20030049654A1 (en) * 1998-10-16 2003-03-13 Xencor Protein design automation for protein libraries
US6403312B1 (en) * 1998-10-16 2002-06-11 Xencor Protein design automatic for protein libraries
US6660843B1 (en) 1998-10-23 2003-12-09 Amgen Inc. Modified peptides as therapeutic agents
US6737056B1 (en) * 1999-01-15 2004-05-18 Genentech, Inc. Polypeptide variants with altered effector function
WO2000042072A2 (en) * 1999-01-15 2000-07-20 Genentech, Inc. Polypeptide variants with altered effector function
US6376246B1 (en) 1999-02-05 2002-04-23 Maxygen, Inc. Oligonucleotide mediated nucleic acid recombination
EP1108783A3 (en) 1999-01-19 2001-09-05 Maxygen, Inc. Oligonucleotide-mediated nucleic acid recombination
CA2362737A1 (en) 1999-03-05 2000-09-08 Maxygen, Inc. Recombination of insertion modified nucleic acids
EP1176195B1 (en) 1999-04-09 2013-05-22 Kyowa Hakko Kirin Co., Ltd. Method for controlling the activity of immunologically functional molecule
US6649165B2 (en) 1999-09-07 2003-11-18 Walter Schubert Method of blocking cytotoxic activity in patients with amyotrophic lateral sclerosis using soluble FcγRIII receptors
GB9922283D0 (en) 1999-09-22 1999-11-17 Kennedy Rheumatology Inst Adenoviral vectors
JP4668498B2 (en) 1999-10-19 2011-04-13 協和発酵キリン株式会社 Method for producing polypeptide
WO2001028702A1 (en) 1999-10-19 2001-04-26 Minergy Corp. Processing of contaminated river sediment in a glass melting furnace
ES2581239T3 (en) 1999-11-29 2016-09-02 The Trustees Of Columbia University In The City Of New York Isolation of five novel genes encoding new Fc receptor-type melanomas involved in the pathogenesis of lymphoma / melanoma
DE19958134C2 (en) 1999-12-02 2003-05-15 Koenig & Bauer Ag suction roll
AU1663000A (en) 1999-12-10 2000-05-08 Wcl Wireless Commerce Ltd Oy Method and system for performing electronic auctions
EP1458211A1 (en) 1999-12-27 2004-09-15 Mitsubishi Denki Kabushiki Kaisha Radio communication device
WO2001057088A1 (en) 2000-02-03 2001-08-09 Hammarstroem Lennart RUMINANT MHC CLASS I-LIKE Fc RECEPTORS
EP1255826B1 (en) 2000-02-10 2005-09-14 Xencor Protein design automation for protein libraries
US7129332B2 (en) 2000-02-25 2006-10-31 The United States Of America As Represented By The Department Of Health And Human Services Anti-EGFRvIII scFvs with improved cytotoxicity and yield, immunotoxins based thereon, and methods of use thereof
US20010044111A1 (en) 2000-03-20 2001-11-22 Brian Carr Method for generating recombinant DNA molecules in complex mixtures
LT2857516T (en) * 2000-04-11 2017-09-11 Genentech, Inc. Multivalent antibodies and uses therefor
AU5345901A (en) 2000-04-13 2001-10-30 Univ Rockefeller Enhancement of antibody-mediated immune responses
US6358733B1 (en) * 2000-05-19 2002-03-19 Apolife, Inc. Expression of heterologous multi-domain proteins in yeast
AU2001258567A1 (en) 2000-05-19 2001-11-26 Scancell Limited Humanised antibodies to the epidermal growth factor receptor
EA004875B1 (en) 2000-06-28 2004-08-26 Хамар Бакулиш Мафатлал Use an agent for reversal of drug resistance in mycobacterium tuberculosis
WO2002004853A1 (en) 2000-07-07 2002-01-17 Sugimoto, Motoichi Infinite power generating device
FR2811735B1 (en) 2000-07-11 2002-09-20 Asco Joucomatic PNEUMATIC CONTROL VALVE
WO2002006469A2 (en) 2000-07-18 2002-01-24 Enchira Biotechnology Corporation Methods of ligation mediated chimeragenesis utilizing populations of scaffold and donor nucleic acids
AU2001281714A1 (en) 2000-07-19 2002-01-30 Siemens Aktiengesellschaft Method for providing software in radio-based cellular communications networks, and a communications network for implementing said method
US6724920B1 (en) 2000-07-21 2004-04-20 Trw Inc. Application of human facial features recognition to automobile safety
WO2002025588A2 (en) 2000-09-21 2002-03-28 Md Online Inc. Medical image processing systems
US6946292B2 (en) * 2000-10-06 2005-09-20 Kyowa Hakko Kogyo Co., Ltd. Cells producing antibody compositions with increased antibody dependent cytotoxic activity
AU2001294175A1 (en) 2000-10-06 2002-04-22 Kyowa Hakko Kogyo Co. Ltd. Method of purifying antibody
PL218428B1 (en) 2000-10-06 2014-12-31 Kyowa Hakko Kogyo Kk Cells producing antibody compositions
US7064191B2 (en) 2000-10-06 2006-06-20 Kyowa Hakko Kogyo Co., Ltd. Process for purifying antibody
US7465790B2 (en) 2000-10-09 2008-12-16 Isis Innovation, Inc. Therapeutic antibodies
WO2002034790A1 (en) 2000-10-20 2002-05-02 Idec Pharmaceuticals Corporation Variant igg3 rituxan r and therapeutic use thereof
WO2002043658A2 (en) * 2000-11-06 2002-06-06 The Jackson Laboratory Fcrn-based therapeutics for the treatment of auto-immune disorders
US7235643B2 (en) 2000-11-07 2007-06-26 Morphotek, Inc. Antibodies and methods for generating genetically altered antibodies with high affinity
GB0029407D0 (en) 2000-12-01 2001-01-17 Affitech As Product
US20040253242A1 (en) 2000-12-05 2004-12-16 Bowdish Katherine S. Rationally designed antibodies
EP2341060B1 (en) * 2000-12-12 2019-02-20 MedImmune, LLC Molecules with extended half-lives, compositions and uses thereof
US6979556B2 (en) * 2000-12-14 2005-12-27 Genentech, Inc. Separate-cistron contructs for secretion of aglycosylated antibodies from prokaryotes
EP1356052B1 (en) 2000-12-14 2008-08-20 Genentech, Inc. Production of full antibodies in procaryotic cells
US20030133939A1 (en) * 2001-01-17 2003-07-17 Genecraft, Inc. Binding domain-immunoglobulin fusion proteins
US7754208B2 (en) * 2001-01-17 2010-07-13 Trubion Pharmaceuticals, Inc. Binding domain-immunoglobulin fusion proteins
EP1358337A1 (en) 2001-01-30 2003-11-05 Degussa AG Nucleotide sequences which code for the otsa gene of c. glutamicum
MXPA03007323A (en) 2001-02-19 2003-12-12 Merck Patent Gmbh Artificial proteins with reduced immunogenicity.
US6992174B2 (en) 2001-03-30 2006-01-31 Emd Lexigen Research Center Corp. Reducing the immunogenicity of fusion proteins
GB0118662D0 (en) * 2001-07-31 2001-09-19 Univ Southampton Binding agents
EP2180044A1 (en) 2001-08-03 2010-04-28 GlycArt Biotechnology AG Antibody glycosylation variants having increased anti-body-dependent cellular cytotoxicity
US7255858B2 (en) 2001-08-10 2007-08-14 University Of Virginia Patent Foundation Enhancing the efficacy of immunotherapies by supplementing with complement
WO2003014325A2 (en) 2001-08-10 2003-02-20 Xencor Protein design automation for protein libraries
WO2003035835A2 (en) * 2001-10-25 2003-05-01 Genentech, Inc. Glycoprotein compositions
US6911321B2 (en) 2001-12-19 2005-06-28 Genentech, Inc. Non-human primate Fc receptors and methods of use
US20040093621A1 (en) * 2001-12-25 2004-05-13 Kyowa Hakko Kogyo Co., Ltd Antibody composition which specifically binds to CD20
NZ534174A (en) 2002-01-09 2007-03-30 Medarex Inc An isolated human monoclonal antibody which binds to human CD30
AU2003216250A1 (en) 2002-02-11 2003-09-04 Genentech, Inc. Antibody variants with faster antigen association rates
US20040002587A1 (en) 2002-02-20 2004-01-01 Watkins Jeffry D. Fc region variants
US7662925B2 (en) * 2002-03-01 2010-02-16 Xencor, Inc. Optimized Fc variants and methods for their generation
US8188231B2 (en) 2002-09-27 2012-05-29 Xencor, Inc. Optimized FC variants
US20040132101A1 (en) * 2002-09-27 2004-07-08 Xencor Optimized Fc variants and methods for their generation
US7317091B2 (en) 2002-03-01 2008-01-08 Xencor, Inc. Optimized Fc variants
AU2003217912A1 (en) * 2002-03-01 2003-09-16 Xencor Antibody optimization
WO2003077834A2 (en) 2002-03-15 2003-09-25 The Brigham And Women's Hospital, Inc. Central airway administration for systemic delivery of therapeutics
CA2480404A1 (en) 2002-03-25 2003-10-30 Uab Research Foundation Fc receptor homolog, reagents, and uses thereof
US20040259150A1 (en) 2002-04-09 2004-12-23 Kyowa Hakko Kogyo Co., Ltd. Method of enhancing of binding activity of antibody composition to Fcgamma receptor IIIa
FI115134B (en) 2002-06-28 2005-03-15 Liekki Oy A method for producing doped glass material
JP2006513139A (en) 2002-07-03 2006-04-20 ザ・ブリガーム・アンド・ウーメンズ・ホスピタル・インコーポレーテッド Central airway administration for systemic delivery of therapeutic agents
JP2006500009A (en) * 2002-07-09 2006-01-05 ジェネンテック・インコーポレーテッド Compositions and methods for tumor diagnosis and treatment
EP2371389A3 (en) * 2002-08-14 2012-04-18 MacroGenics, Inc. FcgammaRIIB-specific antibodies and methods of use thereof
WO2004022717A2 (en) 2002-09-05 2004-03-18 The Government Of The United States Of America As Represented By The Secretary Of The Department Of Health And Human Services Minimally immunogenic variants of humanized col-1 antibody against carcinoembryonic antigen
EP1539811A4 (en) 2002-09-16 2006-05-24 Elusys Therapeutics Inc Production of bispecific molecules using polyethylene glycol linkers
BRPI0314814C1 (en) * 2002-09-27 2021-07-27 Xencor Inc antibody comprising an fc variant
US20060235208A1 (en) * 2002-09-27 2006-10-19 Xencor, Inc. Fc variants with optimized properties
CA2502904C (en) 2002-10-15 2013-05-28 Protein Design Labs, Inc. Alteration of fcrn binding affinities or serum half-lives of antibodies by mutagenesis
US7365168B2 (en) 2002-10-15 2008-04-29 Pdl Biopharma, Inc. Alteration of FcRn binding affinities or serum half-lives of antibodies by mutagenesis
US7361740B2 (en) * 2002-10-15 2008-04-22 Pdl Biopharma, Inc. Alteration of FcRn binding affinities or serum half-lives of antibodies by mutagenesis
US7217797B2 (en) * 2002-10-15 2007-05-15 Pdl Biopharma, Inc. Alteration of FcRn binding affinities or serum half-lives of antibodies by mutagenesis
DE10254063A1 (en) 2002-11-19 2004-06-03 InnoTec Ges. zur Entwicklung innovativer Technologien Uwe Emig, Prof. Reinhold Geilsdörfer, Markus Gramlich GbR Alpine skiing
AR042485A1 (en) 2002-12-16 2005-06-22 Genentech Inc HUMANIZED ANTIBODY THAT JOINS THE HUMAN CD20
AU2004204942A1 (en) 2003-01-08 2004-07-29 Xencor, Inc Novel proteins with altered immunogenicity
US7960512B2 (en) * 2003-01-09 2011-06-14 Macrogenics, Inc. Identification and engineering of antibodies with variant Fc regions and methods of using same
EP2368578A1 (en) * 2003-01-09 2011-09-28 Macrogenics, Inc. Identification and engineering of antibodies with variant Fc regions and methods of using same
US8084582B2 (en) 2003-03-03 2011-12-27 Xencor, Inc. Optimized anti-CD20 monoclonal antibodies having Fc variants
US8388955B2 (en) * 2003-03-03 2013-03-05 Xencor, Inc. Fc variants
US7185902B1 (en) 2003-03-14 2007-03-06 Altair Engineering, Inc. Strut suspension with pivoting rocker arm
TWI353991B (en) 2003-05-06 2011-12-11 Syntonix Pharmaceuticals Inc Immunoglobulin chimeric monomer-dimer hybrids
AR044388A1 (en) 2003-05-20 2005-09-07 Applied Molecular Evolution CD20 UNION MOLECULES
AU2004257142A1 (en) 2003-05-30 2005-01-27 Alexion Pharmaceuticals, Inc. Antibodies and fusion proteins that include engineered constant regions
DK1641483T3 (en) 2003-06-12 2008-06-02 Lilly Co Eli Fusion Proteins
WO2005000899A2 (en) 2003-06-27 2005-01-06 Biogen Idec Ma Inc. Modified binding molecules comprising connecting peptides
CA2531482A1 (en) * 2003-06-30 2005-01-20 Centocor, Inc. Engineered anti-target immunoglobulin derived proteins, compositions, methods and uses
BRPI0412890B8 (en) * 2003-07-24 2021-05-25 Innate Pharma method of selecting an anti-kir2dl1 antibody or antigen-binding antibody fragment
EP1653801A4 (en) 2003-07-26 2007-05-30 Biogen Idec Inc Altered antibodies having improved antigen-binding affinity
EP1660970A4 (en) 2003-08-01 2007-02-14 Dna Twopointo Inc Systems and methods for biopolymer engineering
CA2536408A1 (en) 2003-08-22 2005-03-03 Biogen Idec Ma Inc. Improved antibodies having altered effector function and methods for making the same
WO2005027966A2 (en) 2003-09-05 2005-03-31 Genentech, Inc. Antibodies with altered effector functions
CA2579635A1 (en) 2003-09-10 2005-03-17 Baxter International Inc. Peptides that inhibit complement activation
US8101720B2 (en) 2004-10-21 2012-01-24 Xencor, Inc. Immunoglobulin insertions, deletions and substitutions
JP2007531707A (en) 2003-10-15 2007-11-08 ピーディーエル バイオファーマ, インコーポレイテッド Modification of Fc fusion protein serum half-life by mutagenesis of heavy chain constant region positions 250, 314 and / or 428 of IG
GB0324368D0 (en) 2003-10-17 2003-11-19 Univ Cambridge Tech Polypeptides including modified constant regions
WO2005063815A2 (en) 2003-11-12 2005-07-14 Biogen Idec Ma Inc. Fcϝ receptor-binding polypeptide variants and methods related thereto
WO2005047327A2 (en) 2003-11-12 2005-05-26 Biogen Idec Ma Inc. NEONATAL Fc RECEPTOR (FcRn)-BINDING POLYPEPTIDE VARIANTS, DIMERIC Fc BINDING PROTEINS AND METHODS RELATED THERETO
EP1701979A2 (en) 2003-12-03 2006-09-20 Xencor, Inc. Optimized antibodies that target the epidermal growth factor receptor
WO2005056759A2 (en) 2003-12-04 2005-06-23 Xencor, Inc. Methods of generating variant proteins with increased host string content and compositions thereof
BRPI0506771A (en) 2004-01-12 2007-05-22 Applied Molecular Evolution antibody and pharmaceutical composition
WO2005123780A2 (en) 2004-04-09 2005-12-29 Protein Design Labs, Inc. Alteration of fcrn binding affinities or serum half-lives of antibodies by mutagenesis
KR100545720B1 (en) 2004-05-31 2006-01-24 메덱스젠 주식회사 Glycosylated Immunoglobulin and Immunoadhesin comprising the same
BRPI0510674A (en) * 2004-07-15 2007-12-26 Xencor Inc optimized fc variants
WO2006012500A2 (en) 2004-07-23 2006-02-02 Genentech, Inc. Crystallization of antibodies or fragments thereof
EP2213683B1 (en) 2004-08-04 2013-06-05 Mentrik Biotech, LLC Variant Fc regions
US8546543B2 (en) 2004-11-12 2013-10-01 Xencor, Inc. Fc variants that extend antibody half-life
US8367805B2 (en) 2004-11-12 2013-02-05 Xencor, Inc. Fc variants with altered binding to FcRn
DK1919503T3 (en) 2005-08-10 2014-12-15 Macrogenics Inc Identification and preparation of antibodies with variant fc regions and methods of use thereof
CA2624189A1 (en) * 2005-10-03 2007-04-12 Xencor, Inc. Fc variants with optimized fc receptor binding properties
JP4860703B2 (en) 2005-10-06 2012-01-25 ゼンコー・インコーポレイテッド Optimized anti-CD30 antibody
US20070087005A1 (en) 2005-10-14 2007-04-19 Lazar Gregory A Anti-glypican-3 antibody
AU2007212147A1 (en) * 2006-02-03 2007-08-16 Medimmune, Llc Protein formulations
EP2064335A4 (en) 2006-10-16 2011-03-30 Medimmune Llc Molecules with reduced half-lives, compositions and uses thereof
GB0620934D0 (en) 2006-10-20 2006-11-29 Cambridge Antibody Tech Protein variants
EP2612868B1 (en) 2007-11-01 2018-08-15 Astellas Pharma Inc. Immunosuppressive polypeptides and nucleic acids
JP5220435B2 (en) 2008-02-20 2013-06-26 オリンパスメディカルシステムズ株式会社 Cleaning tube and endoscope cleaning / disinfecting device
US8037602B2 (en) 2009-03-27 2011-10-18 Eneron, Inc. Methods of making energy efficient cookware
EP3029066B1 (en) 2010-07-29 2019-02-20 Xencor, Inc. Antibodies with modified isoelectric points
MX354359B (en) 2011-03-29 2018-02-28 Roche Glycart Ag Antibody fc variants.
US10672280B1 (en) 2011-09-29 2020-06-02 Rockwell Collins, Inc. Bimodal user interface system, device, and method for streamlining a user's interface with an aircraft display unit
US9642574B2 (en) 2014-10-17 2017-05-09 Guardhat, Inc. Biometric sensors assembly for a hard hat
US9710002B2 (en) 2015-05-27 2017-07-18 Texas Instruments Incorporated Dynamic biasing circuits for low drop out (LDO) regulators
JP6824666B2 (en) 2016-08-31 2021-02-03 株式会社ジャパンディスプレイ Display device
US11392902B2 (en) 2017-06-06 2022-07-19 United Parcel Service Of America, Inc. Systems, methods, apparatuses and computer program products for providing notification of items for pickup and delivery

Also Published As

Publication number Publication date
US8809503B2 (en) 2014-08-19
US20130156754A1 (en) 2013-06-20
WO2004099249A2 (en) 2004-11-18
US8383109B2 (en) 2013-02-26
CN1867583A (en) 2006-11-22
AU2008261120B2 (en) 2012-03-15
SI2368911T1 (en) 2017-10-30
US9353187B2 (en) 2016-05-31
US20160347837A1 (en) 2016-12-01
BR122018016045B8 (en) 2021-07-27
JP2007525443A (en) 2007-09-06
BRPI0410031A (en) 2006-04-25
US20130156758A1 (en) 2013-06-20
CN102633880A (en) 2012-08-15
KR20050116400A (en) 2005-12-12
US20090081208A1 (en) 2009-03-26
IL265538A (en) 2019-05-30
CA2916863C (en) 2018-08-21
IL247597A0 (en) 2016-11-30
EP2368911A1 (en) 2011-09-28
JP4578467B2 (en) 2010-11-10
WO2004099249A3 (en) 2006-01-26
KR100890586B1 (en) 2009-03-25
US10184000B2 (en) 2019-01-22
US8093359B2 (en) 2012-01-10
US9193798B2 (en) 2015-11-24
US20040132101A1 (en) 2004-07-08
EP3838920A1 (en) 2021-06-23
BR122018016045B1 (en) 2020-10-13
KR100956110B1 (en) 2010-05-10
CN104788565A (en) 2015-07-22
US20120230980A1 (en) 2012-09-13
KR20070116176A (en) 2007-12-06
IL265538B (en) 2020-05-31
US8039592B2 (en) 2011-10-18
CA2524399A1 (en) 2004-11-18
US10183999B2 (en) 2019-01-22
EP1620467A2 (en) 2006-02-01
US20090092599A1 (en) 2009-04-09
AU2008261120A1 (en) 2009-01-15
CA2916863A1 (en) 2004-11-18
CN102633880B (en) 2015-02-25
US8858937B2 (en) 2014-10-14
US20160318993A1 (en) 2016-11-03
CN1867583B (en) 2012-05-23
AU2004236160B2 (en) 2008-10-23
PL2368911T3 (en) 2017-12-29
PL2368911T4 (en) 2017-12-29
US20090068177A1 (en) 2009-03-12
US20160347825A1 (en) 2016-12-01
DK2368911T3 (en) 2017-09-11
EP2368911B1 (en) 2017-05-10
EP3101030B1 (en) 2020-12-23
US20150079082A1 (en) 2015-03-19
ES2638568T3 (en) 2017-10-23
HUE034268T2 (en) 2018-02-28
AU2004236160A1 (en) 2004-11-18
EP3101030A1 (en) 2016-12-07
IL171723A (en) 2014-03-31
US20130243762A1 (en) 2013-09-19

Similar Documents

Publication Publication Date Title
CA2524399C (en) Optimized fc variants and methods for their generation
US8734791B2 (en) Optimized fc variants and methods for their generation
US8093357B2 (en) Optimized Fc variants and methods for their generation
EP2364996B1 (en) Optimized FC variants and methods for their generation
CA2766627C (en) Optimized fc variants and methods for their generation
US20180141997A1 (en) Optimized fc variants and methods for their generation
US20140370021A1 (en) OPTIMIZED Fc VARIANTS AND METHODS FOR THEIR GENERATION

Legal Events

Date Code Title Description
EEER Examination request