CA1301465C - Apparatus and method for cryopreparing biological tissue for ultrastructural analysis - Google Patents

Apparatus and method for cryopreparing biological tissue for ultrastructural analysis

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Publication number
CA1301465C
CA1301465C CA000547937A CA547937A CA1301465C CA 1301465 C CA1301465 C CA 1301465C CA 000547937 A CA000547937 A CA 000547937A CA 547937 A CA547937 A CA 547937A CA 1301465 C CA1301465 C CA 1301465C
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Prior art keywords
sample
sample holder
reservoir
tissue
reservoirs
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CA000547937A
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French (fr)
Inventor
John G. Linner
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University of Texas System
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University of Texas System
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/28Preparing specimens for investigation including physical details of (bio-)chemical methods covered elsewhere, e.g. G01N33/50, C12Q
    • G01N1/42Low-temperature sample treatment, e.g. cryofixation

Abstract

APPARATUS AND METHOD FOR CRYOPREPARING
BIOLOGICAL TISSUE FOR ULTRASTRUCTURAL ANALYSIS

ABSTRACT

This invention relates to apparatus for the cryo-preparation of biological tissue samples for ultrastruc-tural analysis. The use of the apparatus comprises vitrifying a biological tissue sample under cryogenic temperature conditions and ultra low vacuum conditions.
The depressurized, vitrified tissue sample is brought to equilibrium in a sample holder at a temperature of less than -140°C. The tissue sample is then dehydrated while maintained in a state of thermal equilibrium. After reaching equilibrium the tissue sample is optionally infiltrated with a degassed resin followed by a polymeri-zation of the resin to form an embedded tissue sample.

Description

13~
APPARATUS AND METHOD FOR CRYOPREPARING BIOLOGICAL TISSUE
FOR ULTRASTRUCTURAL ANALYSIS

This application is a division of Canadian serial num-ber 495,267 filed November 13, 1985.

The subject matter in this application is related in part to the subject matter in my copending application Canadian Serial No. 460,541 filed August 8, 1984 and assigned to the same assignee.

This invention relates to apparatus and the method for preparing biological tissue samples for ultrastruc-tural analysis or other medical use, i.e. transplantation, by avoiding significant modification of the ultrastructure of tissue during preparation of the samples themselves.
It is well known in the medical arts that to examine tissue samples, and determine the cellular structure and function thereof, the tissue must be "fixed" prior to the application of nearly all analytical methodologies.

Although the phrase "tissue samples" is used through-out this disclosure, the term should be understood to include small tissue samples appropriate for microscopic examination and larger tissue masses such as corneas which are appropriate for transplantation. The definition of tissue samples should be understood to include without limitation sperm, eggs, embryos and blood components. The contemplated utility of the apparatus of this invention is not limited to specific types or sizes of tissue, rather it should be understood to refer to any tissue made up from cells. The apparatus of this invention can be designed or adapted to any size, shape or type of cellular tissue. Therefore, the terms "tissue" and "tissue samples" are used interchangeably and are not limitinq cn i31J~

the uses to which the method and apparatus of this inven-tion can be placed.

Although the examination of tissue by use of various S microscopes or related magnifying apparatus has been practiced for many years, there has been an inherent problem in preparing tissue for use with contemporary high resolution analytical microscopes, such as the STEM
electron microscopes, which permit the examination of sample constituents via X-ray analysis at powers of from 500X to 500,000X with point to point resolution of 2 to 3 Angstrom units.

Specifically, it i8 difficult to interpret the results of tissue analysis while concomitantly assessing the extent of various artifacts produced during the tissue preparation processes. It i8 thus essential that arti-facts be avoided wherever possible. The term "artifact"
refers to a product of artificial character due to extra-neous agency. Another problem results from physicalshrinkage of the tissue sample itself when subjected to the extreme, but necessary for successful preparation, procedures extant in current dogma. In most currently used tissue prçparation steps, tissue shrinkage is in the order of 40% to 50%. This shrinkage inevitably results in alteration of ultrastructure and massive rearrangement of infrastructural resolution. The net result of this is ultrastructural translatiôn damage and inaccurate detail in descriptions via existing analytical procedures.
During the so-called "Golden Age of Morphology" the predominant underlying goal in qualitative and quantita-tive microscopy has been an aesthetically pleasing image.
This goal is readily attainable with the fixation methods and apparatus which are currently available. However, it has become essential that the aesthetically pleasing 13~1465 image, which is produced by the preparation process, also yield a tissue sample which accurately reflects the true condition of tissue in the living organis~, i.e. approaching the "living state". This is the problem which the apparatus of this invention addresses and solves. Magnification apparatus which are currently available for analytical use are technically more advanced than are current tissue preparation techniques which have been previously employed. The method of this invention results in the preparation of tissue sarnples which are readily usable on known magnification and analytical apparatus.
Although the primary thrust of this application is in the preparation of tissue sarnples for analysis by current magnification apparatus, the invention is not intended to be so limited. More specifically, the ~preparation" of tissue should be understood to refer to preparation of tissue for analysis as well as the cryofixation of tissue in anticipation of transplantation, modification, in vitro or in vivo cellular growth, fertilization, animated suspension or the more typical resin impregnation, setting, infiltration and analysis. The apparatus of this invention can be used to prepare tissue for any medical or analytical procedure without the ultrastructural damage previously thought to be inevitable in cryopreparation.
The invention to ~hich this d'v'.s:.onai appiication is directed comprehends in one aspect apparatus for supporting biological tissue during cryopreparation comprising a metallic sample holder including one or more sample reservoirs and energy means associated with the sample holder for supplying radiant energy to the biological tissue contained within the sample reservoirs.
The invention also comprehends apparatus for retaining biological samples during cryopreparation comprising a sample holder including one or more sample reservoirs, the sample holder insulating the one or more sample reservoirs from energy means associated with the sample holder, the energy means supplying radiant energy to the biological samples contained within the sample reservoirs.

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~, 13(~4Ç~5 A still further aspect of the invention comprehends apparatus for retaining biological samples during cryopre-paration comprising a sample holder including a plurality of sample reservoirs, the sample holder insulating the plurality of sample reservoirs from energy means. A plurality of reservoir covers are designed to be inserted into the sample reservoirs in the sample holder, each of the sample reservoirs being adapted to retain one or more biological samples. Energy means is provided for supplying radiant energy to the biological samples contained within the sample reservoirs, the energy means being sized to be fittably re-ceived by a central aperture in the sample holder, and the energy means being adapted to supply radiant heat to the biological samples.
Various other aspects of the invention will become apparent from the further description and preferred embodiments set forth herein.
The apparatus of this invention is to be distinguished from contemporary freeze-drying apparatus. Freeze-drying is a technique which is well known in the art together with the equipment necessary to implement such freeze drying. See, for example, U.S. patent No. 4,232,453.
Although in certain freeze-drying techniques liquid nitrogen is used as a cooling medium, the tissue or sample itself does not attain such temperature.
Freeze-drying normally contemplates sample temperatures of -50C
to -80C. In contrast, the cryopreparation of this 13V1~6;S

invention contemplates sample temperatures of -120C or below. Therefore, for purposes of this application the terms "cryopreparation" and "cryofixation" are used in distinction to conventional "freeze drying" technology (-50C to -80C).

The extreme low temperatures and vacuums used in the practice of the apparatus of thi~ invention have generated unique problems not associated with freeze-drying appa-ratus. For example, sealing devices such as sgueezable0-rings made from elastomeric material do not function effectively at these anticipated cryopreparation tempera-tures and vacuums. Therefore, it is necessary that cryopreparation apparatus be designed to seal various structures at the extremes of temperature and pressure encountered, i.e., the sample chamber to the rest of the apparatus, outside the liguid nitrogen environment. This is but one example of problems which have been encountered in the design of and which are unique to cryopreparation apparatus.

The vacuum levels disclosed and used in the apparatus of this invention cannot be achieved safely with prior art freeze drying equipment. Typical of previous methods for drawing vacuums in freeze drying methods and apparatus is the above-mentioned U. S. Patent 4,232,453 which discloses the use of molecular sieves in glass containers. Molec-ular sieves in easily compromised containers cannot be used safely to create and maintain the required vacuum levels to achieve the partial pressures required for sub-limation of water at the anticipated temperatures (-120C
or below) created by the apparatus of the disclosed invention.

The most common prior art method for preparation of tissue samples for analysis is by means of chemical fixa-13(J1465 tion and organic solvent dehydration. Inherent in prior art processes is the concomitant artifact creation, sample shrinkage and resultant damage to and modification of tissue characteristics. These tissue characteristic modifications, whether in the form of artifacts or the like, require interpretation by the individual or appa-ratus analyzing or evaluating the sample. This intro-duces, in many instances, an unsatisfactory risk of error.

Chemical fixation is a well known technigue and has served the analytical biologist well for many years and undoubtedly will continue to do so in certain limited applications. However, as the use of tissue sample analysis becomes more complex and the use of such analysis becomes more widespread, alternatives to chemical fixation are demanded. This is especially true as advances are being made in the magnification and analytical apparatus which are available. It is necessary that tissue prepara-tion methods and the apparatus necessary to prepare tissuesamples be egually advanced as the analytical tools, i.e., electron microscopes, which are being used to analyze the samples. Obviously, if the technology for tissue sample preparation is behind the technology of microscopy then the advanced microscopes cannot be used to full advantage by the morphologist or other tissue examiner.

Similarly, it is essential that cryopreparation methods and apparatus develop concurrently with other medical technology, i.e., surgical transplant techniques, bio-engineering and biogenetics. In short, cryopreparation is an essential intermediate step in evolving processes using or analyzing cells or tissue. If cryopreparation apparatus does not evolve then the thrust of medical technology into unexplained and unexplored medical arts will be blunted. The apparatus of this ~30~ 5 invention represents the cryopreparation breakthrough that will permit research into the use and preparation of biological tissue to keep pace with other advances in medical technology.

The most common alternative for preparing corneal tissue and to chemical fixation and organic solvent dehydration is freeze drying cryofixed samples. Freeze-drying following cryofixation is a well documented and well known technique for tissue preservation. It has several advantages. Freeze-drying results in a near-instantaneous arrest of cellular metabolism. There is also a stabilization and retention of soluble cell constituents through elimination of solvent contact with the sample. These are significant advantages to cryofixation freeze-drying that have resulted in a great deal of research in attempting to apply cryofixation and freeze-drying techniques to known tissue preparation processes.

Unfortunately, freeze-drying technology inherently possesses a number of disadvantages relevant to tissue preparation methodologies. The primary disadvantage in currently available freeze-drying techniques and apparatus is the inherent formation of ice crystals. As can be readily appreciated, the formation of ice crystals destroys the ultrastructural integrity of the tissue sample being reviewed. The image is distorted and the cytoplasm becomes reticulated. The formation of ice crystals in the sample can also result in a change in pH within microcompartments of the tissue (eutectic formation) which possibly can result in abnormal tertiary conformation of macromolecules. There is also the possibility that proteins will denature and precipitate. These are but a few of the disadvantages which are inherent in the freeze-drying process.

13~14~5 This general topic is discussed in some detail together with other prior art methods in an article entitled Freezing and Drying of Bioloqical Tissues for Electron MicroscoPY, Louis Terracio and Karl G. ~chwabe, published in The Journal of Histochemistry and Cytochem-istry, Volume 29, No. 9 at pp. 1021-1028 (1981). Problems associated with artifact formation are described in Understanding the Artefact Problem in Freeze-Fracture Replication: A Rev w, The Royal Microscopial Society, (1982) at pp. 103-123.

A general principle found applicable to freezing techniques, which has demonstrated utility in the prepa-ration of tissue samples, is that as the cooling rate increases, tissue fluids can be vitrified without the separation of water to extracellular spaces. It has been postulated that regardless of the rate of cooling, ice crystals may still be formed, but as the cooling rates increase the size of the intracellular ice crystals decreases. The small size or absence of ice crystals at high freeze rates is of course a substantial advantage in morphology retention as this results in minimal artifact creation and minimal ultrastructural damage during tissue dehydration. The apparatus of this invention reguires the rapid supercooling of tissue samples to the vitreous phase in less than one second followed by dehydration of the tissue sample while in the state of reduced partial pressure of water vapor, all without substantial ultrastructural damage to the tissue cells.
Historically, the criteria by which the techniques for rapid supercooling have been judged was not the cool-ing rate of the system but simply the temperature of the environment in which the tissue was frozen. Thus, the term rapid supercooling has been applied to any system in which the supercooling agent has a temperature of -150C

` i30~465 g or below. The effectiveness of a cooling system is depen-dent upon the rate at which heat is removed from the sample. Heat transfer is dependent not only on the tem-perature of the freezing system but also on its physical and thermal characteristics, as well as the size and thermal characteristics of the tissue.

The most commonly used technique for rapid super-cooling is to immerse or "quench" the sample in a fluid cooling bath. The most commonly used fluids for quenching are liquid nitrogen, isopentane, propane and fluorocarbons such as Freon 12 and Freon 22. Although liquid nitrogen is generally regarded as an ideal quenching fluid due to its low temperature (-196C), there are inherent disad-vantages in the use of liquid nitrogen due to the occur-rence of tissue surface film boiling caused at least in part by the low heat of vaporization of liquid nitrogen.
Film boiling is a characteristic of liquid nitrogen that inhibits the heat transfer rates by actually insulating the sample.

An alternate prior method for rapid supercooling is reezing on the polished surface of a chilled metal block.
This typically involves opposing the tissue sample to a polished flat metal surface by pressing it firmly against the surface of the metal. Silver and copper are typically used as the polished metal blocks. This method is designed to take advantage of the high thermal conductiv-ities and heat capacities of these metals when cooled to liquid nitrogen or liquid helium temperatures. The crit-ical step in chilling on the surface of a metal is mak~ng firm contact with the dry, chilled metal surface with no rotational, translational or rebounding motion. Certain commercially available apparatus having known utility in the medical arts address and provide "bounce-free" freez-ing. Credit for the development of this apparatus is * Trade Marks ::

13~ ;5 _10 _ generally accorded to Dr. Alan Boyne of the University of Maryland School of Medicine.

There has recently been verification that there is a direct correlation between cooling rate and ultrastruc-tural preservation in quenching fluids. As the freezing rate increases over the range of 100C to 4100C per second (liquid nitrogen - propane), there i 8 a corre-sponding decrease in the size of ice crystals formed and thus an improvement in morphological preservation. Use of such quenching fluids or other supercooling apparatus to vitrify a tissue sample in less than 1 second is preferred.

The critical steps in the subsequent tissue prepara-tion process are invariably stimulated sublimation -dehydration of the supercooled tissue fluids, which have recently been described as a stimulated "molecular distillation" process. Once the appropriate supercooling method has been chosen and implemented, it is sometimes necessary to further process the tissue for microscopic evaluation, since electron microscopes or other magnification apparatus that allow the viewing of frozen hydrated specimens are not readily available. Thus, dehydration is an essential step in the preparation of biological tissue samples for storage and a step which oftentimes results in the destruction via reticulation of the infrastructure and ultrastructure of the tissue.
Tissue cell destruction from dehydration not only impairs analysis by magnification apparatus but also adversely affects the functional characteristics and viability of tissue masses being used, i.e. transplanted.

In certain prior drying techniques, the tissue sample had not been entirely solidified due to eutectic formation as the cellular fluid solutes were concentrated in bound , ~ ~

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water compartments. This transfer of solute occurs while the materlals are in the fluid state when slow cooling is employed. When rapid cooling techniques are used, unique procedures which are distinct from those characteristic of freeze-drying, must be employed in the dehydration step.
Problems result from the fact that dehydration must take place (the water must be removed) in the solid rather than the liquid state, i.e., via sublimation. An alternate procedure which has been used successfully is stimulated molecular distillation. Stimulated molecular distillation refers to a process in which the amount of energy in the antibonding orbitals of surface molecules is elevated, enabling them to escape to the gas phase and not be recaptured by the solid phase.
In the prior art, the freeze substitution approach has involved the removal of tissue water by substituting a solvent or solvent-fixative mixture for the solid phase water at -50 to -80~C. This introduces less severe solvent phase separation and chemical alteration artifacts to a tissue sample than past routine chemical fixation methodologies. From a practical standpoint freeze-drying is complicated by the requirement that the tissue sample be warmed to increase the vapor pressure of the supercooled water and allow sublimation to proceed in a reasonable period of time. The increased temperature, in addition to increasing vapor pressure can produce a series of physical events leading to the expansion of ice crystals and concomitant damage to the ultrastructural morphology of the tissue sample. Many of the physical events which occur during the warming process have to do with transitions in the physical state of the water which is present. Changes which are typically encountered are glass transition, devitrification and recrystallization with an ensuing series of crystal lattice configuration transitions.

13014~i Thus it can be appreciated that freeze-drying tech-nology and cryopreparation techniques present an excep-tional opportunity for the preparation of tissue samples for morphological examination. However, inherent in the use of freeze-drying techniques are problems associated with dehydration and fixation of samples. These are the problems which are addressed by the process and apparatus of this invention.

The cryopreparation process of this invention has demonstrated an extraordinary application in the trans-planting of corneal tissue. Prior to this invention attempts to transplant corneas which involved a necessary freezing or freeze-drying of the corneas after removal lS from the donor invariably resulted in a clouded cornea upon transplanting. This physical condition of the transplanted cornea was caused by crystal formation in the cornea itself and concomitant damage to the stroma. Use of the apparatus of this invention has enabled ophthal-mologists to cryoprepare corneas and to then transplantthose corneas to recipients with virtually negligible clouding or crystal formation. The ability to so trans-plant corneas represents an exceptional advantage to the process of this invention as well as a medical break-through in corneal transplant surgery.

One advantage of the apparatus of this invention isthe ability to cryoprepare tissue without overt disruption or destruction of the morphological characteristics of the ultrastructure of tissue cells. The apparatus of this invention permits the cryopreparation of tissue by dehydrating tissue maintained in the solid, vitreous phase without creating unnecessary artifacts which restrict interpretation by conventional analytical apparatus.

Figure l is a schematic flow diagram of a method associated with the use of the apparatus of this inven-tion.

S Figure 2 is a schematic drawing of the apparatus of this invention.

Figure 3 is an exploded schematic drawing of the portion of the apparatus of this invention connecting the vacuum means to the sample chamber.

Figure 4 is an exploded schematic drawing of the sample chamber and sample holder of this invention; as shown with Fi ~ e l.

Figure 5 is a schematic view of the sample holder of this invention.

Figure 6 is a schematic view of the tissue reservoir cover used in the sample holder of this invention.
This invention relates to apparatus and the method for the cryopreparation of biological tissue samples. The apparatus includes components for implementing the stimulated dehydration of biological tissue under severely depressurized conditions. The depressurized, vitrified tissue sample is brought to equilibrium at a temperature of less than -140C. The tissue sample is then dehydrated while maintained in a state of equilibrium. After removal of tissue water, the tissue sample is optionally infil-trated with a degassed resin followed by a polymerizationof the resin to form an embedded tissue sample. In other applications of the apparatus and method of this invention the dehydrated tissue sample can be used, i.e. trans-planted, without any infiltration or degassing steps.

13~1465 The apparatus of this invention includes a sample holder for retaining vitrified biological tissue. The sample holder and the vitrified tissue are maintained at cryogenic temperatures while the tissue sample is being S dehydrated. Ultra-high vacuum means are used to depres-surize the atmosphere of the sample holder to permit the desired sublimation; equilibration and dehydration procedures.

The apparatus of the invention is used in combination with conventional apparatus to vitrify biological tissue.
The preferred vitrifying apparatus is a metal rod adapted to transform the tissue to the vitreous phase at a temper-ature of -123C or below. The vitrified tissue is inserted in a sample holder which is fittably received by a sample chamber which in turn can be inserted or with-drawn from a cryogenic bath.

The ultra high vacuum assembly used to depressurize the sample chamber provides a pressure of from lxlO 8 Torr to lxlO 10 Torr. The ultra-high vacuum assembly is removably attached to the sample chamber.

In practice the apparatus of this invention is used to cryoprepare biological tissue for analysis or other medical end use, i.e. transplantation. The apparatus is adaptable to an infinite variety of tissue shapes, sizes and configurations. The apparatus of this invention results in the cryopreparation of biological tissue resulting in a final product whose ultrastructure is substantially unmodified and which is ready for analysis and end uses which have been heretofore impossible in the medical arts.

In the apparatus of this invention it is a fundamen-tal prerequisite that the desired tissue is obtained.

- 13V1~65 _ 15 -Tissue samples are collected by a variety of means, i.e., surgical extraction, withdrawn blood samples, binders and any of a variety of other techniques which are well known and conventional. The particular method of obtaining the biological sample is not limiting on the apparatus of this invention. However, the preparation of the tissue sample in the apparatus of this invention is enhanced if the tissue sample is processed as soon after excising as is possible.
The preparation of the tissue sample takes place immediately as it is received. The tissue sample cannot be retained in a fixative, i.e., formaldehyde, or another biologically active stabilizing solution, in an attempt to lS maintain the sample during shipping, storage or other necessary operations. It is also critical that the sample not be routinely frozen or otherwise physically modified prior to preparation according to the method of this invention. The sample may later be physically sectioned or otherwise physically prepared for long-term storage in apparatus or use with various currently available com-mercial analytical apparatus.

In one application of the apparatus of this invention a tissue sample is prepared for analysis. The preferred optimum biological sample for preparation in the apparatus of this invention is a fresh one cubic millimeter biopsy sample. This sample must be vitrified as soon as pos-sible. By vitrifying or vitrification it is intended to make reference to a process which results in cryofixation of the sample which is different from "frozen." In the process of vitrifying, the cooling apparatus which is used renders the sample in the vitreous phase such that soluble and insoluble moities contained in the tissue sample are not disturbed, translated, or altered nor are they concen-trated (as eutectics). By definition, a vitrified liquid 13~ 5 will shatter when undergoing a shear stress, e.g., window glass. The vitreous phase involves the conversion of liquid water into an amorphous or "glass" phase. This is accomplished by rapidly supercooling the tissue sample by opposing it "bounce-free" onto the highly polished (mirror-like) condensate-free surface of a metal rod maintained at about -196C. These operations have been discussed previously in the prior art section of this disclosure. It is preferred that such rapid-supercooling be completed in less than one second.

Of particular utility in the process and apparatus of this invention is a "bounce-free" freezing apparatus which has been identified in association with Dr. Alan Boyne of the University of Maryland School of Medicine. In this freezing apparatus, a copper block is used to vitrify the tissue sample. This vitrification in conjunction with a supercooled fluid such as liquid nitrogen, helium, propane or the various Freons will cause the tissue sample fluids to supercool to the amorphous state before and/or without the formation of noticeable or resolvable cell water ice crystals. It is desirable in the preferred embodiment that the now vitrified tissue sample be maintained at a temperature of less than about -120C and preferably less than -140C during storage and transfer operations prior to removal of the tissue water.

Temperature control is essential to prevent ice crystallization. It is thought that ice crystallization begins to occur at about -123C. This is, however, dependent on the chemicai constituents of the cellular water. Applicant has therefore selected -140C as the preferred temperature. It should be understood that the desired result is to maintain the temperature below that at which ice begins to crystallize and that -123C and * Trade Mark 1301~
17~ --140C have been selected based on current experimentation. Therefore, for purposes of this application, the preferred tissue sample temperature to be maintained is below -123C while the more preferred temperature is below -140C and the most preferred temperature is -196C or below.

Depending on the anticipated time lag between super-cooling of the sample and dehydration of the sample, it may be stored submerged in a liquid nitrogen dewar. Once the sample has been dried and embedded properly it may be stored virtually indefinitely without cytoplasmic reticu-lation or other forms of cellular catabolism which will cause modifications and crystal lattice transitions resulting in undesirable artifacts which render the tissue uninterpretable as analytical data.

After vitrifying, and while maintaining the tissue sample at a temperature of less than -140C it is trans-ferred via a specimen transport and fed to a specimenholder in vacuo. The specimen holder (also commonly referred to as a sample holder) is maintained in a temper-ature controlled container. The container and specimen holder are both preferably maintained at temperatures below -140C. In the most preferred embodiment of this invention, liquid nitrogen temperatures of -196C are maintained. The reason that -140C is preferred is that pure water, existing in the vitreous phase when at liquid nitrogen temperatures, will begin to initiate cubic ice crystallization at -123C. As discussed in the prior art section of this disclosure, ice crystallization causes ultrastructural damage, i.e., reticulation to the mor-phology of tissue samples.

Next, the atmosphere surrounding the tissue sample, specimen holder and container is depressurized. This is .

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typically done by drawing a vacuum on the sample holder with conventional mechanical vacuum apparatus. The vacuum is drawn to a level of 3 x 10 9 Torr in less than 300 minutes. In other embodiments of this invention, the vacuum which is drawn is from 1 x 10 8 Torr to 1 x 10 10 Torr accomplished in less than 300 minutes. These pres-sures remain at approximately 3 x 10 9 Torr throughout the remainder of the prescribed routine until all the tissue water has been removed. Throughout equilibration of the system (10-100 hours), the specimen temperature is main-tained by liguid nitrogen or other suitable cooling means while the vacuum is being drawn and maintained.

At this time the tissue sample is at ultra low pressure and exceptionally low equilibrium cryo-tempera-ture. After equilibration is obtained (with equilibrium temperature below -140C), the vitreous water which is found in the tissue sample will begin to sublime as energy equal to the heat of sublimation is intermittantly and incrementally supplied to the sublimation front found in the tissue. This is a slow process but one which is critical to the preparation of the sample. It is an important requirement that the sample be permitted enough time to allow it to reach equilibrium after each addition of energy. By equilibrate it i~ meant that the tempera-ture of the tissue sample no longer changes over a l to 5 hour time period and preferably a 2 to 4 hour time interval. In a typical tissue preparation process the sample is rapidly vitrified to -196C and maintained below -140C during storage/transfer to the sample holder in the sublimation (drying) apparatus. After appropriate equili-bration time the equilibrium temperature will be somewhere between -140C and -196C. During this entire equilibra-tion process a critical ultra-low pressure is maintained at 3 x 10 9 Torr or below.

After the equilibration process, it would take an exceptional length of time for any appreciable amount of water to evaporate from the sample if no energy (heat) of sublimation were added to the system. Estimates are in terms of years for the water to evaporate at temperatures and pressures which are associated with the method of this invention. Therefore, in the most preferred embodiment of this invention, a secondary energy source (heating? i8 added to excite the sublimating water molecules without causing damage to the ultrastructure of the dry tissue sample. Radiant photon energy, having a particular wavelength, is thought to be an especially useful approach to accomplish this goal. Sublimation enerqy via microwave, laser systems and magnetic energy are also appropriate. The most preferred secondary source is the nuclear magnetic resonance or electron spin resonance approach in combination with the above. At equilibrium, the temperature of the tissue will not change unless the ambient parameters of the immediate environment (radiant energy predominates, i.e., room temperature is 27C) change. This is the general identification of the end point of system equilibrium.

Subsequent to the tissue sample reaching equilibrium, it is necessary to remove the supercooled solid water and/or presently unresolvable ice crystals (20 nanometers diameter or less) which have formed in the tissue during the vitrification operation. This portion of the dehydra-tion process is absolutely critical and is the step where most potential disruption and reticulation of the ultra-structure in the tissue will express itself. This is accomplished by gradually replacing the energy of sublima-tion in the sample by minimal increments of stimulated energy per hour. The optimal condition is to have no tissue temperature increases.

13V14~S

By so raising the thermal energy equivalent to the latent heat of sublimation all of the solid water, whether micro-ice crystals or amorphous supercooled water, is effectively removed from the tissue sample by the sur-rounding cryosystem. This drying may be accomplished attemperatures between -150C and -80C. This regimen of greater temperature latitude will provide variable result~
and is possible due to elevation of devitrification temperatures by the solutes that are dissolved in cell water at varying concentrations. With appropriate instru-mentation, i.e. residual gas analyzers, it is possible to determine when all cell water has been removed. At that point, the energy increase can be accelerated to produce a final specimen temperature 3C above room temperature (28C - 30C). Thus, with this instrumentation a signifi-cant advantage in the process of this invention is obtained.

The now dehydrated tissue sample has been permitted to reach room temperature plus 3C. Even though reaching room temperature the vacuum is maintained at the original exceptionally ultra-low levels as has the temperature ~urrounding the sample. Room temperature for purposes of this application should be understood to be approximately 24C - 27C. There may logically be variations in this temperature level.

A person of ordinary skill in the art can readily appreciate that control of temperatu~esthroughout the processes of vitrification, equilibration, sublimation and dehydration are essential. The precise temperatures at 30 which the tissue is maintained and the rate that the tissue temperature is changed are crucial although varied for different cellular structures. A typical routine for a cell mass such as a cornea would re~uire the initial vitrification of the cornea tissue at -190C or below.

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13~14!E~5 - 21 ~
The sample is immediately heated to -150~C in approximately 4 hours. During the equilibrium, sublimation, dehydration stage the tissue sample is heated from -150C to -70C in 60 hours (rate = 1.333C/hr.). The drying process begins at approximately -119C and is completed before devitrification at -80C. The sample is then heated from -70C to +25~C in 4 hours. Generally the sample is heated to slightly above room temperature to prevent water condensation from invading the sample.
At thisjuncture, the investigator has the option of exposing the tissue to osmium vapors for approximately one hour to provide contrast enhancement via electron density. This may be omitted if proven to be deleterious to the moiety of interest or if the ultimate goal is clinical use such as in corneal surgical transplantation. In this case, the tissue sample would be slowly brought to atmospheric pressure and stored as necessary for later rehydration and use.
If the investigator's option is to expose the tissue to osmium vapors, the osmium vapour is removed by recrystallization by cryoprecipitation. In other established fixation processes, paraformaldehyde and/or gluteraldehyde in buffer solution is used. These materials are typically referred to as chemical-fixative materials. The most preferred material which is typically added is osmium tetraoxide. This material will enhance the resolution and contrast of the various constituents of the tissue for the various analytical apparatus which might be used to interpret the tissue sample.
For samples prepared for analysis a degassed resin is then added to the tissue while still maintaining the depressuriæed condition. This is typically referred to as resin infiltration and results in an embedded tissue sample. Resins which have shown utility in past methods are equally applicable to the method of this invention. See for example United States patent Nos. 3,679,450: 4,100,158; 4,120,991 and 4,278,701.

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Subsequent to these steps the tissue sample and resin are brought to atmospheric pressure by slowly admitting air through the resin port. The embedded tissue sample which has resulted from the resin application process is removed and the resin is polymerized at its prescribed temperature. The particular method of polymerization is largely dependent on the resin that is used. Typically, the tissue sample i8 polymerized by heat application in an oven for 12 hours. A normal temperature would be 60C, but may be as low as -80C if necessary. It is essential that the polymerization step be accomplished without damage to the tissue ultra-structure.

Following polymerization the tissue sample can then be stored at room temperature, thin sectioned, stained or further prepared for other analysis. However, having been dehydrated in the fashion disclosed by this invention the sample is maintained in a cryofixed state which is readily interpretable by conventional ultramicrotomes and electron microscopes and provides the basis for exceptionally meaningful analysis of tissue samples with a significant alteration of and reduction of artifacts concomitantly reducing or eliminating past constraints thought to be ubi~uitous in fixation and/or tissue preparation for visual analysis.

The actual relating of structure to function in these biological tissues is done by routine ultrathin sectioning with an enormous expansion of applicable staining methods heretofore deemed unapproachable via conventional electron microscopy, (i.e., immunological analysis of any soluble moieties, sugars, lipids and soluble proteins), enzyme cytochemistry, X-ray dispensive STEM analysis, tissue transplant preparations, microprobe analysis, autoradio-graphy (especially of soluble compounds) and pharma-ceutical preparations.

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Other apparatus are available for the execution of this hierarchy, but none have produced the result expected as they do not incorporate in totality the required, defined parameters discussed earlier. The apparatus which is used in the practice of the method of this invention is illustrated schematically in Figures 2 through 6.

The rapid freezing attained by the apparatus of the Alan Boyne type is preferred to the practice of the process of this invention. Liquid nitrogen and other types of quenching baths in conjunction with chilled metal applications are used in the process of this invention to the extent they provide the vitrified phase of cell water in less than one second. A liquid nitrogen quenching bath is used to lower and maintain the temperature of the tissue sample which is included in the tissue holder. It should be noted that while the tissue sample is maintained in the liquid nitrogen condition, it is necessary that tubulation access the various staining and fixation materials which are optionally preferred in the process of this invention, as well as the various resins which are ultimately used to embed the tissue samples of this invention prior to polymerization. Again, each of these functions is illustrated schematically in the attached figures. However, it should be understood that these are not intended to be limiting features of this invention but merely illustrative of available technology.

In designing the apparatus or in selecting the apparatus for use in the method of this invention, it is necessary to understand the effects of the exceptionally low temperatures and pressures on various materials. For that reason, portions of the apparatus of this invention used to treat the material while in the vitrified state are typically made from stainless steel. Other materials may well be equally viable. Likewise, portions of the apparatus of this invention are made from or coated with Teflon+, a Dupont manufactured material which consists in a major portion of tetrafluorans.

S Figure 2 illustrates schematically the apparatus of this invention. As shown in Figure 2, the apparatus is broadly categorized into a control panel 10 and the remainder of the apparatus used to vitrify, sublime and equilibrate the tiscue. Microprocessor 11 of control panel 10 controls a turbomolecular pump 30. The control by microprocessor 11 is primarily of the revolutions per minute at which the components of the turbomolecular pump 30 are rotated and the temperature of the two main bear-ings in the turbo-molecular pump.
Digital vacuum gauge 12 of control panel 10 is connected to the apparatus in several places. In addi-tion, the digital vacuum gauge 12 is attached to mechan-ical pumps to provide digital readings of both the low vacuum caused by the mechanical pumps and the ultra high vacuum caused by the turbomolecular pump.

The next component of control panel 10 i8 a residual gas analyzer 13. Residual gas analyzer 13 functions by reading the partial pressure of each gas in the sample chamber 90. Included in the analyzer 13 is a quadrapole mass spectrometer. This instrument can read the atomic weight of each gas present in the sample chamber 90. In addition, residual gas analyzer 13 is used to determine the water vapor levels in the chamber which can be used to determine the end point for dehydration.

Microprocessor 14 is the component of control panel 10 used to read and control the temperature of the tissue samples in sample holder 100 (see Figure 4). Micro-processor 14 reads the temperature of the metal supporting , ' ' ' ' ' ~ ' ~3V1~65 the tissue sample in sample holder 100 and does not contact the sample itself. The programmable features of microprocessor 14 enable the implementation of a tempera-ture control function as well as a temperature monitoring function.

Component 15 of control panel 10 is a chart recorder for microprocessor 14. Chart recorder 15 provides a graphic illustration of temperatures measured by micro-processor 14.

Mechanical pumps 20 (backing pump) and 21 (roughpump) are located in the control panel 10 as well as in conjunction with the main apparatus. Mechanical pump 20 is activated to draw the backing vacuum on the turbo-molecular pump system. The initial vacuum is typically lxlO 3 Torr. The mechanical pump 20 is also connected to molecular sieve trap 22 to trap any hydrocarbons that may be going back to the turbomolecular pump 30 from the mechanical pump 20. It is essential that no hydrocarbons reach the turbomolecular pump 30. The mechanical pump 20 and the molecular sieve trap 22 are arranged in series so that no hydrocarbons can bypass molecular sieve trap 22.

Molecular sieve trap 22 is connected to turbomolecu-lar pump 30 by T connection 23. Low vacuum gauge head 24 extends from T connection 23 and is connected to the digital vacuum gauge 12.

In the preferred embodiment of this apparatus a solenoid valve 25 is connected to T connection 23 at the point illustrated by Figure 2. The solenoid valve is used for a backing line (not illustrated) for dry nitrogen gas being connected to the turbomolecular pump 30. In the event that the vacuum or ultra-high vacuum system malfunc-:
`:

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tions and stops, the chamber is filled with inert nitrogen gas instead of moisture and hydrocarbon-containing air.

Turbomolecular pump 30 is used to create the ultra high vacuum of 1 X 10 8 Torr to 1 X 10 10 Torr required to properly practice the process of this invention. The ultra high vacuum pump 30 can be any of a variety of commercially available vacuum pumping apparatus. The preferred embodiment is a turbomolecular pump and in particular a turbomolecular pump manufactured by Leybold-Heraeus (Model TMP-360). It is essential that the ultra high vacuum pump, whether it is a turbomolecular pump or not, yield a hydrocarbon free vacuum. As mentioned previously, the mechanical pump 20 is used to pump out gases which are transmitted through the ultra high vacuum pump 30 from sample chamber 90.

In the preferred embodiment of this invention a cooling fan 31 is used to cool the bearings of the turbo-molecular pump or other ultra high vacuum pump 30. A
heating bakeout jacket 32 heats the walls of the ultra high vacuum pump 30 while in operation to ensure that gases are desorbed from the inner surfaces of the ultra high vacuum pump. These gases and even liquids are converted from condensation on the inner surfaces of the turbomolecular pump to result in gases thus enhancing the vacuum created by the turbomolecular pump 30. Thermo-couple 33 provides the connection to the energy source (not shown) for heating bakeout jacket 32.

"Conflat"flange 40 is used to seal the turbomolecular pump to a first spool S0. "Conflat"is a trademark of Varian Industries, Inc. and describes a brand of flange.
The type of flange associated with "Conflat" is well known to those skilled in the art and can generally be described as a first surface having a knife edge designed to pene-13~}1465 trate a second abutting surface which is a soft metal.
Although many state of the art sealing devices will function effectively to seal the members at the ultra high vacuums and temperatures desired, it has been found most preferable to use a 100 cf Conflat flange which i8 a stainless steel flange with a copper 0-ring seal. Of great importance in Conflat flange seal 40 is the fact that it functions effectively at temperatures up to 150C
during bakeout of the apparatus. This permits the effec-tive formation of a seal with relatively standard sealingmeans. It would be virtually impossible to form the seal necessary if flange 40 were sealed with conventional, squeezable 0-rings which are typically made from elastomeric material.

Spool 50 provides the conduit from the turbomolecular pump 30 to a gate valve 60. Spool piece 50 includes four Conflat flanges. The first is the common Conflat flange 40 with turbomolecular pump 30. The second is Conflat flange 51. The third and fourth Conflat flanges are identified by numerals 52 and 53. Conflat flange 52 connects spool 50 to the residual gas analyzer 13 sensing head while Conflat flange 53 provides the seal between the spool 50 and a Bayard-Alpert gauge.

An electropneumatic, ultra high vacuum pendulum gate valve 60 comprises the main valve isolating the turbomo-lecular pump 30 from the sample chamber 90. A piston contained within piston housing 61 provides the mechanism for opening and closing gate valve 60. Solenoid valve 62 and nitrogen gas are used to actuate the opening and closing of gate valve 60.

A second spool piece 70 is illustrated in Figure 2 but in more specific detail by Figure 3. Reference should be made to Figure 3. Second spool piece 70 provides 13C114~5 _28 -feedthrough from the pendulum gate valve 60 to the sample chamber 90. Spool piece 70 has extensions 71, 72, 74 and 78 connected to the main portion of the spool piece housing. Flange 71 provides tubulation for electrical feedthrough to the control panel 10 from the sample chamber 90. Flange 72 is tubulation for the low pressure vacuum head. At the exterior end of tube 72 is located low vacuum gauge head 73. Low vacuum gauge head 73 is connected to digital vacuum gauge 12. An ultra high vacuum valve 75 to mechanical pump 21 is located at the end portion of extension 74 from spool piece 70. The valve 75 acts to control the preliminary or "rough" vacuum drawn on sample chamber 90. Conflat flanges 76 and 77 are used to seal spool piece 70 to gate valve 60 and to ceramic insulator spool 80. The fourth extension from spool piece 70 is overpressure relief valve 78 shown by phantom line in Figure 3.

Ceramic insulator spool 80 is inserted between spool piece 70 and sample chamber 90. Insulator spool 80 functions to prevent gross heat transfer from the elements of the apparatus above spool piece 70 to the cryogenic dewar 99 below (see Figure 4). Without insulator spool 80 frost and ice fre~uently develop on the exterior of the ultra-high vacuum pump assembly 30 and other connected elements. Ceramic insulator spool 80 also permits more efficient utilization of the supercooling material i.e.
liquid nitrogen.

The sample chamber 90 is used to retain the sample holder 100. These components are illustrated in Figures 4 and 5. The sample chamber apparatus 90 includes a resin containing chamber 95 and a glass window 96 to provide visual access to the resin containing chamber 95. A gold sealed ultra high vacuum valve 97 and tubulation 98 to provide access for the resin into the sample chamber 90.

13()146S
_ 29 -Glass tube 91 is attached to sample chamber 90 via glass to metal adapter 92 and tubulation 88 which in turn is connected to a metal "T" flange 93. Calibrated leak valve 94 is used to flush or permeate the sample chamber 90 with dry nitrogen gas or other inert material. The tube 91 is used to include osmium tetraoxide crystals for introduction of osmium vapors into the sample chamber 90 during staining operations. Support members 94 are used to maintain the relative spacing of tubulation 88 and 98 from the housing of sample chamber 90. Cryogenic dewar 99 is used to maintain the cryogenic cooling means, i.e. liquid nitrogen. It will of course be appreciated that the staining and fixation elements of the apparatus of the invention are not used during cryopreparation of corneal tissue for surgical procedures.
In the most preferred embodiment of the apparatus of this lS invention a device is provided for sensing and automatically controlling the level of supercoolant, i.e. liquid nitrogen, in cryogenic dewar 99. Inherent in the use of liquid nitrogen or other similar coolants is the boiling off of the coolant over a period of time. Thus the coolant level must be periodically replenished to maintain the desired level of cooling. This can be accomplished manually or a mechanism can be installed for automatically sensing and replenishing the coolant level.
The sample holder 100, as shown in Figures 5 and 6, is used to retain the actual tissue samples. Typically the cryogenic bath environment 99 is liquid nitrogen contained by a dewar. The essential characteristic is that the tissuetemperature must not exceed -140C. The thermoconductivity of the cryogenic energy from the cryogenic bath environment 99 to the sample holder 1~0 is inherent in the structure. Reference here is made specifically to Figure 4.
In the most preferred embodiment of this invention radiant heating means 125 are provided to permit a source ~3{)1~6S

of radiant energy to the tissue samples. Typically the radiant heating means are controlled by rheostats or thermostats. Temperature indicating means such as iden-tified as component 14 of control panel 10 are typically used so that the temperature of the environment and tissue samples can be specifically controlled. In the preferred embodiment of this invention the radiant heating means and temperature indicating means are all operated by a micro-processor of a computer within precise defined ranges.

Other forms of energy are equally useful with the apparatus of this invention. More particularly, electro-magnetic energy sources such as microwaves, radio waves, accoustic sound waves, visual light waves and ultraviolet or near ultraviolet waves may be used. Magnetic flux is also useful, especially in combination with any of the above enumerated energy forms. Combinations of the above may be used depending on the application and sample to which the apparatus is placed. ~trect infrared r~diation should be avoided. Sample characteristics are of paramount impor~ance in determining the energy source which is ultimately selected.

In actual operation a tissue sample is vitrified to liquid nitrogen temperatures, i.e., less than -140C. The tissue is then transferred from a storage dewar to the sample holder 100 under liquid nitrogen temperatures with prechilled forceps.

The sample holder 100 is placed into the precooled sample chamber 90. Thermocouple wire 102 extending from sample holder 100 is then connected to mating wire 104 extending down from spool piece 70 (see Figure 3). Like-wise, heater wire 103 is then connected to mating flow through wire 105 extending from spool piece 70. The specimen chamber 90 is then connected to the spool 70 via 13~1~65 3]

Conflat flange 77. This connection must be accomplished in the liguid nitrogen bath. Mechanical pump 21 is then activated and the spool 70 and sample chamber 90 are evacuated (rouqh pumped) to approximately l x 10 3 Torr.
The valves connecting the mechanical pump to sample chamber 90 is then closed and the main valve 60 between the turbomolecular pump 30 and sample chamber 90 is opened. At this time the drying process begins.

The system is allowed to thermally equilibrate while being constantly monitored by the instrumentation in control panel 10. The turbomolecular pump draws a vacuum of approximately 1 x lO 8 Torr to 1 x 10 10 Torr. The samples themselves are monitored by the residual gas analyzer 13 which includes a quadrapole mass spectrometer.

When the tissue is in equilibrium as indicated by no change in temperature for one to five and preferably two to four hours, the temperature controller is raised from -150C to about -70C. Preferably the tempeature is raised at a rate of 1C per hour to 3C per hour or more.
In the most preferred embodiment the temperature is raised at a rate of from 1C per hour to 10C per hour. When the residual gas analyzer 13 shows no increase in water vapor after an increase in temperature the tissue is determined to be dry (typically at -85C to -70C). The temperature is then increased to 25C. When the tissue has reached 25C the liquid nitrogen level in the dewar is allowed to drop and the outside walls of the sample chamber 90 are warmed to room temperature.

Optionally osmium vapor may then be introduced through glass to metal adapter 92. Subsequently the osmium vapors are removed by recrystallization in a liquid nitrogen trap. Also, the resin material is added from 13~ S

resin chamber 95 through tubulation 98. The tissue may then be removed to polymerize the resin.

Figure 1 is a schematic illustration of the process for use of the equipment of this invention. The portion of Figure l which is included within a dotted line is not asserted to be new or novel, only the apparatus which is used to implement these steps is new and novel. As can be readily under~tood from the foregoing description and the flow chart of Figure 1, the essence of this invention amounts to vitrification, molecular distillation, sublima-tion, dehydration and tissue equilibration. This is a process and result which has not been heretofore thought possible. By use of the apparatus of this invention, it is possible to achieve medical goals heretofore thought to be impossible.

Although the preferred embodiment of the apparatus of this invention has been described hereinabove in some detail, it should be appreciated that a variety of embodi-ments will be readily available to a person designing cryopreparation apparatus for a specific end use. The description of the apparatus of this invention is not intended to be limiting on this invention, but is merely illustrative of the preferred embodiment of this inven-tion. Other apparatus and components which incorporate modifications or changes to that which has been described herein are equally included within this application.

It is essential to the proper functioning of the apparatus of this inVention that the sample holder 100 be sized and designed to be fittably received by sample chamber 90 and to maintain one or more tissue samples in the proper condition of vitrification during equili-bration, sublimation and dehydration. The sample holder 100, which has shown specific utility in the apparatus of 13~J1~5 this invention, is illustrated more specifically in Figures 4, 5 and 6.

Referring now specifically to Figure 5, the sample holder 100 consists of a solid block of metal llO, prefer-ably copper, silver, or gold, and combinations or alloysof copper, silver and gold. In the most preferred embodi-ment an alloy of silver and copper plated with gold is used. A plurality of wells 111 have been created in one surface of metal block 110. A central aperture 126 is also found in metal block llO. Radiant heat means 125 is inserted in aperture 126. The wells 111 create tissue reservoirs. The cryoprepared tissue samples are individ-ually inserted into tissue reservoirs 111 with prechilled forceps as previously disclosed.

The tissue samples are then covered with reservoir cover 113. Reservoir cover 113 includes a wire mesh section 114 and a side wall 115. The configuration of reservoir cover 113 is shown with more specificity in Figure 6. Wire mesh section 114 is attached to side wall 115 by special vacuum adhesives. Solder is not appro-priate because of the out-gas properties of most solders.
The finer the mesh of 114 the more effective the desired gas transfer. Reservoir cover 113 also functions to protect the tissue samples from the effects of sudden 2S changes in pressure such as when the gate valve 60 is opened or closed.

Teflon spacers 120 are intermittently spaced around the exterior surface of solid metal block 110 to provide the proper spacing from the wal~or other chilled surface of sample chamber 90. A Teflon ~sleeve 119 is threaded into central aperture 126 to protect connecting wires 102 and 103. The thermocouple connection is found at 122 on the uppermost surface of sample holder 100. Although the 13~
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sample holder 100 is shown in a size and configuration which is appropriate for cryopreparation of tissue samples for analysis, it should be understood that a person of ordinary skill in the art can equally prepare a ~ample holder to accommodate larger tissue masses or other forms of tissue.

In actual practice, individual tissue samples are placed in reservoirs 111 and reservoir cover 113 is inserted over the top of the tissue sample. As illus-trated by Eigure 5, the covers 113 extend slightly abovethe surface of sample holder 100 to provide means for grasping the covers 113 during insertion or removal. In the most preferred embodiment of this invention slits 116 are provided in side wall 115 to give some flexibility to the covers 113, again to assist insertion and removal.
The apertured surface 114 of covers 113 permits dehydra-tion and sublimation without forming unnecessary moisture on the walls of reservoirs 111. It should also be under-stood that the preferred material for use in forming solid metal block 110 is copper although other materials, i.e.
silver, gold, and alloys or combinations of copper, silver and gold, have been shown to be equally viable. The characterizing function of solid metal block 110 is the ability to transmit ultra low temperatures to the tissue samples and to maintain performance characteristics under the ultra high vacuum and ultra low temperature conditions of the cryopreparation apparatus and process of this invention.

Radiant heating means 125 are illustrated in Figure 5 and provide a source of radiant heat to the tissue samples. Radiant heating means 125 are controlled by control panel lO. Control panel lO permits infinite variability to the radiant heating means. In particular, temperature reader/recorder 14 and chart recorder 15 ; :
,~.~ .

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13~ 65 maintain information and control over the temperature of tissue reservoirs 111 and the tissue samples contained therein. As has been specifically pointed out herein-above, control of sample temperature and the environmental temperature surrounding the tissue samples is absolutely essential to the effective functionality of the apparatus of this invention.

The most preferred embodiment of the sample holder 100 is illustrated in Figure 5. Included in the most preferred embodiment is radiant heating means 125 which are shown in aperture 126. The most preferred form of radiant heating means 125 is a 220 volt/100 watt cartridge heater. The heating system is made more efficient by coating the interior, polished (spectral) surface of side wall 115 of reservoir cover 113 with a material which permits the efficient transfer of radiation energy to the specimen. Thus, in the preferred copper embodiment, the walls 115 are treated with potassium sulfide to turn the interior surface walls black and thus provide the mechanism for controlled radiant heating of the tissue sample. In some embodiments the interior surfaces of wells 111 are likewise spectral.

Thus, the radiant heating means, i.e. cartridge heater 125, is controlled by temperature reader/recorder 14. The heating mechanism is selectively activated manually or preferably by a programmable computer or microprocessor to maintain the desired temperature or temperature rate of change. Upon heating the metal block 110 conducts heat energy to the tissue reservoirs 111 and 30 the heat energy is absorbed by the spectral coating on reservoir cover 113 and/or side wall 115. The spectral coating then acts as the source of radiant heat to the tissue samples.

_36 _ Although the preferred embodiment of the specimen holder of this invention has been described hereinabove in some detail, it should be appreciated that a variety of embodiments will be readily available to a person design-S ing an apparatus for a specific end use. The descriptionof the preferred sample holder of this invention is not intended to be limiting on this invention, but is merely illustrative of the preferred embodiment of this inven-tion. Other specimen holders which incorporate modifica-tions or changes to that which has been described herein-- above are equally included within this application.

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SUPPLEMENTARY DISCLOSURE
In the disclosure as originally framed and with reference to Figure 5, it was noted that the sample holder 100 consisted of a solid block of metal 110, preferably copper, silver or gold and combinations or alloys of copper, silver and gold. A more preferred embodiment was indicated to be an alloy of silver and copper plated with gold.
A holder made from or made in part with other thermally conductive materials such as sapphire and diamond is also operable and useful in carrying out the invention.
Accordingly the invention comprehends in a broader aspect apparatus for supporting or retaining biological tissue during cryopreparation comprising a thermally conductive sample holder including one or more reservoirs. In the preferred aspects the sample holder is made from one or more materials selected from the group consisting of copper, silver, gold, sapphire, diamond and combinations thereof. There is also means such as perforated cover means associated with each sample reservoir adapted to permit the flow of moisture from tissue in the reservoir.
Further, although direct infrared radiation is not a preferred form of providing a source of radiant energy, radiant energy generated by an infrared laser and transmitted by fiber optics to the tissue samples is a suitable source of radiant energy.
The above is a further description of preferred embodiments of an aspect of the invention but is not intended to be limiting on this invention.

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Claims

The embodiments of the invention in which an exclusive property or privilege is claimed are defined as follows:
1. Apparatus for supporting biological tissue during cryopreparation comprising:
(a) a metallic sample holder including one or more sample reservoirs;
(b) energy means associated with said sample holder for supplying radiant energy to biological tissue contained within said sample reservoirs; and (c) each of said sample reservoirs including a removable reservoir cover, said reservoir cover being adapted to permit the flow of moisture from said samples.

2. The apparatus of claim 1 wherein said reservoir cover includes a plurality of apertures to permit the flow of moisture from said samples and to provide the means for radiant energy being transmitted to said samples.

3. The apparatus of claim 1 wherein said sample holder is made from materials selected from the group consisting of: copper, silver, gold and combinations thereof.

4. The apparatus of claim 1 wherein said sample holder defines a central aperture adapted to receive said energy means.

5. The apparatus of claim 1 wherein said sample holder is in spaced and isolated relation from cryopreparation apparatus.

6. The apparatus of claim 4 wherein said energy means comprises a cartridge heater.
7. The apparatus of claim 1 wherein at least a portion of the interior surfaces of each of said reservoir covers includes a spectral material adapted to act as a source of radiant heat to said biological samples.
8. The apparatus of claim 1 further comprising means for sensing the temperature of said sample holder.
9. Apparatus for supporting biological tissue during cryopreparation comprising:
(a) a metallic sample holder including a central aperture and a plurality of tissue reservoirs;
(b) a separate reservoir cover adapted to be inserted into each sample reservoir in said sample holder, each said reservoir being adapted to retain one or more biological tissue samples, means associated with one of said cover and said reservoir to permit the flow of moisture from a sample; and (c) energy means for supplying radiant energy to said biological tissue contained within said sample reservoirs, said energy means being sized to be fit within said aperture, and adapted to supply radiant heat to said biological samples.
10. The apparatus of claim 9 further comprising means for sensing the temperature of said sample holder.
11. The apparatus of claim 9 wherein said energy means comprises a cartridge heater.
12. The apparatus of claim 9 wherein at least a portion of the interior surfaces of each of said sample reservoirs includes a spectral material.

13. The apparatus of claim 9 wherein each said reservoir cover includes a plurality of apertures to enable moisture to flow from said tissue samples.

14. The apparatus of claim 9 wherein said sample holder is made from one or more materials selected from the group consisting of: copper, silver, gold and combinations thereof.

15. The apparatus of claim 9 wherein further including spacing means adapted to isolate said sample holder is isolated from cryopreparation apparatus.

16. Apparatus for retaining biological tissue during cryopreparation comprising:
(a) a metallic sample holder including a plurality of sample reservoirs, said sample holder includ-ing a central aperture adapted to receive radiant energy means;
(b) a separate removable reservoir cover for each said sample reservoir, each said reservoir adapted to retain one or more biological tissue samples, each said reservoir cover including a plurality of apertures to permit the flow of moisture from said biological tissue, at least a portion of the interior surface of each of said reservoir covers including a coating of a spectral material;
and (c) a cartridge heater insertable with said aperture to supply radiant heat to biological samples contained within said sample reservoirs.

17. A support assembly for supporting biological tissue during cryopreparation comprising:
(a) a metallic sample holder adapted to receive biological tissue including one or more sample reservoirs;
(b) a separate reservoir cover designed to be inserted into each sample reservoir, means associated with one of said cover and said reservoir to permit flow of moisture from a sample;
(c) energy means associated with said sample holder for supplying radiant energy to said biological tissue contained within said sample reservoir; and (d) means for insulating said metallic sample holder from cryogenic preparation apparatus.
18. The support assembly of claim 17 wherein said means for insulating comprises an insulator spool member, said spool member being adapted at one end to be sealingly engaged by the upper end of a sample chamber, said sample chamber being adapted to receive and maintain said sample holder.
19. The support assembly of claim 18 wherein said spool member is ceramic.
20. The support assembly of claim 17 further comprising a connector spool member.
21. The support assembly of claim 20 wherein said connector spool member comprises:
(a) a spool piece adapted at one end to be sealingly connected to said insulator spool and at the opposite end to be sealingly connected to cryogenic apparatus;
(b) a first extension from said spool piece being adapted to include electrical connectors to provide power to said energy means; and (c) a second extension from said connector spool, said second extension being adapted to connect to vacuum means for evacuating said support assembly.

22. A support assembly for supporting biological tissue during cryopreparation comprising;
(a) a metallic sample holder adapted to receive biological tissue including one or more sample reservoirs;
(b) a plurality of moisture permeable reservoir covers adapted to be inserted into said sample reservoirs in said sample holder, each said sample reservoir being adapted to retain one or more biological tissue samples;
(c) energy means associated with said sample holder for supplying radiant energy to said biological tissue contained within said sample reservoirs, said energy means being sized to fit within said aperture;
(d) means for insulating said metallic sample holder from cryogenic preparation apparatus, said means for insulating including an insu-lator spool member and a connector spool member.

23. The support assembly of claim 22 wherein said insulator spool member is adapted at one end to be sealingly engaged by the upper end of a sample chamber, said sample chamber being adapted to receive and maintain said sample holder.

24. The support assembly of claim 22 wherein said connector spool member comprises:
(a) a spool piece adapted at one end to be sealingly connected to said insulator spool and at the opposite end to cryogenic apparatus;
(b) a first extension from said spool piece being adapted to include electrical connectors to provide power to said energy means; and (c) a second extension from said connector spool, said second extension being adapted to connect to vacuum means for evacuating said support assembly.
25. Apparatus for retaining biological samples during cryopreparation comprising:
(a) a metallic sample holder including a plurality of sample reservoirs, said sample holder insulating said plurality of sample reservoirs from energy means;
(b) a plurality of moisture permeable reservoir covers designed to be inserted into said sample reservoirs in said sample holder, each of said sample reservoirs being adapted to retain one or more biological samples; and (c) energy means for supplying radiant energy to said biological samples contained within said sample reservoirs, said energy means being sized to be fittably received by a central aperture in said sample holder, said energy means being adapted to supply radiant heat to said biological samples.
6. Apparatus for retaining biological samples during cryopreparation comprising:
(a) a metallic sample holder including a plurality of sample reservoirs, said sample holder insulating said plurality of sample reservoirs from energy means said sample holder including a central aperture, said central aperture adapted to receive radiant energy means;
(b) a plurality of removable reservoir covers designed to be inserted into said sample reservoirs in said sample holder, each of said reservoirs being adapted to retain one or more biological samples, each of said reservoir covers including a plurality of apertures to permit the flow of moisture from said biological samples and to provide the means for radiant energy being transmitted to said biological samples, at least a portion of the interior surface of each of said reservoir covers including a coating of a spectral material; and (c) a cartridge heater for supplying radiant heat to biological samples contained within said sample reservoirs said cartridge heater being mounted within a central aperture in said sample holder.

CLAIMS SUPPORTED BY THE SUPPLEMENTARY DISCLOSURE
27. Apparatus for supporting biological tissue during cryopreparation comprising:
(a) a thermally conductive sample holder including one or more sample reservoirs, said sample holder being made from one or more materials selected from the group consisting of: copper, silver, gold, sapphire, diamond and combinations thereof, and means associated with each sample reservoir adapted to permit the flow of moisture from tissue therein;
and (b) energy means associated with said sample holder for supplying radiant energy to said biological tissue contained within said sample reservoirs.

28. The apparatus of claim 27 wherein each of said sample reservoirs includes a removable reservoir cover, said reservoir cover being adapted to permit the flow of moisture from said samples.

29. The apparatus of claim 27 wherein said sample holder defines a central aperture adapted to receive said energy means.

30. The apparatus of claim 27 wherein said sample holder is in spaced and thermally isolated relation from cryopreparation apparatus.

31. Apparatus for supporting biological tissue during cryopreparation comprising:

(a) a thermally conductive sample holder including a central aperture and a plurality of tissue reservoirs;
(b) a separate reservoir cover adapted to be inserted into each said sample reservoir in said sample holder, each said reservoir being adapted to retain one or more biological tissue samples, means associated with one of said cover and said reservoir to permit flow of moisture from a sample in a reservoir; and (c) energy means for supplying radiant energy to said biological tissue contained within said sample reservoirs, said energy means being sized to fit within said aperture and adapted to supply radiant heat to said biological samples.

32. The apparatus of claim 31 further comprising a sensor for sensing the temperature of said sample holder.

33. The apparatus of claim 31 wherein a least a portion of the interior surfaces of each of said sample reservoir includes a spectral material.

34. The apparatus of claim 31 wherein each said reservoir cover includes a plurality of apertures to enable moisture to flow from said tissue samples.

35. The apparatus of claim 31 wherein said sample holder is made from one or more materials selected from the group consisting of: copper, silver, gold, sapphire, diamond and combinations thereof.

36. Apparatus for retaining biological tissue during cryopreparation comprising:

(a) a thermally conductive sample holder including a plurality of sample reservoirs, said sample holder including a central aperture adapted to receive radiant energy means;

(b) a separate moisture permeable removable reservoir cover for each said sample reservoir, each said reservoir adapted to retain one or more biological tissue samples, each said reservoir cover including a plurality of apertures to permit the flow of moisture from said biological tissue, at least a portion of the interior surface of each of said reservoir covers including a coating of a spectral material; and (c) a cartridge heater insertable within said aperture to supply radiant heat to biological samples contained within said sample reservoirs.

37. The apparatus of claim 36 wherein said sample holder is made from one or more materials selected. from the group consisting of: copper, silver, gold, sapphire, diamond and combinations thereof.
CA000547937A 1984-11-30 1987-09-25 Apparatus and method for cryopreparing biological tissue for ultrastructural analysis Expired - Fee Related CA1301465C (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US06/676,855 US4567847A (en) 1983-08-23 1984-11-30 Apparatus and method for cryopreparing biological tissue for ultrastructural analysis
US676,855 1984-11-30

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Families Citing this family (41)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4799361A (en) * 1983-08-23 1989-01-24 Board Of Regents, The University Of Texas System Method for cryopreparing biological tissue for ultrastructural analysis
US4742690A (en) * 1983-08-23 1988-05-10 Board Of Regents, The University Of Texas System Apparatus and method for cryopreparing biological tissue for ultrastructural analysis
US4745771A (en) * 1983-08-23 1988-05-24 Board Of Regents, The University Of Texas System Apparatus and method for cryopreparing biological tissue for ultrastructural analysis
US5023187A (en) * 1985-09-13 1991-06-11 Fisher Scientific Company Method and device for accelerated treatment of thin sample on surface
FR2602858B1 (en) * 1986-07-28 1988-11-10 Air Liquide APPARATUS FOR FREEZING ORGANIC PRODUCTS PACKED IN FLAKES USING A CRYOGENIC LIQUID
US5044165A (en) * 1986-12-03 1991-09-03 Board Of Regents, The University Of Texas Cryo-slammer
US4707998A (en) * 1986-12-03 1987-11-24 The Board Of Regents, The University Of Texas Apparatus and method for ultrarapid cooling of biological samples
US4964280A (en) * 1989-08-17 1990-10-23 Board Of Regents Method and apparatus for cryopreparing biological tissue
US5154007A (en) * 1989-08-17 1992-10-13 Board Of Regents University Of Texas System Method and apparatus for cryopreparing biological tissue
US8067149B2 (en) 1990-09-12 2011-11-29 Lifecell Corporation Acellular dermal matrix and method of use thereof for grafting
US5336616A (en) * 1990-09-12 1994-08-09 Lifecell Corporation Method for processing and preserving collagen-based tissues for transplantation
AU650045B2 (en) 1990-09-12 1994-06-09 Lifecell Corporation Method and apparatus for cryopreparation dry stabilization and rehydration of biological suspensions
US5192312A (en) * 1991-03-05 1993-03-09 Colorado State University Research Foundation Treated tissue for implantation and methods of treatment and use
US5431952A (en) * 1994-02-28 1995-07-11 Board Of Trustees Operating Michigan State University Method for preservation of biological tissue
KR100365573B1 (en) * 1994-03-14 2004-08-25 크라이어라이프, 인크. Transplantation tissue and its manufacturing method
US6097025A (en) * 1997-10-31 2000-08-01 Ljl Biosystems, Inc. Light detection device having an optical-path switching mechanism
US6071748A (en) 1997-07-16 2000-06-06 Ljl Biosystems, Inc. Light detection device
US6469311B1 (en) 1997-07-16 2002-10-22 Molecular Devices Corporation Detection device for light transmitted from a sensed volume
US6326605B1 (en) 1998-02-20 2001-12-04 Ljl Biosystems, Inc. Broad range light detection system
US6992761B2 (en) * 1997-09-20 2006-01-31 Molecular Devices Corporation Broad range light detection system
US6297018B1 (en) 1998-04-17 2001-10-02 Ljl Biosystems, Inc. Methods and apparatus for detecting nucleic acid polymorphisms
US6576476B1 (en) 1998-09-02 2003-06-10 Ljl Biosystems, Inc. Chemiluminescence detection method and device
US6825921B1 (en) 1999-11-10 2004-11-30 Molecular Devices Corporation Multi-mode light detection system
US6982431B2 (en) 1998-08-31 2006-01-03 Molecular Devices Corporation Sample analysis systems
WO2000006990A2 (en) 1998-07-27 2000-02-10 Ljl Biosystems, Inc. Apparatus and methods for time-resolved spectroscopic measurements
WO2000006991A2 (en) * 1998-07-27 2000-02-10 Ljl Biosystems, Inc. Apparatus and methods for spectroscopic measurements
US6933326B1 (en) 1998-06-19 2005-08-23 Lifecell Coporation Particulate acellular tissue matrix
AU3005400A (en) 1999-02-23 2000-09-14 Ljl Biosystems, Inc. Frequency-domain light detection device
EP1631496B1 (en) 2003-04-28 2014-02-26 Medical Instill Technologies, Inc. Container with valve assembly for filling and dispensing substances, and apparatus and method for filling
US7665226B2 (en) * 2004-04-12 2010-02-23 Kitakyushu Foundation For The Advancement Of Industry, Science & Technology Method for drying under reduced pressure using microwaves
US7159407B2 (en) * 2004-06-09 2007-01-09 Chen Kuo-Mei Atomized liquid jet refrigeration system
US7293426B2 (en) * 2004-10-05 2007-11-13 Washington University Apparatus for freezing a biological sample
WO2007084952A2 (en) * 2006-01-18 2007-07-26 Akrion Technologies, Inc. Systems and methods for drying a rotating substrate
EP2013113B1 (en) 2006-04-24 2018-03-21 Medical Instill Technologies, Inc. Needle penetrable and resealable lyophilization device and related method
US8701307B2 (en) 2008-09-17 2014-04-22 Howard C. Slack Method for cleaning and reconditioning FCR APG-68 tactical radar units
US8056256B2 (en) * 2008-09-17 2011-11-15 Slack Associates, Inc. Method for reconditioning FCR APG-68 tactical radar units
KR100938241B1 (en) 2008-12-24 2010-01-22 한국기초과학지원연구원 Dps for pre-treating a cryo transfer holder of tem
KR101167566B1 (en) 2009-12-30 2012-07-27 한국기초과학지원연구원 Dry pumping system for transfer-holder of TEM equipped with a thermometer using infrared imaging system
AT512287B1 (en) * 2012-03-02 2013-07-15 Leica Microsysteme Gmbh Apparatus for light stimulation and cryopreservation of biological samples
WO2017099865A1 (en) 2015-12-07 2017-06-15 Coopersurgical, Inc. Low temperature specimen carriers and related methods
JP6823300B2 (en) * 2017-01-20 2021-02-03 日本電子株式会社 Sample preparation device

Family Cites Families (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3679450A (en) * 1970-03-16 1972-07-25 Roy Nutt Biopsy method
US3942519A (en) * 1972-12-26 1976-03-09 Ultrasonic Systems, Inc. Method of ultrasonic cryogenic cataract removal
GB1560481A (en) * 1975-07-09 1980-02-06 Johnson Matthey Co Ltd Complexes of osmium tetroxide
AT343941B (en) * 1976-02-06 1978-06-26 Reichert Optische Werke Ag METHOD AND DEVICE FOR PRODUCING PREPARATIONS FOR MICROSCOPY, IN PARTICULAR ELECTRON MICROSCOPY FROM NATIVE HISTOLOGICAL OBJECTS AND PHYSICOCHEMICAL SIMILAR PRODUCTS BY CRYOFIXATION
US4055904A (en) * 1976-04-02 1977-11-01 Tousimis Research Corporation Automatic critical point drying apparatus
US4056855A (en) * 1976-04-07 1977-11-08 Charles Kelman Intraocular lens and method of implanting same
US4120991A (en) * 1976-12-10 1978-10-17 Technicon Instruments Corporation Process for mounting tissue sections with an U.V. light curable mounting medium
US4278623A (en) * 1977-01-11 1981-07-14 Union Carbide Corporation Ultra-fine fibers and method for making same
US4205059A (en) * 1977-03-09 1980-05-27 Hagens Gunther Von Animal and vegetal tissues permanently preserved by synthetic resin impregnation
US4337240A (en) * 1978-04-20 1982-06-29 New England Nuclear Corporation Denatured albumin complexes for radioscintigraphic imaging and evaluation of reticuloendothelial systems
US4197658A (en) * 1978-05-12 1980-04-15 Fts Systems, Inc. Tissue freeze dryer
DE2935097A1 (en) * 1978-09-07 1980-03-20 Kuraray Co AETHYLENE / VINYL ALCOHOL COPOLYMER MEMBRANE
US4232453A (en) * 1978-09-25 1980-11-11 C. Reichert Optische Werke, Ag Device for freeze drying and synthetic resin impregnation when necessary of small biological objects for electron microscopic examination
US4331591A (en) * 1978-10-05 1982-05-25 Ciba-Geigy Corporation Chemical process for the production of α-aminophosphonic acids and peptide derivatives
US4266111A (en) * 1979-01-11 1981-05-05 Wentgate Engineers (1976) Limited Apparatus for transferring work through a region of reduced pressure for the performance of an operation thereon
DE2914181C2 (en) * 1979-04-07 1982-06-16 Kernforschungsanlage Jülich GmbH, 5170 Jülich Method and device for drying temperature-sensitive goods in the pharmaceutical and food industries
US4248821A (en) * 1979-07-25 1981-02-03 Dellen Adrian F Van Method and device for embedding a specimen for microscopic examination
US4336691A (en) * 1979-12-13 1982-06-29 The Board Of Trustees Of The Leland Stanford Junior University Cryojet rapid freezing apparatus
JPS56150325A (en) * 1980-04-22 1981-11-20 Yukitaka Ajimi Vaccum device
US4379003A (en) * 1980-07-30 1983-04-05 Bell Telephone Laboratories, Incorporated Magnetic devices by selective reduction of oxides
US4510169A (en) * 1983-08-23 1985-04-09 The Board Of Regents, The University Of Texas Method and apparatus for cryopreparing biological tissue for ultrastructural analysis

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EP0184417A3 (en) 1987-04-22
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JPS61198037A (en) 1986-09-02
CA1239290A (en) 1988-07-19
US4567847A (en) 1986-02-04
AU4996385A (en) 1986-06-05

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