US20040068189A1 - Ultrasound catheter with embedded conductors - Google Patents

Ultrasound catheter with embedded conductors Download PDF

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Publication number
US20040068189A1
US20040068189A1 US10/378,032 US37803203A US2004068189A1 US 20040068189 A1 US20040068189 A1 US 20040068189A1 US 37803203 A US37803203 A US 37803203A US 2004068189 A1 US2004068189 A1 US 2004068189A1
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US
United States
Prior art keywords
tubular body
ultrasound
catheter
inner core
elongate
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.)
Abandoned
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US10/378,032
Inventor
Richard Wilson
Tim Abrahamson
Leonard Oliver
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Ekos LLC
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Ekos LLC
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
Priority claimed from US10/309,417 external-priority patent/US7384407B2/en
Application filed by Ekos LLC filed Critical Ekos LLC
Priority to US10/378,032 priority Critical patent/US20040068189A1/en
Assigned to EKOS CORPORATION reassignment EKOS CORPORATION ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: OLIVER, LEONARD R., ABRAHAMSON, TIM, WILSON, RICHARD R
Publication of US20040068189A1 publication Critical patent/US20040068189A1/en
Priority to US11/417,406 priority patent/US20060224142A1/en
Priority to US11/417,384 priority patent/US7774933B2/en
Priority to US11/418,357 priority patent/US20060206039A1/en
Priority to US12/846,744 priority patent/US20100331763A1/en
Abandoned legal-status Critical Current

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/22Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for
    • A61B17/22004Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for using mechanical vibrations, e.g. ultrasonic shock waves
    • A61B17/22012Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for using mechanical vibrations, e.g. ultrasonic shock waves in direct contact with, or very close to, the obstruction or concrement
    • A61B17/2202Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for using mechanical vibrations, e.g. ultrasonic shock waves in direct contact with, or very close to, the obstruction or concrement the ultrasound transducer being inside patient's body at the distal end of the catheter
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/22Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B8/00Diagnosis using ultrasonic, sonic or infrasonic waves
    • A61B8/12Diagnosis using ultrasonic, sonic or infrasonic waves in body cavities or body tracts, e.g. by using catheters
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C63/00Lining or sheathing, i.e. applying preformed layers or sheathings of plastics; Apparatus therefor
    • B29C63/38Lining or sheathing, i.e. applying preformed layers or sheathings of plastics; Apparatus therefor by liberation of internal stresses
    • B29C63/42Lining or sheathing, i.e. applying preformed layers or sheathings of plastics; Apparatus therefor by liberation of internal stresses using tubular layers or sheathings
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B2017/00017Electrical control of surgical instruments
    • A61B2017/00022Sensing or detecting at the treatment site
    • A61B2017/00084Temperature
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/22Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for
    • A61B17/22004Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for using mechanical vibrations, e.g. ultrasonic shock waves
    • A61B17/22012Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for using mechanical vibrations, e.g. ultrasonic shock waves in direct contact with, or very close to, the obstruction or concrement
    • A61B17/2202Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for using mechanical vibrations, e.g. ultrasonic shock waves in direct contact with, or very close to, the obstruction or concrement the ultrasound transducer being inside patient's body at the distal end of the catheter
    • A61B2017/22021Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for using mechanical vibrations, e.g. ultrasonic shock waves in direct contact with, or very close to, the obstruction or concrement the ultrasound transducer being inside patient's body at the distal end of the catheter electric leads passing through the catheter
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/22Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for
    • A61B2017/22082Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for after introduction of a substance
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/22Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for
    • A61B2017/22082Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for after introduction of a substance
    • A61B2017/22088Implements for squeezing-off ulcers or the like on the inside of inner organs of the body; Implements for scraping-out cavities of body organs, e.g. bones; Calculus removers; Calculus smashing apparatus; Apparatus for removing obstructions in blood vessels, not otherwise provided for after introduction of a substance ultrasound absorbing, drug activated by ultrasound
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49002Electrical device making
    • Y10T29/49007Indicating transducer
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49002Electrical device making
    • Y10T29/49117Conductor or circuit manufacturing
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49002Electrical device making
    • Y10T29/49117Conductor or circuit manufacturing
    • Y10T29/49169Assembling electrical component directly to terminal or elongated conductor
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49826Assembling or joining

Definitions

  • the present invention relates to a catheter having an ultrasound assembly useful for delivering ultrasound energy at a treatment site in a body.
  • the apparatus is particularly well suited for delivering ultrasound energy at a treatment site located within a small blood vessel in the distal anatomy.
  • ultrasound energy can be used to enhance the delivery and therapeutic effect of various therapeutic compounds. See e.g., U.S. Pat. Nos. 4,821,740, 4,953,565 and 5,007,438, the entire disclosure of which is hereby incorporated by reference herein.
  • an ultrasound catheter typically comprises an elongate member configured for advancement through a patient's vasculature.
  • An ultrasound assembly is mounted along the distal end portion of the elongate member and is adapted for emitting ultrasound energy.
  • the ultrasound catheter may include a delivery lumen for delivering the therapeutic compound to the treatment site. In this manner, the ultrasound energy can be emitted at the treatment site to enhance the desired therapeutic effects and/or delivery of the therapeutic compound.
  • ultrasound catheters have been successfully used to treat human blood vessels that have become occluded by plaque, thrombi, emboli or other substances that reduce the blood carrying capacity of the vessel. See e.g., U.S. Pat. No. 6,001,069, the entire disclosure of which is hereby incorporated by reference herein.
  • the ultrasound catheter is advanced through the patient's vasculature to deliver solutions containing dissolution compounds directly to the blockage site.
  • ultrasound energy is emitted into the compound and/or the surrounding tissue.
  • ultrasound catheters may be used to perform gene therapy on an isolated region of a blood vessel or other body lumen.
  • an ultrasound catheter can be provided with one or more expandable members for occluding a section of the body lumen at a treatment site.
  • a gene therapy composition is delivered to the treatment site through the delivery lumen of the catheter.
  • the ultrasound assembly is used to emit ultrasound energy at the treatment site to enhance the entry of the gene composition into the cells in the body lumen.
  • ultrasound catheters may be used for a wide variety of other purposes, such as, for example, delivering and activating light activated drugs with ultrasound energy (see e.g., U.S. Pat. No. 6,176,842, the entire disclosure of which is hereby incorporated by reference herein).
  • an improved ultrasound catheter that is capable of safely and effectively navigating small blood vessels. It is also desirable that such a device be capable of delivering adequate ultrasound energy to achieve the desired therapeutic purpose. It is also desirable that such a device be capable of accessing a treatment site in fragile distal vessels in a manner that is safe for the patient and that is not unduly cumbersome.
  • the present invention addresses these needs.
  • an ultrasound catheter having increased flexibility and maneuverability.
  • Such features are advantageous when a treatment is to be performed in the peripheral vasculature, and are especially advantageous when a treatment is to be performed in small vessels, such as in the neurovascular system.
  • an ultrasound catheter comprises an elongate tubular body.
  • the elongate tubular body has a proximal region and a distal region opposite the proximal region.
  • the tubular body defines a central lumen having a central lumen diameter.
  • the ultrasound catheter further comprises an elongate, hollow inner core extending through the central lumen.
  • the elongate, hollow inner core has an inner core outer diameter that is less than or equal to the central lumen diameter.
  • the ultrasound catheter further comprises an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core.
  • the ultrasound catheter further comprises at least two electrical conductors extending between the tubular body proximal region and the tubular body distal region.
  • the at least two electrical conductors are positioned between the tubular body and the inner core.
  • the at least two electrical conductors are electrically connected to the ultrasound radiating member.
  • the at least two electrical conductors are wrapped around the inner core a plurality of times in a region between the ultrasound radiating member and the tubular body proximal region.
  • an ultrasound catherter comprises an elongate tubular body.
  • the elongate tubular body has a proximal region and a distal region opposite the proximal region.
  • the tubular body defines a central lumen having a central lumen diameter.
  • the ultrasound catheter further comprises an elongate, hollow inner core extending through the central lumen.
  • the elongate, hollow inner core has an inner core outer diameter that is less than or equal to the central lumen diameter.
  • the ultrasound catheter further comprises an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core.
  • the ultrasound catheter further comprises at least two electrical conductors extending between the tubular body proximal region and the tubular body distal region.
  • the at least two electrical conductors are positioned between the tubular body and the inner core.
  • the at least two electrical conductors are electrically connected to the ultrasound radiating member.
  • the at least two electrical conductors are disposed substantially parallel to a catheter axis in a region between the ultrasound radiating member and the tubular body proximal region.
  • an apparatus comprises an elongate, hollow body.
  • the elongate, hollow body has a proximal region, a distal region opposite the proximal region, a body thickness, and an inner lumen.
  • the apparatus futher comprises an ultrasound radiating member positioned within the body thickness of the elongate, hollow body.
  • the apparatus further comprises a plurality of elongate eletrical conductors extending between the elongate, hollow body proximal region and the ultrasound radiating member.
  • the plurality of elongate electrical conductors are positioned within the body thickness of the elongate, hollow body.
  • FIG. 1 is a side view of an ultrasound catheter that is particularly well suited for insertion into small blood vessels of the human body.
  • FIG. 2A is a cross-sectional view of a distal end of the ultrasound catheter of FIG. 1.
  • FIG. 2B is a cross-sectional view of the ultrasound catheter taken through line 2 B- 2 B of FIG. 2A.
  • FIG. 3 is an alternative embodiment of the ultrasound catheter including a stiffener at the distal tip.
  • FIG. 4 is a cross-sectional view of the distal end of an ultrasound catheter wherein a portion of the inner core has a corrugated configuration for enhanced flexibility.
  • FIG. 5 is a cross-sectional view of the distal end of an ultrasound catheter wherein the proximal joint comprises braided sections for enhanced flexibility.
  • FIG. 6A is a cross-sectional view of the distal end of an ultrasound catheter including a bendable wire adapted for providing a shapeable tip.
  • FIG. 6B is a cross-sectional view of the embodiment of FIG. 6A with the shapeable tip pre-formed to facilitate advancement over a guidewire.
  • FIG. 7A is a top view of the distal end of an ultrasound catheter having a soft tip assembly.
  • FIG. 7B is a cross-sectional view of the soft tip assembly taken through line 7 B- 7 B of FIG. 7A.
  • FIG. 8 is a side view an ultrasound element attached to the distal end of a guidewire.
  • FIG. 9 is a cross-sectional view of an ultrasound catheter used with the ultrasound element and guidewire of FIG. 8.
  • FIG. 10 is a cross-sectional view of a distal end of another modified embodiment of an ultrasound catheter that can be used with the ultrasound element and guidewire of FIG. 8.
  • FIG. 11 is a side view of a distal end of a treatment wire wherein an ultrasound element is provided along the distal end of a hypotube.
  • FIG. 12 is a side view of a distal end of an ultrasound catheter that incorporates the treatment wire of FIG. 11.
  • FIG. 13A is a partial cutaway view of one embodiment of an ultrasound catheter with embedded conductive wires that are spirally wrapped parallel to each other.
  • FIG. 13B is a partial cutaway view of one embodiment of an ultrasound catheter with embedded conductive wires that are spirally wrapped into a unitary cable.
  • FIG. 14 is a partial cutaway view of one embodiment of an ultrasound catheter with embedded conductive wires that are spirally wrapped in a nonparallel
  • FIG. 15 is a partial cutaway view of one embodiment of an ultrasound catheter with embedded conductive wires that are disposed substantially parallel to the
  • FIG. 16A illustrates a longitudinal cross-sectional view of an ultrasound catheter having internal surfaces that are electrically conductive.
  • FIG. 16B illustrates a cross-sectional view of the ultrasound catheter of FIG. 16A taken along line 16 B- 16 B.
  • preferred embodiments of the present invention described herein provide an ultrasound catheter that is well suited for use in the treatment of small blood vessels or other body lumens having a small inner diameter.
  • the ultrasound catheter can be used to enhance the therapeutic effects of drugs, medication and other pharmacological agents at a treatment site within the body. See e.g., U.S. Pat. Nos. 5,318,014, 5,362,309, 5,474,531, 5,628,728, 6,001,069, and 6,210,356.
  • Certain preferred embodiments of the ultrasound catheter are particularly well suited for use in the treatment of thrombotic occlusions in small blood vessels, such as, for example, the cerebral arteries.
  • preferred embodiments may also find utility in other therapeutic applications, such as, for example, performing gene therapy (see e.g., U.S. Pat. No. 6,135,976), activating light activated drugs for producing targeted tissue death (see e.g., U.S. Pat. No. 6,176,842) and causing cavitation to produce various desirable biological effects (see e.g., U.S. Patent No. RE36,939).
  • therapeutic applications may be used in wide variety of locations within the body, such as, for example, in other parts of the circulatory system, solid tissues, duct systems and body cavities. It is also anticipated that the ultrasound catheters disclosed herein, and variations thereof, may find utility in other medical applications, such as, for example, diagnostic and imaging applications.
  • Ultrasound catheters and methods disclosed herein, and similar variations thereof, may also be useful for applications wherein the ultrasound energy provides a therapeutic effect by itself.
  • ultrasound energy may be effective for uses such as preventing and/or reducing stenosis and/or restenosis, tissue ablation, abrasion or disruption, promoting temporary or permanent physiological changes in intracellular or intercellular structures, or rupturing micro-balloons or micro-bubbles for drug delivery. See e.g., U.S. Pat. Nos. 5,269,291 and 5,431,663.
  • the methods and devices disclosed herein may also find utility in applications that do not require the use of a catheter.
  • the methods and devices may be used for enhancing hyperthermic drug treatment or using an external ultrasound source to enhance the therapeutic effects of drugs, medication and other pharmacological agents at a specific site within the body or to provide a therapuetic or diagnostic effect by itself.
  • an external ultrasound source to enhance the therapeutic effects of drugs, medication and other pharmacological agents at a specific site within the body or to provide a therapuetic or diagnostic effect by itself.
  • the term “ultrasound energy” is a broad term and is used in its ordinary sense and means, without limitation, mechanical energy transferred through pressure of compression waves with a frequency greater than about 20 KHz.
  • the waves of the ultrasound energy have a frequency between about 500 KHz and 20 MHz and in another embodiment between about 1 MHz and 3 MHz. In yet another embodiment, the waves of the ultrasound energy have a frequency of about 3 MHz.
  • the term “catheter” is a broad term and is used in its ordinary sense and means, without limitation, an elongate flexible tube configured to be inserted into the body of a patient, such as, for example, a body cavity, duct or vessel.
  • preferred embodiments of the present invention provide an ultrasound catheter 100 that is particulary well suited for use within small vessels of the distal anatomy, such as, for example, in the remote, small diameter, neurovasculature in the brain.
  • the ultrasound catheter 100 generally comprises a multi-component tubular body 102 having a proximal end 104 and a distal end 106 .
  • the tubular body 102 and other components of the catheter 100 can be manufactured in accordance with any of a variety of techniques well know in the catheter manufacturing field. As discussed in more detail below, suitable material dimensions can be readily selected taking into account the natural and anatomical dimensions of the treatment site and of the desired percutaneous access site.
  • the tubular body 102 can be divided into at least three sections of varying stiffness.
  • the first section which preferably includes the proximal end 104
  • the second section which lies between the proximal end 104 and the distal end 106 of the catheter. This arrangement facilitates the movement and placement of the catheter 102 within small vessels.
  • the third section which includes ultrasound radiating element 124 , is generally stiffer than the second section due to the presence of the ultrasound radiating element 124 .
  • the assembled ultrasound catheter preferably has sufficient structural integrity, or “pushability,” to permit the catheter to be advanced through a patient's vasculature to a treatment site without buckling or kinking.
  • the catheter has the ability to transmit torque, such that the distal portion can be rotated into a desired orientation after insertion into a patient by applying torque to the proximal end.
  • the elongate flexible tubular body 102 comprises an outer sheath 108 (see FIG. 2A) that is positioned upon an inner core 110 .
  • the outer sheath 108 comprises extruded PEBAX, PTFE, PEEK, PE, polymides, braided polymides and/or other similar materials.
  • the distal end portion of the outer sheath 108 is adapted for advancement through vessels having a very small diameter, such as those in the neurovasculature of the brain.
  • the distal end portion of the outer sheath 108 has an outer diameter between about 2 and 5 French. More preferably, the distal end portion of the outer sheath 108 has an outer diameter of about 2.8 French.
  • the outer sheath 108 has an axial length of approximately 150 centimeters.
  • the outer sheath 108 can be formed from a braided tubing formed of, by way of example, high or low density polyethylenes, urethanes, nylons, etc. Such an embodiment enhances the flexibility of the tubular body 102 .
  • the outer sheath 108 may be formed with a variable stiffness from the proximal to the distal end. To achieve this, a stiffening member may be included along the proximal end of the tubular body 102 .
  • the inner core 110 defines, at least in part, a delivery lumen 112 , which preferably extends longitudinally along the entire length of the catheter 100 .
  • the delivery lumen 112 has a distal exit port 114 and a proximal axis port 116 .
  • the proximal access port 116 is defined by drug inlet port 117 of a back end hub 118 , which is attached to the proximal end 104 of the other sheath 108 .
  • the illustrated back end hub 118 is preferably attached to a control box connector 120 , the utility of which will be described in more detail below.
  • the delivery lumen 112 is preferably configured to receive a guide wire (not shown).
  • the guidewire has a diameter of approximately 0.008 to 0.012 inches. More preferably, the guidewire has a diameter of about 0.010 inches.
  • the inner core 110 is preferably formed from polymide or a similar material which, in some embodiments, can be braided to increase the flexibility of the tubular body 102 .
  • the distal end 106 of the catheter 102 preferably includes the ultrasound radiating element 124 .
  • the ultrasound radiating element 124 comprises an ultrasound transducer, which converts, for example, electrical energy into ultrasound energy.
  • the ultrasound energy can be generated by an ultrasound transducer that is remote from the ultrasound radiating element 124 and the ultrasound energy can be transmitted via, for example, a wire to the ultrasound radiating element 124 .
  • the ultrasound radiating element 124 is configured as a hollow cylinder.
  • the inner core 110 can extend through the lumen of the ultrasound radiating element 124 .
  • the ultrasound radiating element 124 can be secured to the inner core 110 in any suitable manner, such as with an adhesive.
  • a potting material may also be used to further secure the mounting of the ultrasound radiating element along the central core.
  • the ultrasound radiating element 124 can be configured with a different shape without departing from the scope of the invention.
  • the ultrasound radiating element may take the form of a solid rod, a disk, a solid rectangle or a thin block.
  • the ultrasound radiating element 124 may comprise a plurality of smaller ultrasound radiating elements.
  • the illustrated arrangement is the generally preferred configuration because it provides for enhanced cooling of the ultrasound radiating element 124 .
  • a drug solution can be delivered through the delivery lumen 112 . As the drug solution passes through the lumen of the ultrasound radiating element, the drug solution may advantageously provide a heat sink for removing excess heat generated by the ultrasound radiating element 124 .
  • a return path can be formed in the space 138 between the outer sheath and the inner core such that coolant from a coolant system can be directed through the space 138 .
  • the ultrasound radiating element 40 is preferably selected to produce ultrasound energy in a frequency range that is well suited for the particular application. Suitable frequencies of ultrasound energy for the applications described herein include, but are not limited to, from about 20 KHz to about 20 MHz. In one embodiment, the frequency is between about 500 KHz and 20 MHz and in another embodiment from about 1 MHz and about 3 MHz. In yet another embodiment, the ultrasound energy has a frequency of about 3 MHz.
  • ultrasound energy is generated from electrical power supplied to the ultrasound radiating element 124 .
  • the electrical power can be supplied through the controller box connector 120 , which is connected to a pair wires 126 , 128 that extend through the catheter body 102 .
  • the electrical wires 126 , 128 can be secured to the inner core 110 , lay along the inner core 110 and/or extend freely in the space between the inner core 110 and the outer sheath 108 .
  • the first wire 126 is connected to the hollow center of the ultrasound radiating element 124 while the second wire 128 is connected to the outer periphery of the ultrasound radiating element 124 .
  • the ultrasound radiating element 124 is preferably, but is not limited to, a transducer formed of a piezolectic ceramic oscillator or a similar material.
  • the distal end 104 of the catheter 100 preferably includes a sleeve 130 , which is generally positioned about the ultrasound radiating element 124 .
  • the sleeve 130 is preferably constructed from a material that readily transmits ultrasound energy. Suitable materials for the sleeve 130 include, but are not limited to, polyolefins, polyimides, polyester and other materials having a relatively low impedance to ultrasound energy. Low ultrasound impedance materials are materials that readily transmit ultrasound energy with minimal absorption of the ultrasound energy.
  • the proximal end of the sleeve 130 can be attached to the outer sheath 108 with an adhesive 132 .
  • a shoulder 127 or notch may be formed in the outer sheath for attachment of the adhesive thereto.
  • the outer sheath 108 and the sleeve 130 have substantially the same outer diameter.
  • the distal end of the sleeve 130 can be attached to a tip 134 .
  • the tip 134 is also attached to the distal end of the inner core 110 .
  • the tip is between about 0.5 and 4.0 millimeters in length. More preferably, the tip is about 2.0 millimeters in length.
  • the tip is preferably rounded in shape to reduce trauma or damage to tissue along the inner wall of a blood vessel or other body structure during advancement toward a treatment site.
  • the catheter 100 preferably includes at least one temperature sensor 136 along the distal end 106 .
  • the temperature sensor 136 is preferably located on or near the ultrasound radiating element 124 .
  • Suitable temperature sensors include but are not limited to, diodes, thermistors, thermocouples, resistance temperature detectors (RTDs), and fiber optic temperature sensors that used thermalchromic liquid crystals.
  • the temperature sensor is preferably operatively connected to a control box (not shown) through a control wire, which extends through the catheter body 102 and back end hub 118 and is operatively connected to a control box through the control box connector 120 .
  • the control box preferably includes a feedback control system having the ability to monitor and control the power, voltage, current and phase supplied to the ultrasound radiating element. In this manner, the temperature along the relevant region of the catheter can be monitored and controlled for optimal performance. Details of the control box can be found in Assignee's copending provisional application entitled CONTROL POD FOR ULTRASONIC CATHETER, Application Serial No. 60/336,630, filed Dec. 3, 2001, which is incorporated by reference in its entirety.
  • the apparatus may be used to remove a thrombotic occlusion from a small blood vessel.
  • a free end of a guidewire is percutaneously inserted into the patient's vasculature at a suitable first puncture site.
  • the guidewire is advanced through the vasculature toward a treatment site wherein the blood vessel is occluded by the thrombus.
  • the guidewire wire is preferably then directed through the thrombus.
  • the catheter 100 is thereafter percutaneously inserted into the vasculature through the first puncture site and is advanced along the guidewire towards the treatment site using traditional over-the-guidewire techniques.
  • the catheter 100 is advanced until the distal end 106 of the catheter 100 is positioned at or within the occlusion.
  • the distal end 106 of the catheter 100 may include one or more radiopaque markers (not shown) to aid in positioning the distal end 106 within the treatment site.
  • the guidewire can then be withdrawn from the delivery lumen 112 .
  • a drug solution source (not shown), such as a syringe with a Luer fitting, is attached to the drug inlet port 117 and the controller box connector 120 is connected to the control box.
  • the drug solution can be delivered through the delivery lumen 112 and out the distal access port 114 to the thrombus.
  • Suitable drug solutions for treating a thrombus include, but are not limited to, an aqueous solution containing Heparin, Uronkinase, Streptokinase, and/or tissue Plasminogen Activator (TPA).
  • the ultrasound radiating element 124 is activated to emit ultrasound energy from the distal end 106 of the catheter 100 .
  • suitable frequencies for the ultrasound radiating element 124 include, but are not limited to, from about 20 KHz to about 20 MHz. In one embodiment, the frequency is between about 500 KHz and 20 MHz and in another embodiment between about 1 MHz and 3 MHz. In yet another embodiment, the ultrasound energy is emitted at a frequency of about 3 MHz.
  • the drug solution and ultrasound energy are applied until the thrombus is partially or entirely dissolved. Once the thrombus has been dissolved to the desired degree, the catheter 100 is withdrawn from the treatment site.
  • the diameter of the distal exit port 114 is often relatively large compared with the diameter of the guidewire (not shown), a gap may exist between the inner rim of the tip 134 and the guidewire. If sufficiently large, this gap may cause the tip 134 of the catheter to catch or snag on an object along the exit port 114 . If the tip 134 catches on an object, the exit port 114 may stretch (i.e., increase in diameter) as the catheter is pushed forward. This effect is particularly likely to occur at vessel bifurcations and will hereinafter be referred to as “fish-mouthing.”
  • FIG. 3 illustrates an embodiment adapted to reduce the likelihood of fish-mouthing wherein a circular stiffening component 140 is provided along the distal tip 134 .
  • the circular stiffening component 140 reduces the gap between the tip 134 and the guidewire, and is preferably made of a stiff material, such as, for example, aluminum, that will prevent the tip 134 from fish-mouthing. Additionally, if the guidewire is formed with a variable diameter, cooperation of the guidewire and the circular stiffening component 140 may be advantageously used as a valve. By adjusting the relative positions of the guidewire and catheter, it is possible to control the delivery of drugs, medications, or other therapeutic compounds through the exit port 114 along the tip 134 . As seen in FIG.
  • this embodiment also includes a variation of the inner core 110 A having a flared end that may be inserted into a circumferential notch 142 formed in the distal tip 134 . Insertion of the flared end into the circumferential notch provides for enhanced structural integrity.
  • fish-mouthing may be prevented by increasing the thickness of the tip 134 , or by manufacturing the tip 134 using a material with increased stiffness. In such embodiments, the tip 134 will have decreased flexibility, and therefore will be less susceptible to fish-mouthing.
  • the rigidity of the catheter along the joint (hereinafter referred to as the “proximal element joint”) between the outer sheath 108 and sleeve 130 may be reduced significantly.
  • the rigidity of the proximal element joint is reduced to further enhance flexibility, prevent kinking of the flexible support section of the catheter, and to facilitate tracking of the catheter over the guidewire.
  • the used of an adhesive may be eliminated, and the proximal end of the sleeve 130 may be attached to the outer sheath 108 at the proximal element joint using a direct bonding method adapted to create a more flexible proximal element joint.
  • direct bonding methods include, but are not limited to, the use of heat, a solvent, a mold, or a cast.
  • a reflow, or “die wiping” technique may be employed wherein an extruded catheter shaft is covered with a heat shrink tube and heated to reflow and bond the polymers within the catheter shaft.
  • An external heat source may be employed in a reflow technique, or if the catheter includes metal components at the proximal element joint, radio frequency (“RF”) energy may be used to heat and bond the polymers within the catheter shaft.
  • RF radio frequency
  • FIG. 4 illustrates yet another alternative embodiment for reducing the rigidity of the proximal element joint to thereby enhance the flexibility of the ultrasound catheter.
  • the inner core 410 includes a corrugated portion 452 along the proximal element joint just proximal of the ultrasound radiating element 424 .
  • a Teflon® liner 450 may be adapted to surround the inner surface of the corrugated portion 452 of the inner core 410 to prevent the guidewire from catching on the corrugations.
  • a flexible filler material 456 and a flexible cover sleeve 454 may be adapted to cover the exterior surface of the corrugated portion 452 of the catheter to prevent the catheter from catching on the interior walls of the vessel anatomy.
  • a corrugated portion 452 of the inner core 410 may be created by placing a close-fitting pin within a portion of the polyimide material used to form the inner core, and applying a compressive force to the polyimide material on either side of the pin. When the pin is removed from the inner core 410 , the corrugated portion 452 of the inner core 410 will have enhanced flexibility and will thereby increase the flexibility of the ultrasound catheter.
  • the rigidity of the proximal element joint may be further reduced by forming the inner core 410 of the delivery lumen 412 of a material with increased flexibility and resistance to kinking.
  • the inner core 410 of the delivery lumen 412 may comprise a Teflon®-lined polyimide shaft.
  • a coil or braid may be incorporated into the delivery lumen 412 , thereby further reducing susceptibility to kinking without increasing the rigidity of the catheter.
  • FIG. 5 illustrates yet another alternative embodiment wherein the rigidity of the proximal element joint 548 is reduced by providing a outer sheath 508 that includes an embedded braid 560 . Furthermore, the outer sheath 508 is attached to the sleeve 530 using a flexible exposed braided portion 558 . A flexible filler material 556 and a flexible cover sleeve 554 are used to bond the outer sheath 508 , the sleeve 530 and the exposed braided portion 558 together.
  • This embodiment provides the catheter with a flexible region just proximal to the ultrasound radiating member 524 .
  • the braided sections may be formed of high or low density polyethylenes, urethanes or nylons.
  • FIG. 6A illustrates yet another modified embodiment wherein the ultrasound catheter provides improved tracking over the guidewire 602 .
  • Prolapsing of a guidewire is most likely to occur at small vessel radii, where the guidewire 602 follows a sharp turn, and where the angle ⁇ formed by the intersection between the guidewire 602 and the catheter body is large.
  • a tapered wire 642 is provided along the exterior of the outer sheath 608 for shaping the distal end of the catheter.
  • the tapered wire 642 may be set in a flexible potting or filler material 644 , which is contained within a flexible sleeve 646 .
  • the tapered wire 642 is preferably comprised of a pliable material, such that it may be pre-formed into a selectable desired orientation before use. Pre-forming of the tapered wire 642 assists the physician in steering the catheter to follow the guidewire 602 reliably around small vessel radii by reducing the angle ⁇ formed by the intersection between the guidewire 602 and the catheter body.
  • the tapered wire is preferably provided in the region surrounding the ultrasound radiating element 624 .
  • FIG. 6B illustrates the embodiment of FIG. 6A in use with the tip pre-formed for improved tracking over the guidewire.
  • an ultrasound catheter In addition to having excellent flexibility, it is also desirable for an ultrasound catheter to have a rounded and/or soft tip assembly for minimizing trauma or damage to the tissue along the inner wall of the blood vessel. This feature is particularly important during advancement through small blood vessels in the neurovasculature.
  • FIG. 7A illustrates an alternative embodiment wherein the distal end portion of an ultrasound catheter is provided with a soft tip assembly 700 .
  • the ultrasound catheter generally comprises an elongate shaft body 702 , an ultrasound radiating element 704 , an elongate soft tip 706 and a connecting sleeve 708 .
  • the soft tip 706 of the catheter is constructed to be softer and more flexible than the shaft body 702 for the purpose of minimizing or eliminating damage to the tissue along the inner wall of a blood vessel.
  • the soft tip 706 is configured as a substantially hollow member including a delivery lumen 710 .
  • the lumen 710 may be used for receiving a guidewire and/or for delivering drugs to a treatment site.
  • the shaft body 702 and the soft tip 706 have substantially the same outer diameter.
  • the delivery lumen 710 terminates at an exit port 720 at the extreme distal tip of the soft tip assembly.
  • the ultrasound radiating element 704 is provided at a location just distal to the shaft body 702 and just proximal of the soft tip 710 .
  • a small gap 712 is provided between the ultrasound radiating element 704 and the elongate body 702 and also between the ultrasound radiating element 704 and the soft tip 706 .
  • a single cylindrical ultrasound radiating element 704 is provided, however, in alternative embodiments, others variations may be used, such as, for example a plurality of smaller ultrasound radiating elements.
  • the shaft body 702 , ultrasound radiating element 704 and soft tip 706 are secured together by the sleeve 708 .
  • the ultrasound radiating element 704 is contained within the lumen of the sleeve 708 .
  • the proximal end 714 of the sleeve 708 extends over the distal portion of the shaft body 702 .
  • the distal end 716 of the sleeve 708 extends over the proximal end of the soft tip 706 .
  • the sleeve 708 is formed of heat shrink tubing.
  • the sleeve 708 is preferably constructed of a material having a low impedance to ultrasound energy.
  • FIG. 7B illustrates a cross-sectional view of the soft tip assembly of FIG. 7A as seen through line 7 B- 7 B.
  • the illustrated embodiment of the soft tip assembly 706 is formed with a plurality of side holes 718 .
  • the side holes 718 are in communication with the delivery lumen 710 and are provided for enhancing the delivery of drugs to the treatment site.
  • the therapeutic agent can be delivered radially at a location closer to the ultrasound radiating element 704 .
  • the illustrated embodiment includes two side holes, however, in alternative embodiments, any number of side holes may be used without departing form the spirit and scope of the invention.
  • the soft tip assembly may be configured without any side holes.
  • the soft tip assembly may have a solid tip wherein drugs exit the tip assembly only through side ports.
  • the guidewire exits the catheter through a side port, such as in a rapid exchange or monorail catheter design.
  • the soft tip assembly includes a radiopaque material to provide for high visibility under fluoroscopy.
  • the soft tip assembly may have a variety of different lengths, such as, for example, 1 mm, 3 mm and 6 mm.
  • the ultrasound catheter is advanced over a guidewire that extends through the delivery lumen 710 .
  • the soft tip assembly bends and conforms to the shape of the blood vessel to reduce the pressure applied along the inner wall.
  • the rounded tip of the soft tip assembly also minimizes trauma to the tissue as it is advanced along the inner walls of the blood vessels.
  • the soft tip assembly can bend to facilitate the advancement of the catheter, yet will return to substantially its original shape.
  • the guidewire may be removed and the delivery lumen 710 used for the delivery of a therapeutic agent to the treatment site.
  • the soft tip assembly is preferably made of a soft polymer extrusion, such as, for example, polyimide.
  • the soft tip assembly is constructed by first cutting the extruded soft tubular body into a length of approximately 3 to 6 mm. The distal tip is then rounded and smoothed using a heated die with the desired contour. In the embodiments wherein side holes are provided, the side holes are created using a 0.010 inch hole plunger. The soft tip assembly is then attached to the elongate shaft body using an adhesive or by thermal bonding. Alternatively, a length of heat shrink tubing may be used to secure the shaft body to the soft tip assembly.
  • FIGS. 8 and 9 illustrate another modified embodiment of an ultrasound catheter 850 .
  • an ultrasound radiating element 852 is connected to or mounted on a distal end 854 of a guidewire 856 .
  • the ultrasound radiating element 852 is in the shape of a hollow cylinder.
  • the guidewire 856 can extend through the ultrasound radiating element 852 , which is positioned over the guidewire 856 .
  • the ultrasound radiating element 852 can be secured to the guidewire 856 in any suitable manner, such as with an adhesive.
  • the ultrasound radiating element 856 can be of a different shape, such as, for example, a solid cylinder, a disk, a solid rectangle or a plate attached to the guidewire 856 .
  • the ultrasound radiating element 852 can also be formed from a plurality of smaller ultrasound elements.
  • ultrasound energy is generated from electrical power supplied to the ultrasound radiating element 852 .
  • the ultrasound radiating element 852 is connected to a pair of wires 860 , 862 that can extend through the catheter body.
  • the wires 860 , 862 are preferably secured to the guidewire 856 with the first wire 860 is connected to the hollow center of the ultrasound radiating element 852 and the second wire 862 connected to the outer periphery of the ultrasound radiating element 852 .
  • the ultrasound radiating element 852 is preferably formed from, but is not limited to, a piezolectic ceramic oscillator or a similar material.
  • Other wiring schemes include wires connected to both ends of a solid transducer or both sides of a block.
  • the ultrasound radiating element 852 and the wires 860 , 862 are preferably covered with a thin insulating material 857 .
  • FIG. 9 illustrates one embodiment of a catheter 850 that can be used with the guidewire 856 described above.
  • the catheter 850 includes an outer sheath 866 , which defines the delivery lumen 868 .
  • the illustrated embodiment does not include an inner core.
  • the delivery lumen 868 includes a distal opening 870 .
  • the distal opening 870 can be configured such that the guidewire 856 and the ultrasound radiating element 852 can be withdrawn into the catheter 850 through the distal opening 870 .
  • a distal end 872 of the catheter 850 preferably includes a sleeve 874 , that is constructed from a material that readily transmits ultrasound energy as described above.
  • the distal opening 870 can be configured such that ultrasound radiating element 852 can not be withdrawn into the catheter 850 through the distal opening 870 .
  • the ultrasound radiating element 852 is configured to operate outside the catheter 850 near the distal opening 870 .
  • the distal end 854 of the guidewire 856 is percutaneously inserted into the arterial system at a suitable first puncture site.
  • the guidewire 856 and the ultrasound radiating element 852 are advanced through the vessels towards a treatment site, which includes a thrombotic occlusion.
  • the guidewire 856 is preferably then directed through the thrombotic occlusion.
  • the catheter 850 is thereafter percutaneously inserted into the first puncture site and advanced along the guidewire 856 towards the treatment site using traditional over-the-iques. guidewire techniques.
  • the catheter 850 is advanced until the distal end of the catheter 856 is positioned at or within the occlusion.
  • the distal end includes radio opaque markers to aid positioning the distal end within the treatment site.
  • the guidewire 856 can then be withdrawn until the ultrasound radiating element 852 is positioned within the distal end 874 of the catheter 850 .
  • the catheter 850 can include a proximal stop 875 to aid the positioning of the ultrasound radiating element 852 .
  • the guidewire can be withdrawn until the ultrasound radiating element 852 is located near or adjacent the distal opening 870 . The catheter 850 can then be operated as described above.
  • a standard guidewire (not shown) is percutaneously inserted into the first puncture site and advanced through the vessels towards and preferably through the occlusion.
  • the catheter 850 is thereafter percutaneously inserted into the first puncture site and advanced along the standard guidewire towards the treatment site using traditional over-the-guidewire techniques.
  • the catheter 850 preferably is advanced until the distal end of the catheter 850 is positioned at or within the occlusion.
  • the standard guidewire can then be withdrawn from the delivery lumen.
  • the guidewire 856 and ultrasound radiating element 852 of FIG. 8 can then be inserted into the delivery lumen.
  • the ultrasound radiating element 852 is advanced until it is positioned in the distal end of the catheter 850 .
  • the ultrasound radiating element 852 is advanced until it exits the distal end 870 of the delivery lumen 868 .
  • the catheter can then be operated as describe above.
  • FIG. 10 illustrates yet another modified embodiment of an ultrasound catheter 1000 that can be used with the guidewire 1056 and ultrasound radiating element 1052 , as described above.
  • the guidewire lumen 1068 is defined by an inner sleeve or tube 1002 .
  • the distal end 1070 of the delivery lumen 1068 can be configured as described above for preventing or withdrawing the ultrasound radiating element 1052 into catheter 1050 .
  • the delivery lumen 1068 can be used to transport the drug solution.
  • the space 1004 between the inner core 1002 and the outer sheath 1066 can be used to transport the drug solution.
  • the outer sheath 1066 preferably includes one or more holes positioned at the distal end 1072 of the outer sheath 1066 .
  • the catheter can be advanced on the guidewire 856 of FIG. 8 or a standard guidewire as described above.
  • FIGS. 11 and 12 illustrate yet another embodiment of an ultrasound catheter 1101 that is particularly well suited for use with small vessels of the distal anatomy.
  • this embodiment of the ultrasound catheter 1101 generally comprises a treatment wire 1103 and a microcatheter 1105 .
  • FIG. 11 illustrates a preferred embodiment of a treatment wire 1103 .
  • an ultrasound radiating element 1106 is connected to the distal tip of a hypotube 1108 .
  • the ultrasound radiating element can take many shapes and forms.
  • the ultrasound radiating element 1106 is potted in an insulating material either as a conformal coating or potted inside an outer sleeve.
  • the potting 1110 over the ultrasound radiating element 1106 sections is optimized for transmission of ultrasound energy.
  • the width of the potted ultrasound radiating element 1112 is approximately 0.018 inches.
  • An epoxy or similar adhesive known in the catheter manufacturing field connects the potted ultrasound radiating element 1112 with the hypotube 1108 at junction 1114 .
  • the hypotube 1108 is made from Nitinol or stainless steel or other suitable material in accordance with the techniques and materials known in the catheter manufacturing field. In one embodiment, the hypotube has a diameter of approximately 0.014 to 0.015 inches.
  • the hypotube 1108 provides an insulated lumen 1116 through which one can run power wires 1118 for the ultrasound radiating element 1106 or wires for temperature sensors (not shown) in the microcatheter 1105 .
  • the microcatheter 1105 into which the treatment wire 1103 is inserted, has a diameter greater than the width of the potted ultrasound radiating element 1112 .
  • a flexible nose 1120 is connected to the distal end of the potted ultrasound radiating element 1112 .
  • An epoxy or similar adhesive known in the catheter manufacturing field connects the flexible nose 1120 to the potted ultrasound radiating element 1112 at junction 1122 .
  • the flexible nose 1120 is at least approximately 3 millimeters in length and functions as a guidewire when the treatment wire 1103 is inserted into a microcatheter 1105 .
  • the flexible nose 1120 is a soft coil made of metal or another suitable material known in the art.
  • the flexible nose 1120 facilitates the delivery of the potted ultrasound radiating element 1112 through the microcatheter 1105 and into the vessel lumen of the treatment site.
  • the flexible nose 1120 is tapered in a manner so that the distal end of the nose has a smaller diameter than the proximal end.
  • a free end of a guidewire is percutaneously inserted into the arterial system at a suitable first puncture site.
  • the guidewire is advanced through the vessels toward a treatment site, such as, for example, a thrombotic occlusion in the middle cerebral artery.
  • the microcatheter 1105 is thereafter percutaneously inserted into the first puncture site and advanced along the guidewire towards the treatment site using traditional over-the-guidewire techniques.
  • the catheter 1105 is advanced until the distal end 1199 of the catheter 1105 is positioned at or within the occlusion.
  • the distal end 1199 includes radio opaque markers to aid positioning the distal end 1199 within the treatment site.
  • the guidewire can then be withdrawn from the delivery lumen 1197 of the microcatheter 1105 .
  • the treatment wire 1103 is then inserted and advanced through the microcatheter 1105 to the treatment site.
  • the potted ultrasound radiating element 1112 of the treatment wire 1103 is advanced beyond the distal end 1199 of the microcatheter and into lumen of the vessel. Once at the target site, the ultrasound radiating element 1106 provides ultrasound energy.
  • drugs 1124 are infused through the microcatheter 1105 and delivered into the vessel around the ultrasound radiating element 1106 at the same time the ultrasound radiating element 1106 emits energy. It is believed that the transmission of ultrasound energy at the treatment site enhances drug uptake and activity and has other therapeutic effects.
  • the potted ultrasound radiating element 1112 extends far enough away from the distal tip 1199 of the microcatheter 1105 to facilitate the infusion of drugs (shown by arrow 1124 ) through the microcatheter 1105 and into the vessel.
  • an ultrasound radiating member is positioned between an inner elongate tubular body and an outer elongate tubular body, it is desired to pass elongate electrical conductors to the ultrasound radiating member from the proximal end of the catheter, thereby allowing an externally-generated driving signal to be provided to the ultrasound radiating member.
  • a temperature sensor is positioned in the distal region of the catheter, it is desired to pass one or more elongate electrical conductors to the temperature sensor from the proximal end of the catheter, thereby allowing a distal temperature signal to be monitored at the proximal end of the catheter.
  • the configuration of such elongate electrical conductors can be manipulated to affect the stiffness, torqueability, pushability, flexibility and other mechanical parameters of the catheter, thereby affecting accessibility of remote targets in the patient's vasculature.
  • Such embedded conductor configurations are discussed in greater detail in this section. These embodiments are particularly well-suited for use with small vessels of the distal anatomy, such as, for example, the vessels of the neurovascular system. However, such embodiments are also well-suited for the treatment of long segment peripheral arterial occlusions.
  • an ultrasonic catheter 1200 generally comprises a multi-component tubular body 1201 having a proximal end 1204 and a distal end 1202 .
  • the tubular body 1201 and other components of the catheter 1200 can be manufactured in accordance with any of a variety of techniques well known in the catheter manufacturing field, and as explained above.
  • the ultrasonic catheter 1200 also comprises one or more ultrasound radiating members 1240 at its distal end 1202 .
  • Suitable material dimensions for the ultrasound radiating member 1240 can be readily selected taking into account the natural and anatomical dimensions of the treatment site and of the desired percutaneous access site, as explained above.
  • the ultrasonic catheter 1200 further comprises a temperature sensor (not shown) positioned within the catheter distal region, as described above.
  • a central lumen 1251 can be concentrically placed over a guidewire (not shown) which has been previously navigated to the target area under, for example, fluoroscopic localization by a skilled surgeon or medical practitioner.
  • the ultrasonic catheter 1200 generally comprises one or more electrically conductive wires or fibers 1206 , 1208 that extend along the length of the catheter 1200 .
  • the conductive wires 1206 , 1208 generally reside within the wall 1210 of the tubular body 1201 .
  • the wall 1210 of the tubular body 1201 comprises an inner portion 1212 and an outer portion 1214 .
  • the conductive wires 1206 , 1208 can be located in between the inner portion 1212 and outer portion 1214 of the wall 1210 .
  • the inner portion 1212 provides a barrier against the contents of the central lumen 1251 , such as, for example, therapeutic drugs infused through the central lumen 1251 and out the distal end 1202 of the catheter to a treatment site within the patient's vasculature.
  • the outer portion 1214 provides a barrier against the environment in which the catheter 1200 resides, which may include, for example, blood or other bodily fluids.
  • the conductive wires 1206 , 1208 are also preferably electrically isolated from each other.
  • the wires 1206 , 1208 are arranged and configured in a manner to prevent contact between them.
  • the wires 1206 , 1208 may be arranged along and/or around the central lumen in a manner which prevents any contact between the wires 1206 , 1208 .
  • electrically insulating material may placed between the wires 1206 , 1208 to prevent contact between them.
  • the wires 1206 , 1208 are covered with insulating coating material either in addition to or in lieu of placing insulating material between the wires 1206 , 1208 or making the wall 1210 from insulating material.
  • the physical configuration or layout of the conductive wires 1206 and 1208 embedded within the wall 1210 of the tubular body 1201 can be adjusted to determine the mechanical attributes of the catheter 1200 .
  • the conductive wires 1206 , 1208 may be arranged in various architectures such as, for example, linear arrays, weaving, spiraling, and other patterns which modulate stiffness, torquability, pushability, flexibility and other mechanical parameters of the catheter which relate to accessibility of remote targets.
  • both conductive wires 1206 , 1208 spiral around the central lumen 1251 and remain substantially parallel to each other at all times along the length of the catheter 1200 .
  • the wires 1206 , 1208 are covered with insulating coating material.
  • the conductive wires 1206 , 1208 are covered with insulating coating material or separated with insulating material and are contained in a unitary cable 1216 . In such embodiments, the cable 1216 spirals around the central lumen 1251 along the length of the catheter 1200 .
  • the conductive wires 1206 , 1208 are covered with insulating coating material and are spiraled in opposite directions, thereby forming a helix or helical pattern around the central lumen 1251 .
  • the wires 1206 , 1208 cross each other, but remain electrically isolated from each other due to the insulating coating material around each wire.
  • the conductive wires 1206 , 1208 run in a generally straight line along the length of the catheter 1200 , and do not spiral around the central lumen 1251 or cross each other.
  • the wires 12606 , 12608 can optionally be covered with an insulating coating material.
  • the ultrasound catheter comprises an outer tubular body 1400 surrounding an inner core 1402 .
  • the inner core 1402 defines a central lumen 1408 that can be used to pass a guidewire, a cooling fluid or a therapeutic compound through the ultrasonic catheter.
  • a tubular ultrasound radiating member 1404 is positioned between the outer tubular body 1400 and the inner core 1402 .
  • the outer tubular body 1400 and the inner core 1402 are separated by an insulating layer 1406 .
  • the inner core outer surface 1410 and the outer tubular body inner surface 1412 are electrically conductive, and are electrically connected to opposite poles of a power supply (not shown).
  • Such electrically conductive surfaces can be created by depositing an electrically conductive material onto the desired surface.
  • the conductive surfaces are separated by the insulating layer 1406 along the length of the catheter, and the presence of the ultrasound radiating member 1404 in the catheter distal region completes the electric circuit.
  • the conductive surfaces are separated by the insulating layer 1406 along the length of the catheter, and the presence of the ultrasound radiating member 1404 in the catheter distal region completes the electric circuit.
  • opposite surfaces of the ultrasound radiating member contact conductive surfaces of opposite polarity 1410 , 1412 , a voltage difference is created across the ultrasound radiating member, thereby causing ultrasonic vibrations to be created.
  • Such embodiments allow the ultrasound radiating member 1404 to be driven while eliminating any wires passing along the catheter body, such as illustrated in FIGS. 13A through 15. Elimination of wiring in the catheter body reduces manufacturing costs and reduces overall catheter dimensions, thereby increasing catheter maneuverability. Elimination of wiring can also increase catheter flexibility. Thus, in applications where the ultrasound catheter is to be passed through a small or tortuous portion of the vasculature, it may be desired to use such embodiments.
  • the catheter is made from tubing which is fabricated from a polymer material that is extruded through a dye in a molten state and that is solidified while being drawn.
  • an electrically insulating material is extruded through the dye.
  • manufacturing equipment is used to co-extrude polymer support fibers, such as, for example, Kevlar, into the tubing wall in a linear, spiral, or woven pattern.
  • electrically conductive wires or fibers are used in lieu of polymer support fibers.
  • conductive fibers include, but are not limited to, copper, carbon, steel, and stainless steel.
  • the conductive fibers are pre-coated with an insulating coating before they are co-extruded.
  • the wires are sandwiched between two concentric tubes, an inner tube and an outer tube, both of which initially have approximately half the wall thickness of the final assembled catheter.
  • the inner diameter of the inner tube determines the diameter of the final assembled catheter.
  • the inner diameter of the outer tube is significantly greater than the outer diameter of the inner tube.
  • the inner and outer tubes can be made from an electrically isolating material.
  • the catheter is assembled by winding or placing conductive fiber or wire over the inner tube; concentrically translating the outer tube over the inner tube and the fiber wrapping or abutting the inner tube; and radially shrinking the outer tube onto the inner tube such that the conductive fiber is trapped between the inner and outer tubes.
  • the conductive fibers are pre-coated with an insulating coating before they are incorporated into the above described sandwich construction.
  • the various configurations and arrangements of the elongate electrical conductors described herein can be used regardless of whether such elongate electrical conductors are connected to an ultrasound radiating member or a temperature sensor at the catheter distal end.

Abstract

An ultrasound catheter comprises an elongate tubular body. The elongate tubular body has a proximal region and a distal region opposite the proximal region. The tubular body defines a central lumen having a central lumen diameter. The ultrasound catheter further comprises an elongate, hollow inner core extending through the central lumen. The elongate, hollow inner core has an inner core outer diameter that is less than or equal to the central lumen diameter. The ultrasound catheter further comprises an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core. The ultrasound catheter further comprises at least two electrical conductors extending between the tubular body proximal region and the tubular body distal region. The at least two electrical conductors are positioned between the tubular body and the inner core. The at least two electrical conductors are electrically connected to the ultrasound radiating member. The at least two electrical conductors are wrapped around the inner core a plurality of times in a region between the ultrasound radiating member and the tubular body proximal region.

Description

    RELATED APPLICATIONS
  • J This application claims priority under 35 U.S.C. § 119(e) from U.S. Provisional Patent Application Serial No. 60/361,341, entitled “Small Vessel Catheter with Embedded Conductors” and filed Feb. 28, 2002. The entire disclosure of this priority document is hereby incorporated by reference in its entirety. In addition, the application is a continuation-in-part of U.S. patent application Ser. No. 10/309,417, entitled “Small Vessel Ultrasonic Catheter” and filed Dec. 3, 2002, which is hereby incorporated by reference in its entirety.[0001]
  • FIELD OF THE INVENTION
  • The present invention relates to a catheter having an ultrasound assembly useful for delivering ultrasound energy at a treatment site in a body. The apparatus is particularly well suited for delivering ultrasound energy at a treatment site located within a small blood vessel in the distal anatomy. [0002]
  • BACKGROUND OF THE INVENTION
  • Several therapeutic and diagnostic applications use ultrasound energy. For example, ultrasound energy can be used to enhance the delivery and therapeutic effect of various therapeutic compounds. See e.g., U.S. Pat. Nos. 4,821,740, 4,953,565 and 5,007,438, the entire disclosure of which is hereby incorporated by reference herein. In some applications, it is desirable to use an ultrasound catheter to deliver the ultrasound energy and/or therapeutic compound to a specific treatment site in the body. Such an ultrasound catheter typically comprises an elongate member configured for advancement through a patient's vasculature. An ultrasound assembly is mounted along the distal end portion of the elongate member and is adapted for emitting ultrasound energy. The ultrasound catheter may include a delivery lumen for delivering the therapeutic compound to the treatment site. In this manner, the ultrasound energy can be emitted at the treatment site to enhance the desired therapeutic effects and/or delivery of the therapeutic compound. [0003]
  • In one particular application, ultrasound catheters have been successfully used to treat human blood vessels that have become occluded by plaque, thrombi, emboli or other substances that reduce the blood carrying capacity of the vessel. See e.g., U.S. Pat. No. 6,001,069, the entire disclosure of which is hereby incorporated by reference herein. To remove the blockage, the ultrasound catheter is advanced through the patient's vasculature to deliver solutions containing dissolution compounds directly to the blockage site. To enhance the therapeutic effects of the dissolution compound, ultrasound energy is emitted into the compound and/or the surrounding tissue. [0004]
  • In another application, ultrasound catheters may be used to perform gene therapy on an isolated region of a blood vessel or other body lumen. For example, as disclosed in U.S. Pat. No. 6,135,976, the entire disclosure of which is hereby incorporated by reference herein, an ultrasound catheter can be provided with one or more expandable members for occluding a section of the body lumen at a treatment site. A gene therapy composition is delivered to the treatment site through the delivery lumen of the catheter. The ultrasound assembly is used to emit ultrasound energy at the treatment site to enhance the entry of the gene composition into the cells in the body lumen. [0005]
  • In addition to the applications discussed above, ultrasound catheters may be used for a wide variety of other purposes, such as, for example, delivering and activating light activated drugs with ultrasound energy (see e.g., U.S. Pat. No. 6,176,842, the entire disclosure of which is hereby incorporated by reference herein). [0006]
  • Over the years, numerous types of ultrasound catheters have been proposed for various therapeutic purposes. However, none of the existing ultrasound catheters is well adapted for effective use within small blood vessels in the distal anatomy. For example, in one primary shortcoming, the region of the catheter on which the ultrasound assembly is located (typically along the distal end portion) is relatively rigid and therefore lacks the flexibility necessary for navigation through difficult regions of the distal anatomy. Furthermore, it has been found that it is very difficult to manufacture an ultrasound catheter having a sufficiently small diameter for use in small vessels while providing adequate pushability and torqueability. Still further, it has been found that the distal tip of an ultrasound catheter can easily damage the fragile vessels of the distal anatomy during advancement through the patient's vasculature. [0007]
  • Accordingly, an urgent need exists for an improved ultrasound catheter that is capable of safely and effectively navigating small blood vessels. It is also desirable that such a device be capable of delivering adequate ultrasound energy to achieve the desired therapeutic purpose. It is also desirable that such a device be capable of accessing a treatment site in fragile distal vessels in a manner that is safe for the patient and that is not unduly cumbersome. The present invention addresses these needs. [0008]
  • SUMMARY OF THE INVENTION
  • In accordance with the foregoing, it is desired to provide an ultrasound catheter having increased flexibility and maneuverability. Such features are advantageous when a treatment is to be performed in the peripheral vasculature, and are especially advantageous when a treatment is to be performed in small vessels, such as in the neurovascular system. [0009]
  • As such, according to one embodiment of the present invention, an ultrasound catheter comprises an elongate tubular body. The elongate tubular body has a proximal region and a distal region opposite the proximal region. The tubular body defines a central lumen having a central lumen diameter. The ultrasound catheter further comprises an elongate, hollow inner core extending through the central lumen. The elongate, hollow inner core has an inner core outer diameter that is less than or equal to the central lumen diameter. The ultrasound catheter further comprises an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core. The ultrasound catheter further comprises at least two electrical conductors extending between the tubular body proximal region and the tubular body distal region. The at least two electrical conductors are positioned between the tubular body and the inner core. The at least two electrical conductors are electrically connected to the ultrasound radiating member. The at least two electrical conductors are wrapped around the inner core a plurality of times in a region between the ultrasound radiating member and the tubular body proximal region. [0010]
  • According to another embodiment of the present invention, an ultrasound catherter comprises an elongate tubular body. The elongate tubular body has a proximal region and a distal region opposite the proximal region. The tubular body defines a central lumen having a central lumen diameter. The ultrasound catheter further comprises an elongate, hollow inner core extending through the central lumen. The elongate, hollow inner core has an inner core outer diameter that is less than or equal to the central lumen diameter. The ultrasound catheter further comprises an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core. The ultrasound catheter further comprises at least two electrical conductors extending between the tubular body proximal region and the tubular body distal region. The at least two electrical conductors are positioned between the tubular body and the inner core. The at least two electrical conductors are electrically connected to the ultrasound radiating member. The at least two electrical conductors are disposed substantially parallel to a catheter axis in a region between the ultrasound radiating member and the tubular body proximal region. [0011]
  • According to another embodiment of the present invention, an apparatus comprises an elongate, hollow body. The elongate, hollow body has a proximal region, a distal region opposite the proximal region, a body thickness, and an inner lumen. The apparatus futher comprises an ultrasound radiating member positioned within the body thickness of the elongate, hollow body. The apparatus further comprises a plurality of elongate eletrical conductors extending between the elongate, hollow body proximal region and the ultrasound radiating member. The plurality of elongate electrical conductors are positioned within the body thickness of the elongate, hollow body.[0012]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a side view of an ultrasound catheter that is particularly well suited for insertion into small blood vessels of the human body. [0013]
  • FIG. 2A is a cross-sectional view of a distal end of the ultrasound catheter of FIG. 1. [0014]
  • FIG. 2B is a cross-sectional view of the ultrasound catheter taken through [0015] line 2B-2B of FIG. 2A.
  • FIG. 3 is an alternative embodiment of the ultrasound catheter including a stiffener at the distal tip. [0016]
  • FIG. 4 is a cross-sectional view of the distal end of an ultrasound catheter wherein a portion of the inner core has a corrugated configuration for enhanced flexibility. [0017]
  • FIG. 5 is a cross-sectional view of the distal end of an ultrasound catheter wherein the proximal joint comprises braided sections for enhanced flexibility. [0018]
  • FIG. 6A is a cross-sectional view of the distal end of an ultrasound catheter including a bendable wire adapted for providing a shapeable tip. [0019]
  • FIG. 6B is a cross-sectional view of the embodiment of FIG. 6A with the shapeable tip pre-formed to facilitate advancement over a guidewire. [0020]
  • FIG. 7A is a top view of the distal end of an ultrasound catheter having a soft tip assembly. [0021]
  • FIG. 7B is a cross-sectional view of the soft tip assembly taken through [0022] line 7B-7B of FIG. 7A.
  • FIG. 8 is a side view an ultrasound element attached to the distal end of a guidewire. [0023]
  • FIG. 9 is a cross-sectional view of an ultrasound catheter used with the ultrasound element and guidewire of FIG. 8. [0024]
  • FIG. 10 is a cross-sectional view of a distal end of another modified embodiment of an ultrasound catheter that can be used with the ultrasound element and guidewire of FIG. 8. [0025]
  • FIG. 11 is a side view of a distal end of a treatment wire wherein an ultrasound element is provided along the distal end of a hypotube. [0026]
  • FIG. 12 is a side view of a distal end of an ultrasound catheter that incorporates the treatment wire of FIG. 11. [0027]
  • FIG. 13A is a partial cutaway view of one embodiment of an ultrasound catheter with embedded conductive wires that are spirally wrapped parallel to each other. [0028]
  • FIG. 13B is a partial cutaway view of one embodiment of an ultrasound catheter with embedded conductive wires that are spirally wrapped into a unitary cable. [0029]
  • FIG. 14 is a partial cutaway view of one embodiment of an ultrasound catheter with embedded conductive wires that are spirally wrapped in a nonparallel [0030]
  • FIG. 15 is a partial cutaway view of one embodiment of an ultrasound catheter with embedded conductive wires that are disposed substantially parallel to the [0031]
  • FIG. 16A illustrates a longitudinal cross-sectional view of an ultrasound catheter having internal surfaces that are electrically conductive. [0032]
  • FIG. 16B illustrates a cross-sectional view of the ultrasound catheter of FIG. 16A taken along [0033] line 16B-16B.
  • DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
  • The advancement of an ultrasound catheter through a blood vessel to a treatment can be difficult and dangerous, particularly when the treatment site is located with a small vessel in the distal region of a patient's vasculature. To reach the treatment site, it is often necessary to navigate a tortuous path around difficult bends and turns. During advancement through the vasculature, bending resistance along the distal end portion of the catheter can severely limit the ability of the catheter to make the necessary turns. Moreover, as a catheter is advanced, the distal tip of the catheter is often in contact with the inner wall of the blood vessel. The stiffness and rigidity of the distal tip of the catheter may lead to significant trauma or damage to the tissue along the inner wall of the blood vessel. As a result, advancement of an ultrasound catheter through small blood vessels can be extremely hazardous. Therefore, a need exists for an improved ultrasound catheter design that allows a physician to more easily navigate difficult turns in small blood vessels while minimizing trauma and/or damage along the inner walls of the blood vessels. [0034]
  • To address this need, preferred embodiments of the present invention described herein provide an ultrasound catheter that is well suited for use in the treatment of small blood vessels or other body lumens having a small inner diameter. The ultrasound catheter can be used to enhance the therapeutic effects of drugs, medication and other pharmacological agents at a treatment site within the body. See e.g., U.S. Pat. Nos. 5,318,014, 5,362,309, 5,474,531, 5,628,728, 6,001,069, and 6,210,356. Certain preferred embodiments of the ultrasound catheter are particularly well suited for use in the treatment of thrombotic occlusions in small blood vessels, such as, for example, the cerebral arteries. In addition, preferred embodiments may also find utility in other therapeutic applications, such as, for example, performing gene therapy (see e.g., U.S. Pat. No. 6,135,976), activating light activated drugs for producing targeted tissue death (see e.g., U.S. Pat. No. 6,176,842) and causing cavitation to produce various desirable biological effects (see e.g., U.S. Patent No. RE36,939). Moreover, such therapeutic applications may be used in wide variety of locations within the body, such as, for example, in other parts of the circulatory system, solid tissues, duct systems and body cavities. It is also anticipated that the ultrasound catheters disclosed herein, and variations thereof, may find utility in other medical applications, such as, for example, diagnostic and imaging applications. [0035]
  • Ultrasound catheters and methods disclosed herein, and similar variations thereof, may also be useful for applications wherein the ultrasound energy provides a therapeutic effect by itself. For example, ultrasound energy may be effective for uses such as preventing and/or reducing stenosis and/or restenosis, tissue ablation, abrasion or disruption, promoting temporary or permanent physiological changes in intracellular or intercellular structures, or rupturing micro-balloons or micro-bubbles for drug delivery. See e.g., U.S. Pat. Nos. 5,269,291 and 5,431,663. In addition, the methods and devices disclosed herein may also find utility in applications that do not require the use of a catheter. For example the methods and devices may be used for enhancing hyperthermic drug treatment or using an external ultrasound source to enhance the therapeutic effects of drugs, medication and other pharmacological agents at a specific site within the body or to provide a therapuetic or diagnostic effect by itself. See e.g., U.S. Pat. Nos. 4,821,740, 4,953,565, 5,007,438 and 6,096,000. The entire disclosure of each of the patents mentioned in this paragraph and the previous paragraph is hereby incorporated by reference herein and made a part of this specification. [0036]
  • As used herein, the term “ultrasound energy” is a broad term and is used in its ordinary sense and means, without limitation, mechanical energy transferred through pressure of compression waves with a frequency greater than about 20 KHz. In one embodiment, the waves of the ultrasound energy have a frequency between about 500 KHz and 20 MHz and in another embodiment between about 1 MHz and 3 MHz. In yet another embodiment, the waves of the ultrasound energy have a frequency of about 3 MHz. [0037]
  • As used herein, the term “catheter” is a broad term and is used in its ordinary sense and means, without limitation, an elongate flexible tube configured to be inserted into the body of a patient, such as, for example, a body cavity, duct or vessel. [0038]
  • Preferred Features of an Ultrasound Catheter
  • Referring now to FIGS. 1 through 2B, for purposes of illustration, preferred embodiments of the present invention provide an [0039] ultrasound catheter 100 that is particulary well suited for use within small vessels of the distal anatomy, such as, for example, in the remote, small diameter, neurovasculature in the brain.
  • As shown in FIGS. 1 and 2A, the [0040] ultrasound catheter 100 generally comprises a multi-component tubular body 102 having a proximal end 104 and a distal end 106. The tubular body 102 and other components of the catheter 100 can be manufactured in accordance with any of a variety of techniques well know in the catheter manufacturing field. As discussed in more detail below, suitable material dimensions can be readily selected taking into account the natural and anatomical dimensions of the treatment site and of the desired percutaneous access site.
  • Preferably, the [0041] tubular body 102 can be divided into at least three sections of varying stiffness. The first section, which preferably includes the proximal end 104, is generally more stiff than a second section, which lies between the proximal end 104 and the distal end 106 of the catheter. This arrangement facilitates the movement and placement of the catheter 102 within small vessels. The third section, which includes ultrasound radiating element 124, is generally stiffer than the second section due to the presence of the ultrasound radiating element 124.
  • In each of the embodiments described herein, the assembled ultrasound catheter preferably has sufficient structural integrity, or “pushability,” to permit the catheter to be advanced through a patient's vasculature to a treatment site without buckling or kinking. In addition, the catheter has the ability to transmit torque, such that the distal portion can be rotated into a desired orientation after insertion into a patient by applying torque to the proximal end. [0042]
  • The elongate flexible [0043] tubular body 102 comprises an outer sheath 108 (see FIG. 2A) that is positioned upon an inner core 110. In an embodiment particularly well suited for small vessels, the outer sheath 108 comprises extruded PEBAX, PTFE, PEEK, PE, polymides, braided polymides and/or other similar materials. The distal end portion of the outer sheath 108 is adapted for advancement through vessels having a very small diameter, such as those in the neurovasculature of the brain. Preferably, the distal end portion of the outer sheath 108 has an outer diameter between about 2 and 5 French. More preferably, the distal end portion of the outer sheath 108 has an outer diameter of about 2.8 French. In one preferred embodiment, the outer sheath 108 has an axial length of approximately 150 centimeters.
  • In other embodiments, the [0044] outer sheath 108 can be formed from a braided tubing formed of, by way of example, high or low density polyethylenes, urethanes, nylons, etc. Such an embodiment enhances the flexibility of the tubular body 102. For enhanced pushability and torqueability, the outer sheath 108 may be formed with a variable stiffness from the proximal to the distal end. To achieve this, a stiffening member may be included along the proximal end of the tubular body 102.
  • The [0045] inner core 110 defines, at least in part, a delivery lumen 112, which preferably extends longitudinally along the entire length of the catheter 100. The delivery lumen 112 has a distal exit port 114 and a proximal axis port 116. Referring again to FIG. 1, the proximal access port 116 is defined by drug inlet port 117 of a back end hub 118, which is attached to the proximal end 104 of the other sheath 108. The illustrated back end hub 118 is preferably attached to a control box connector 120, the utility of which will be described in more detail below.
  • The [0046] delivery lumen 112 is preferably configured to receive a guide wire (not shown). Preferably, the guidewire has a diameter of approximately 0.008 to 0.012 inches. More preferably, the guidewire has a diameter of about 0.010 inches. The inner core 110 is preferably formed from polymide or a similar material which, in some embodiments, can be braided to increase the flexibility of the tubular body 102.
  • With particular reference to FIGS. 2A and 2B, the [0047] distal end 106 of the catheter 102 preferably includes the ultrasound radiating element 124. In the illustrated embodiment, the ultrasound radiating element 124 comprises an ultrasound transducer, which converts, for example, electrical energy into ultrasound energy. In a modified embodiment, the ultrasound energy can be generated by an ultrasound transducer that is remote from the ultrasound radiating element 124 and the ultrasound energy can be transmitted via, for example, a wire to the ultrasound radiating element 124.
  • In the embodiment illustrated in FIGS. 2A and 2B, the [0048] ultrasound radiating element 124 is configured as a hollow cylinder. As such, the inner core 110 can extend through the lumen of the ultrasound radiating element 124. The ultrasound radiating element 124 can be secured to the inner core 110 in any suitable manner, such as with an adhesive. A potting material may also be used to further secure the mounting of the ultrasound radiating element along the central core.
  • In other embodiments, the [0049] ultrasound radiating element 124 can be configured with a different shape without departing from the scope of the invention. For example, the ultrasound radiating element may take the form of a solid rod, a disk, a solid rectangle or a thin block. Still further, the ultrasound radiating element 124 may comprise a plurality of smaller ultrasound radiating elements. The illustrated arrangement is the generally preferred configuration because it provides for enhanced cooling of the ultrasound radiating element 124. For example, in one preferred embodiment, a drug solution can be delivered through the delivery lumen 112. As the drug solution passes through the lumen of the ultrasound radiating element, the drug solution may advantageously provide a heat sink for removing excess heat generated by the ultrasound radiating element 124. In another embodiment, a return path can be formed in the space 138 between the outer sheath and the inner core such that coolant from a coolant system can be directed through the space 138.
  • The [0050] ultrasound radiating element 40 is preferably selected to produce ultrasound energy in a frequency range that is well suited for the particular application. Suitable frequencies of ultrasound energy for the applications described herein include, but are not limited to, from about 20 KHz to about 20 MHz. In one embodiment, the frequency is between about 500 KHz and 20 MHz and in another embodiment from about 1 MHz and about 3 MHz. In yet another embodiment, the ultrasound energy has a frequency of about 3 MHz.
  • As mentioned above, in the illustrated embodiment, ultrasound energy is generated from electrical power supplied to the [0051] ultrasound radiating element 124. The electrical power can be supplied through the controller box connector 120, which is connected to a pair wires 126, 128 that extend through the catheter body 102. The electrical wires 126, 128 can be secured to the inner core 110, lay along the inner core 110 and/or extend freely in the space between the inner core 110 and the outer sheath 108. In the illustrated arrangement, the first wire 126 is connected to the hollow center of the ultrasound radiating element 124 while the second wire 128 is connected to the outer periphery of the ultrasound radiating element 124. The ultrasound radiating element 124 is preferably, but is not limited to, a transducer formed of a piezolectic ceramic oscillator or a similar material.
  • With continued reference to FIGS. 2A and 2B, the [0052] distal end 104 of the catheter 100 preferably includes a sleeve 130, which is generally positioned about the ultrasound radiating element 124. The sleeve 130 is preferably constructed from a material that readily transmits ultrasound energy. Suitable materials for the sleeve 130 include, but are not limited to, polyolefins, polyimides, polyester and other materials having a relatively low impedance to ultrasound energy. Low ultrasound impedance materials are materials that readily transmit ultrasound energy with minimal absorption of the ultrasound energy. The proximal end of the sleeve 130 can be attached to the outer sheath 108 with an adhesive 132. To improve the bonding of the adhesive 132 to the outer sheath 108, a shoulder 127 or notch may be formed in the outer sheath for attachment of the adhesive thereto. Preferably, the outer sheath 108 and the sleeve 130 have substantially the same outer diameter.
  • In a similar manner, the distal end of the [0053] sleeve 130 can be attached to a tip 134. In the illustrated arrangement, the tip 134 is also attached to the distal end of the inner core 110. Preferably, the tip is between about 0.5 and 4.0 millimeters in length. More preferably, the tip is about 2.0 millimeters in length. As illustrated, the tip is preferably rounded in shape to reduce trauma or damage to tissue along the inner wall of a blood vessel or other body structure during advancement toward a treatment site.
  • With continued reference to FIG. 2B, the [0054] catheter 100 preferably includes at least one temperature sensor 136 along the distal end 106. The temperature sensor 136 is preferably located on or near the ultrasound radiating element 124. Suitable temperature sensors include but are not limited to, diodes, thermistors, thermocouples, resistance temperature detectors (RTDs), and fiber optic temperature sensors that used thermalchromic liquid crystals. The temperature sensor is preferably operatively connected to a control box (not shown) through a control wire, which extends through the catheter body 102 and back end hub 118 and is operatively connected to a control box through the control box connector 120. The control box preferably includes a feedback control system having the ability to monitor and control the power, voltage, current and phase supplied to the ultrasound radiating element. In this manner, the temperature along the relevant region of the catheter can be monitored and controlled for optimal performance. Details of the control box can be found in Assignee's copending provisional application entitled CONTROL POD FOR ULTRASONIC CATHETER, Application Serial No. 60/336,630, filed Dec. 3, 2001, which is incorporated by reference in its entirety.
  • In one exemplary application of the [0055] ultrasound catheter 100 described above, the apparatus may be used to remove a thrombotic occlusion from a small blood vessel. In one preferred method of use, a free end of a guidewire is percutaneously inserted into the patient's vasculature at a suitable first puncture site. The guidewire is advanced through the vasculature toward a treatment site wherein the blood vessel is occluded by the thrombus. The guidewire wire is preferably then directed through the thrombus.
  • After advancing the guidewire to the treatment site, the [0056] catheter 100 is thereafter percutaneously inserted into the vasculature through the first puncture site and is advanced along the guidewire towards the treatment site using traditional over-the-guidewire techniques. The catheter 100 is advanced until the distal end 106 of the catheter 100 is positioned at or within the occlusion. The distal end 106 of the catheter 100 may include one or more radiopaque markers (not shown) to aid in positioning the distal end 106 within the treatment site.
  • After placing the catheter, the guidewire can then be withdrawn from the [0057] delivery lumen 112. A drug solution source (not shown), such as a syringe with a Luer fitting, is attached to the drug inlet port 117 and the controller box connector 120 is connected to the control box. As such, the drug solution can be delivered through the delivery lumen 112 and out the distal access port 114 to the thrombus. Suitable drug solutions for treating a thrombus include, but are not limited to, an aqueous solution containing Heparin, Uronkinase, Streptokinase, and/or tissue Plasminogen Activator (TPA).
  • The [0058] ultrasound radiating element 124 is activated to emit ultrasound energy from the distal end 106 of the catheter 100. As mentioned above, suitable frequencies for the ultrasound radiating element 124 include, but are not limited to, from about 20 KHz to about 20 MHz. In one embodiment, the frequency is between about 500 KHz and 20 MHz and in another embodiment between about 1 MHz and 3 MHz. In yet another embodiment, the ultrasound energy is emitted at a frequency of about 3 MHz. The drug solution and ultrasound energy are applied until the thrombus is partially or entirely dissolved. Once the thrombus has been dissolved to the desired degree, the catheter 100 is withdrawn from the treatment site.
  • Stiffening Component
  • Referring again to FIG. 2A, because the diameter of the [0059] distal exit port 114 is often relatively large compared with the diameter of the guidewire (not shown), a gap may exist between the inner rim of the tip 134 and the guidewire. If sufficiently large, this gap may cause the tip 134 of the catheter to catch or snag on an object along the exit port 114. If the tip 134 catches on an object, the exit port 114 may stretch (i.e., increase in diameter) as the catheter is pushed forward. This effect is particularly likely to occur at vessel bifurcations and will hereinafter be referred to as “fish-mouthing.”
  • FIG. 3 illustrates an embodiment adapted to reduce the likelihood of fish-mouthing wherein a [0060] circular stiffening component 140 is provided along the distal tip 134. The circular stiffening component 140 reduces the gap between the tip 134 and the guidewire, and is preferably made of a stiff material, such as, for example, aluminum, that will prevent the tip 134 from fish-mouthing. Additionally, if the guidewire is formed with a variable diameter, cooperation of the guidewire and the circular stiffening component 140 may be advantageously used as a valve. By adjusting the relative positions of the guidewire and catheter, it is possible to control the delivery of drugs, medications, or other therapeutic compounds through the exit port 114 along the tip 134. As seen in FIG. 3, this embodiment also includes a variation of the inner core 110A having a flared end that may be inserted into a circumferential notch 142 formed in the distal tip 134. Insertion of the flared end into the circumferential notch provides for enhanced structural integrity.
  • In alternative embodiments, fish-mouthing may be prevented by increasing the thickness of the [0061] tip 134, or by manufacturing the tip 134 using a material with increased stiffness. In such embodiments, the tip 134 will have decreased flexibility, and therefore will be less susceptible to fish-mouthing.
  • Flexible Joint
  • Referring again to FIG. 2A, in modified embodiments of the present invention, the rigidity of the catheter along the joint (hereinafter referred to as the “proximal element joint”) between the [0062] outer sheath 108 and sleeve 130 may be reduced significantly. The rigidity of the proximal element joint is reduced to further enhance flexibility, prevent kinking of the flexible support section of the catheter, and to facilitate tracking of the catheter over the guidewire.
  • In such embodiments, the used of an adhesive may be eliminated, and the proximal end of the [0063] sleeve 130 may be attached to the outer sheath 108 at the proximal element joint using a direct bonding method adapted to create a more flexible proximal element joint. Examples of such direct bonding methods include, but are not limited to, the use of heat, a solvent, a mold, or a cast. Alternatively, a reflow, or “die wiping” technique may be employed wherein an extruded catheter shaft is covered with a heat shrink tube and heated to reflow and bond the polymers within the catheter shaft. An external heat source may be employed in a reflow technique, or if the catheter includes metal components at the proximal element joint, radio frequency (“RF”) energy may be used to heat and bond the polymers within the catheter shaft.
  • FIG. 4 illustrates yet another alternative embodiment for reducing the rigidity of the proximal element joint to thereby enhance the flexibility of the ultrasound catheter. As illustrated in FIG. 4, the [0064] inner core 410 includes a corrugated portion 452 along the proximal element joint just proximal of the ultrasound radiating element 424. In such embodiments, a Teflon® liner 450 may be adapted to surround the inner surface of the corrugated portion 452 of the inner core 410 to prevent the guidewire from catching on the corrugations. Additionally, a flexible filler material 456 and a flexible cover sleeve 454 may be adapted to cover the exterior surface of the corrugated portion 452 of the catheter to prevent the catheter from catching on the interior walls of the vessel anatomy. A corrugated portion 452 of the inner core 410 may be created by placing a close-fitting pin within a portion of the polyimide material used to form the inner core, and applying a compressive force to the polyimide material on either side of the pin. When the pin is removed from the inner core 410, the corrugated portion 452 of the inner core 410 will have enhanced flexibility and will thereby increase the flexibility of the ultrasound catheter.
  • In still other embodiments, the rigidity of the proximal element joint may be further reduced by forming the [0065] inner core 410 of the delivery lumen 412 of a material with increased flexibility and resistance to kinking. For example, the inner core 410 of the delivery lumen 412 may comprise a Teflon®-lined polyimide shaft. Additionally, a coil or braid may be incorporated into the delivery lumen 412, thereby further reducing susceptibility to kinking without increasing the rigidity of the catheter.
  • FIG. 5 illustrates yet another alternative embodiment wherein the rigidity of the proximal element joint [0066] 548 is reduced by providing a outer sheath 508 that includes an embedded braid 560. Furthermore, the outer sheath 508 is attached to the sleeve 530 using a flexible exposed braided portion 558. A flexible filler material 556 and a flexible cover sleeve 554 are used to bond the outer sheath 508, the sleeve 530 and the exposed braided portion 558 together. This embodiment provides the catheter with a flexible region just proximal to the ultrasound radiating member 524. In various preferred embodiments, the braided sections may be formed of high or low density polyethylenes, urethanes or nylons.
  • Shapeable Tip
  • FIG. 6A illustrates yet another modified embodiment wherein the ultrasound catheter provides improved tracking over the [0067] guidewire 602. Prolapsing of a guidewire is most likely to occur at small vessel radii, where the guidewire 602 follows a sharp turn, and where the angle θ formed by the intersection between the guidewire 602 and the catheter body is large. In order to reduce the incident angle θ between the guidewire and catheter body, a tapered wire 642 is provided along the exterior of the outer sheath 608 for shaping the distal end of the catheter. The tapered wire 642 may be set in a flexible potting or filler material 644, which is contained within a flexible sleeve 646. The tapered wire 642 is preferably comprised of a pliable material, such that it may be pre-formed into a selectable desired orientation before use. Pre-forming of the tapered wire 642 assists the physician in steering the catheter to follow the guidewire 602 reliably around small vessel radii by reducing the angle θ formed by the intersection between the guidewire 602 and the catheter body. The tapered wire is preferably provided in the region surrounding the ultrasound radiating element 624. FIG. 6B illustrates the embodiment of FIG. 6A in use with the tip pre-formed for improved tracking over the guidewire.
  • Soft Tip Assembly
  • In addition to having excellent flexibility, it is also desirable for an ultrasound catheter to have a rounded and/or soft tip assembly for minimizing trauma or damage to the tissue along the inner wall of the blood vessel. This feature is particularly important during advancement through small blood vessels in the neurovasculature. [0068]
  • FIG. 7A illustrates an alternative embodiment wherein the distal end portion of an ultrasound catheter is provided with a soft tip assembly [0069] 700. In the illustrated embodiment, the ultrasound catheter generally comprises an elongate shaft body 702, an ultrasound radiating element 704, an elongate soft tip 706 and a connecting sleeve 708. The soft tip 706 of the catheter is constructed to be softer and more flexible than the shaft body 702 for the purpose of minimizing or eliminating damage to the tissue along the inner wall of a blood vessel. In the illustrated embodiment, the soft tip 706 is configured as a substantially hollow member including a delivery lumen 710. The lumen 710 may be used for receiving a guidewire and/or for delivering drugs to a treatment site. Preferably, the shaft body 702 and the soft tip 706 have substantially the same outer diameter. The delivery lumen 710 terminates at an exit port 720 at the extreme distal tip of the soft tip assembly.
  • Still referring to FIG. 7A, the [0070] ultrasound radiating element 704 is provided at a location just distal to the shaft body 702 and just proximal of the soft tip 710. Preferably, a small gap 712 is provided between the ultrasound radiating element 704 and the elongate body 702 and also between the ultrasound radiating element 704 and the soft tip 706. In the illustrated embodiment, a single cylindrical ultrasound radiating element 704 is provided, however, in alternative embodiments, others variations may be used, such as, for example a plurality of smaller ultrasound radiating elements.
  • In the illustrated embodiment, the [0071] shaft body 702, ultrasound radiating element 704 and soft tip 706 are secured together by the sleeve 708. The ultrasound radiating element 704 is contained within the lumen of the sleeve 708. The proximal end 714 of the sleeve 708 extends over the distal portion of the shaft body 702. The distal end 716 of the sleeve 708 extends over the proximal end of the soft tip 706. In one embodiment, the sleeve 708 is formed of heat shrink tubing. To maximize effectiveness of the ultrasound catheter, the sleeve 708 is preferably constructed of a material having a low impedance to ultrasound energy. FIG. 7B illustrates a cross-sectional view of the soft tip assembly of FIG. 7A as seen through line 7B-7B.
  • Referring again to FIG. 7A, the illustrated embodiment of the [0072] soft tip assembly 706 is formed with a plurality of side holes 718. The side holes 718 are in communication with the delivery lumen 710 and are provided for enhancing the delivery of drugs to the treatment site. Using the side holes 718, the therapeutic agent can be delivered radially at a location closer to the ultrasound radiating element 704. The illustrated embodiment includes two side holes, however, in alternative embodiments, any number of side holes may be used without departing form the spirit and scope of the invention. Alternatively, the soft tip assembly may be configured without any side holes.
  • In alternative embodiments, the soft tip assembly may have a solid tip wherein drugs exit the tip assembly only through side ports. In the embodiments with a solid tip, the guidewire exits the catheter through a side port, such as in a rapid exchange or monorail catheter design. In another embodiment, the soft tip assembly includes a radiopaque material to provide for high visibility under fluoroscopy. In various alternative embodiments, the soft tip assembly may have a variety of different lengths, such as, for example, 1 mm, 3 mm and 6 mm. [0073]
  • In operation, the ultrasound catheter is advanced over a guidewire that extends through the [0074] delivery lumen 710. As the ultrasound catheter is advanced through a small blood vessel, the soft tip assembly bends and conforms to the shape of the blood vessel to reduce the pressure applied along the inner wall. The rounded tip of the soft tip assembly also minimizes trauma to the tissue as it is advanced along the inner walls of the blood vessels. The soft tip assembly can bend to facilitate the advancement of the catheter, yet will return to substantially its original shape. After the ultrasound element is positioned in the desired location, the guidewire may be removed and the delivery lumen 710 used for the delivery of a therapeutic agent to the treatment site.
  • The soft tip assembly is preferably made of a soft polymer extrusion, such as, for example, polyimide. In one preferred method of construction, the soft tip assembly is constructed by first cutting the extruded soft tubular body into a length of approximately 3 to 6 mm. The distal tip is then rounded and smoothed using a heated die with the desired contour. In the embodiments wherein side holes are provided, the side holes are created using a 0.010 inch hole plunger. The soft tip assembly is then attached to the elongate shaft body using an adhesive or by thermal bonding. Alternatively, a length of heat shrink tubing may be used to secure the shaft body to the soft tip assembly. [0075]
  • Ultrasound Element on a Guidewire
  • FIGS. 8 and 9 illustrate another modified embodiment of an [0076] ultrasound catheter 850. As shown in FIG. 8, in this embodiment, an ultrasound radiating element 852 is connected to or mounted on a distal end 854 of a guidewire 856. In the illustrated arrangement, the ultrasound radiating element 852 is in the shape of a hollow cylinder. As such, the guidewire 856 can extend through the ultrasound radiating element 852, which is positioned over the guidewire 856. The ultrasound radiating element 852 can be secured to the guidewire 856 in any suitable manner, such as with an adhesive. In other embodiments, the ultrasound radiating element 856 can be of a different shape, such as, for example, a solid cylinder, a disk, a solid rectangle or a plate attached to the guidewire 856. The ultrasound radiating element 852 can also be formed from a plurality of smaller ultrasound elements.
  • In the illustrated embodiment, ultrasound energy is generated from electrical power supplied to the [0077] ultrasound radiating element 852. As such, the ultrasound radiating element 852 is connected to a pair of wires 860, 862 that can extend through the catheter body. In the illustrated embodiment, the wires 860, 862 are preferably secured to the guidewire 856 with the first wire 860 is connected to the hollow center of the ultrasound radiating element 852 and the second wire 862 connected to the outer periphery of the ultrasound radiating element 852. As with the previous embodiments, the ultrasound radiating element 852 is preferably formed from, but is not limited to, a piezolectic ceramic oscillator or a similar material. Other wiring schemes include wires connected to both ends of a solid transducer or both sides of a block. The ultrasound radiating element 852 and the wires 860, 862 are preferably covered with a thin insulating material 857.
  • FIG. 9 illustrates one embodiment of a [0078] catheter 850 that can be used with the guidewire 856 described above. In this embodiment, the catheter 850 includes an outer sheath 866, which defines the delivery lumen 868. As such, the illustrated embodiment does not include an inner core. The delivery lumen 868 includes a distal opening 870. As will be explained below, in one arrangement, the distal opening 870 can be configured such that the guidewire 856 and the ultrasound radiating element 852 can be withdrawn into the catheter 850 through the distal opening 870. In such an arrangement, a distal end 872 of the catheter 850 preferably includes a sleeve 874, that is constructed from a material that readily transmits ultrasound energy as described above. In another arrangement, the distal opening 870 can be configured such that ultrasound radiating element 852 can not be withdrawn into the catheter 850 through the distal opening 870. In such an arrangement, the ultrasound radiating element 852 is configured to operate outside the catheter 850 near the distal opening 870.
  • In one embodiment, the [0079] distal end 854 of the guidewire 856 is percutaneously inserted into the arterial system at a suitable first puncture site. The guidewire 856 and the ultrasound radiating element 852 are advanced through the vessels towards a treatment site, which includes a thrombotic occlusion. The guidewire 856 is preferably then directed through the thrombotic occlusion.
  • The [0080] catheter 850 is thereafter percutaneously inserted into the first puncture site and advanced along the guidewire 856 towards the treatment site using traditional over-the-iques. guidewire techniques. The catheter 850 is advanced until the distal end of the catheter 856 is positioned at or within the occlusion. Preferably, the distal end includes radio opaque markers to aid positioning the distal end within the treatment site.
  • In one embodiment, the [0081] guidewire 856 can then be withdrawn until the ultrasound radiating element 852 is positioned within the distal end 874 of the catheter 850. In such an arrangement, the catheter 850 can include a proximal stop 875 to aid the positioning of the ultrasound radiating element 852. In another embodiment, the guidewire can be withdrawn until the ultrasound radiating element 852 is located near or adjacent the distal opening 870. The catheter 850 can then be operated as described above.
  • In another modified embodiment, a standard guidewire (not shown) is percutaneously inserted into the first puncture site and advanced through the vessels towards and preferably through the occlusion. The [0082] catheter 850 is thereafter percutaneously inserted into the first puncture site and advanced along the standard guidewire towards the treatment site using traditional over-the-guidewire techniques. The catheter 850 preferably is advanced until the distal end of the catheter 850 is positioned at or within the occlusion. The standard guidewire can then be withdrawn from the delivery lumen. The guidewire 856 and ultrasound radiating element 852 of FIG. 8 can then be inserted into the delivery lumen. In one embodiment, the ultrasound radiating element 852 is advanced until it is positioned in the distal end of the catheter 850. In another embodiment, the ultrasound radiating element 852 is advanced until it exits the distal end 870 of the delivery lumen 868. The catheter can then be operated as describe above.
  • FIG. 10 illustrates yet another modified embodiment of an [0083] ultrasound catheter 1000 that can be used with the guidewire 1056 and ultrasound radiating element 1052, as described above. In this embodiment, the guidewire lumen 1068 is defined by an inner sleeve or tube 1002. The distal end 1070 of the delivery lumen 1068 can be configured as described above for preventing or withdrawing the ultrasound radiating element 1052 into catheter 1050. In the illustrated arrangement, the delivery lumen 1068 can be used to transport the drug solution. In another arrangement, the space 1004 between the inner core 1002 and the outer sheath 1066 can be used to transport the drug solution. In such an arrangement, the outer sheath 1066 preferably includes one or more holes positioned at the distal end 1072 of the outer sheath 1066. The catheter can be advanced on the guidewire 856 of FIG. 8 or a standard guidewire as described above.
  • Ultrasound Element on a Hypotube
  • FIGS. 11 and 12 illustrate yet another embodiment of an [0084] ultrasound catheter 1101 that is particularly well suited for use with small vessels of the distal anatomy. As shown in FIG. 12, this embodiment of the ultrasound catheter 1101 generally comprises a treatment wire 1103 and a microcatheter 1105.
  • FIG. 11 illustrates a preferred embodiment of a [0085] treatment wire 1103. As shown in FIG. 11, in this embodiment, an ultrasound radiating element 1106 is connected to the distal tip of a hypotube 1108. As discussed with reference to the small vessel catheters described above, the ultrasound radiating element can take many shapes and forms. The ultrasound radiating element 1106 is potted in an insulating material either as a conformal coating or potted inside an outer sleeve. The potting 1110 over the ultrasound radiating element 1106 sections is optimized for transmission of ultrasound energy. In the embodiment illustrated in FIG. 11, the width of the potted ultrasound radiating element 1112 is approximately 0.018 inches. An epoxy or similar adhesive known in the catheter manufacturing field connects the potted ultrasound radiating element 1112 with the hypotube 1108 at junction 1114.
  • The [0086] hypotube 1108 is made from Nitinol or stainless steel or other suitable material in accordance with the techniques and materials known in the catheter manufacturing field. In one embodiment, the hypotube has a diameter of approximately 0.014 to 0.015 inches. The hypotube 1108 provides an insulated lumen 1116 through which one can run power wires 1118 for the ultrasound radiating element 1106 or wires for temperature sensors (not shown) in the microcatheter 1105. The microcatheter 1105, into which the treatment wire 1103 is inserted, has a diameter greater than the width of the potted ultrasound radiating element 1112.
  • As shown in FIG. 11, in this embodiment, a [0087] flexible nose 1120 is connected to the distal end of the potted ultrasound radiating element 1112. An epoxy or similar adhesive known in the catheter manufacturing field connects the flexible nose 1120 to the potted ultrasound radiating element 1112 at junction 1122. The flexible nose 1120 is at least approximately 3 millimeters in length and functions as a guidewire when the treatment wire 1103 is inserted into a microcatheter 1105. In the embodiment illustrated in FIG. 11, the flexible nose 1120 is a soft coil made of metal or another suitable material known in the art. The flexible nose 1120 facilitates the delivery of the potted ultrasound radiating element 1112 through the microcatheter 1105 and into the vessel lumen of the treatment site. Preferably, the flexible nose 1120 is tapered in a manner so that the distal end of the nose has a smaller diameter than the proximal end.
  • In use, a free end of a guidewire is percutaneously inserted into the arterial system at a suitable first puncture site. The guidewire is advanced through the vessels toward a treatment site, such as, for example, a thrombotic occlusion in the middle cerebral artery. [0088]
  • The [0089] microcatheter 1105 is thereafter percutaneously inserted into the first puncture site and advanced along the guidewire towards the treatment site using traditional over-the-guidewire techniques. The catheter 1105 is advanced until the distal end 1199 of the catheter 1105 is positioned at or within the occlusion. Preferably, the distal end 1199 includes radio opaque markers to aid positioning the distal end 1199 within the treatment site.
  • The guidewire can then be withdrawn from the [0090] delivery lumen 1197 of the microcatheter 1105. As illustrated in FIG. 12, the treatment wire 1103 is then inserted and advanced through the microcatheter 1105 to the treatment site. The potted ultrasound radiating element 1112 of the treatment wire 1103 is advanced beyond the distal end 1199 of the microcatheter and into lumen of the vessel. Once at the target site, the ultrasound radiating element 1106 provides ultrasound energy.
  • Preferably, [0091] drugs 1124, including but not limited to drugs having thrombolytic effects, are infused through the microcatheter 1105 and delivered into the vessel around the ultrasound radiating element 1106 at the same time the ultrasound radiating element 1106 emits energy. It is believed that the transmission of ultrasound energy at the treatment site enhances drug uptake and activity and has other therapeutic effects. Preferably, the potted ultrasound radiating element 1112 extends far enough away from the distal tip 1199 of the microcatheter 1105 to facilitate the infusion of drugs (shown by arrow 1124) through the microcatheter 1105 and into the vessel.
  • Overview of Ultrasound Catheter with Embedded Conductors
  • In certain embodiments, wherein an ultrasound radiating member is positioned between an inner elongate tubular body and an outer elongate tubular body, it is desired to pass elongate electrical conductors to the ultrasound radiating member from the proximal end of the catheter, thereby allowing an externally-generated driving signal to be provided to the ultrasound radiating member. In addition, in embodiments wherein a temperature sensor is positioned in the distal region of the catheter, it is desired to pass one or more elongate electrical conductors to the temperature sensor from the proximal end of the catheter, thereby allowing a distal temperature signal to be monitored at the proximal end of the catheter. The configuration of such elongate electrical conductors can be manipulated to affect the stiffness, torqueability, pushability, flexibility and other mechanical parameters of the catheter, thereby affecting accessibility of remote targets in the patient's vasculature. [0092]
  • Such embedded conductor configurations are discussed in greater detail in this section. These embodiments are particularly well-suited for use with small vessels of the distal anatomy, such as, for example, the vessels of the neurovascular system. However, such embodiments are also well-suited for the treatment of long segment peripheral arterial occlusions. [0093]
  • Referring now to FIG. 13A, an [0094] ultrasonic catheter 1200 generally comprises a multi-component tubular body 1201 having a proximal end 1204 and a distal end 1202. The tubular body 1201 and other components of the catheter 1200 can be manufactured in accordance with any of a variety of techniques well known in the catheter manufacturing field, and as explained above.
  • The [0095] ultrasonic catheter 1200 also comprises one or more ultrasound radiating members 1240 at its distal end 1202. Suitable material dimensions for the ultrasound radiating member 1240 can be readily selected taking into account the natural and anatomical dimensions of the treatment site and of the desired percutaneous access site, as explained above. In other embodiments, the ultrasonic catheter 1200 further comprises a temperature sensor (not shown) positioned within the catheter distal region, as described above. In one preferred embodiment of an ultrasonic catheter 1200, a central lumen 1251 can be concentrically placed over a guidewire (not shown) which has been previously navigated to the target area under, for example, fluoroscopic localization by a skilled surgeon or medical practitioner.
  • The [0096] ultrasonic catheter 1200 generally comprises one or more electrically conductive wires or fibers 1206, 1208 that extend along the length of the catheter 1200. In certain embodiments, the conductive wires 1206, 1208 generally reside within the wall 1210 of the tubular body 1201. In such embodiments, the wall 1210 of the tubular body 1201 comprises an inner portion 1212 and an outer portion 1214. In such embodiments, the conductive wires 1206, 1208 can be located in between the inner portion 1212 and outer portion 1214 of the wall 1210.
  • The [0097] inner portion 1212 provides a barrier against the contents of the central lumen 1251, such as, for example, therapeutic drugs infused through the central lumen 1251 and out the distal end 1202 of the catheter to a treatment site within the patient's vasculature. The outer portion 1214 provides a barrier against the environment in which the catheter 1200 resides, which may include, for example, blood or other bodily fluids.
  • The [0098] inner portion 1212 and outer portion 1214 of the wall 1210, and the wall 1210 in general, with the exception of the conductive wires 1206, 1208 embedded in the wall 1210, is made of insulating material, such as, for example, polyimide, high or low density polyethylenes, urethanes, nylons, and the like. Consequently, the conductive wires 1206, 1208 are electrically isolated from the central lumen 1251 and the environment in which the catheter 1200 resides.
  • The [0099] conductive wires 1206, 1208 are also preferably electrically isolated from each other. In one embodiment, the wires 1206, 1208 are arranged and configured in a manner to prevent contact between them. For example, the wires 1206, 1208 may be arranged along and/or around the central lumen in a manner which prevents any contact between the wires 1206, 1208. Also, electrically insulating material may placed between the wires 1206, 1208 to prevent contact between them. In another embodiment, the wires 1206, 1208 are covered with insulating coating material either in addition to or in lieu of placing insulating material between the wires 1206, 1208 or making the wall 1210 from insulating material.
  • The physical configuration or layout of the [0100] conductive wires 1206 and 1208 embedded within the wall 1210 of the tubular body 1201 can be adjusted to determine the mechanical attributes of the catheter 1200. The conductive wires 1206, 1208 may be arranged in various architectures such as, for example, linear arrays, weaving, spiraling, and other patterns which modulate stiffness, torquability, pushability, flexibility and other mechanical parameters of the catheter which relate to accessibility of remote targets.
  • In one embodiment, shown in FIG. 13A, both [0101] conductive wires 1206, 1208 spiral around the central lumen 1251 and remain substantially parallel to each other at all times along the length of the catheter 1200. In a modified embodiment, the wires 1206, 1208 are covered with insulating coating material. In another modified embodiment, illustrated in FIG. 13B, the conductive wires 1206, 1208 are covered with insulating coating material or separated with insulating material and are contained in a unitary cable 1216. In such embodiments, the cable 1216 spirals around the central lumen 1251 along the length of the catheter 1200.
  • In another embodiment, illustrated in FIG. 14, the [0102] conductive wires 1206, 1208 are covered with insulating coating material and are spiraled in opposite directions, thereby forming a helix or helical pattern around the central lumen 1251. In forming a helical pattern, the wires 1206, 1208 cross each other, but remain electrically isolated from each other due to the insulating coating material around each wire.
  • In another embodiment, illustrated in FIG. 15, the [0103] conductive wires 1206, 1208 run in a generally straight line along the length of the catheter 1200, and do not spiral around the central lumen 1251 or cross each other. In such embodiments, the wires 12606, 12608 can optionally be covered with an insulating coating material.
  • In a modified embodiment, illustrated in FIGS. 16A and 16B, the ultrasound catheter comprises an outer [0104] tubular body 1400 surrounding an inner core 1402. The inner core 1402 defines a central lumen 1408 that can be used to pass a guidewire, a cooling fluid or a therapeutic compound through the ultrasonic catheter. In a distal region of the ultrasound catheter, a tubular ultrasound radiating member 1404 is positioned between the outer tubular body 1400 and the inner core 1402. In regions proximal to the ultrasound radiating member 1404, the outer tubular body 1400 and the inner core 1402 are separated by an insulating layer 1406. Preferably, the inner core outer surface 1410 and the outer tubular body inner surface 1412 are electrically conductive, and are electrically connected to opposite poles of a power supply (not shown). Such electrically conductive surfaces can be created by depositing an electrically conductive material onto the desired surface.
  • In such embodiments, the conductive surfaces are separated by the insulating [0105] layer 1406 along the length of the catheter, and the presence of the ultrasound radiating member 1404 in the catheter distal region completes the electric circuit. In particular, because opposite surfaces of the ultrasound radiating member contact conductive surfaces of opposite polarity 1410, 1412, a voltage difference is created across the ultrasound radiating member, thereby causing ultrasonic vibrations to be created.
  • Such embodiments allow the [0106] ultrasound radiating member 1404 to be driven while eliminating any wires passing along the catheter body, such as illustrated in FIGS. 13A through 15. Elimination of wiring in the catheter body reduces manufacturing costs and reduces overall catheter dimensions, thereby increasing catheter maneuverability. Elimination of wiring can also increase catheter flexibility. Thus, in applications where the ultrasound catheter is to be passed through a small or tortuous portion of the vasculature, it may be desired to use such embodiments.
  • Small vessel ultrasonic catheters with conducting wires or fibers embedded in the walls of the catheter, as described above, can be assembled in a number of ways. See, for example, U.S. Pat. Nos. 4,277,432 and 6,030,371, both of which are incorporated by reference herein. In one method, the catheter is made from tubing which is fabricated from a polymer material that is extruded through a dye in a molten state and that is solidified while being drawn. In one preferred embodiment of the present invention, an electrically insulating material is extruded through the dye. [0107]
  • Conventionally, manufacturing equipment is used to co-extrude polymer support fibers, such as, for example, Kevlar, into the tubing wall in a linear, spiral, or woven pattern. In certain embodiments of the present invention, electrically conductive wires or fibers are used in lieu of polymer support fibers. Examples of conductive fibers include, but are not limited to, copper, carbon, steel, and stainless steel. In a modified embodiment, the conductive fibers are pre-coated with an insulating coating before they are co-extruded. [0108]
  • In another method of assembling small vessel catheters with conducting wires or fibers embedded in the walls of the catheter, the wires are sandwiched between two concentric tubes, an inner tube and an outer tube, both of which initially have approximately half the wall thickness of the final assembled catheter. The inner diameter of the inner tube determines the diameter of the final assembled catheter. The inner diameter of the outer tube is significantly greater than the outer diameter of the inner tube. For example, the inner and outer tubes can be made from an electrically isolating material. [0109]
  • In such embodiments, the catheter is assembled by winding or placing conductive fiber or wire over the inner tube; concentrically translating the outer tube over the inner tube and the fiber wrapping or abutting the inner tube; and radially shrinking the outer tube onto the inner tube such that the conductive fiber is trapped between the inner and outer tubes. In a modified embodiment, the conductive fibers are pre-coated with an insulating coating before they are incorporated into the above described sandwich construction. [0110]
  • As described above, the various configurations and arrangements of the elongate electrical conductors described herein can be used regardless of whether such elongate electrical conductors are connected to an ultrasound radiating member or a temperature sensor at the catheter distal end. [0111]
  • CONCLUSION
  • While the foregoing detailed description has described several embodiments of the apparatus and methods of the present invention, it is to be understood that the above description is illustrative only and not limiting of the disclosed invention. It will be appreciated that the specific dimensions of the various catheters and guidewires can differ from those described above, and that the methods described can be used within any biological conduit within the body and remain within the scope of the present invention. Thus, the invention is to be limited only by the claims which follow. [0112]

Claims (38)

We claim:
1. An ultrasound catheter comprising:
an elongate tubular body having a proximal region and a distal region opposite the proximal region, the tubular body defining a central lumen having a central lumen diameter;
an elongate, hollow inner core extending through the central lumen and having an inner core outer diameter that is less than or equal to the central lumen diameter;
an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core;
at least two electrical conductors extending between the tubular body proximal region and the tubular body distal region, the at least two electrical conductors positioned between the tubular body and the inner core, and electrically connected to the ultrasound radiating member, wherein the at least two electrical conductors are wrapped around the inner core a plurality of times in a region between the ultrasound radiating member and the tubular body proximal region.
2. The ultrasound catheter of claim 1, further comprising:
a temperature sensor positioned adjacent the distal region of the elongate tubular body; and
at least one temperature sensor wire extending between the tubular body proximal region and the tubular body distal region, wherein at least a portion of the at least one temperature sensor wire is positioned between the tubular body and the inner core, and wherein the at least one temperature sensor wire is electrically connected to the temperature sensor.
3. The ultrasound catheter of claim 1, wherein the at least two electrical conductors are substantially parallel in a region between the ultrasound radiating member and the tubular body proximal region.
4. The ultrasound catheter of claim 3, wherein the at least two electrical conductors are integrated into a unitary cable.
5. The ultrasound catheter of claim 1, wherein the at least two electrical conductors do not cross paths in a region between the ultrasound radiating member and the tubular body proximal region.
6. The ultrasound catheter of claim 5, wherein the at least two electrical conductors are integrated into a unitary cable.
7. The ultrasound catheter of claim 1, wherein the at least two electrical conductors are wrapped around the inner core in opposite directions.
8. The ultrasound catheter of claim 1, wherein the at least two electrical conductors comprise electrically conductive fibers.
9. An ultrasound catheter comprising:
an elongate tubular body having a proximal region and a distal region opposite the proximal region, the tubular body defining a central lumen having a central lumen diameter;
an elongate, hollow inner core extending through the central lumen and having an inner core outer diameter that is less than or equal to the central lumen diameter;
an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core;
at least two electrical conductors extending between the tubular body proximal region and the tubular body distal region, the at least two electrical conductors positioned between the tubular body and the inner core, and electrically connected to the ultrasound radiating member, wherein the at least two electrical conductors are disposed substantially parallel to a catheter axis in a region between the ultrasound radiating member and the tubular body proximal region.
10. The ultrasound catheter of claim 9, further comprising:
a temperature sensor positioned adjacent the distal region of the elongate tubular body; and
at least one temperature sensor wire extending between the tubular body proximal region and the tubular body distal region, wherein at least a portion of the at least one temperature sensor wire is positioned between the tubular body and the inner core, and wherein the at least one temperature sensor wire is electrically connected to the temperature sensor.
11. The ultrasound catheter of claim 9, wherein the ultrasound catheter comprises two electrical conductors which are disposed at substantially radially opposite points around the inner core.
12. The ultrasound catheter of claim 9, wherein the at least two electrical conductors comprise electrically conductive fibers.
13. An apparatus comprising:
an elongate, hollow body having a proximal region, a distal region opposite the proximal region, a body thickness, and an inner lumen;
an ultrasound radiating member positioned within the body thickness of the elongate, hollow body; and
a plurality of elongate electrical conductors extending between the elongate, hollow body proximal region and the ultrasound radiating member, and positioned within the body thickness of the elongate, hollow body.
14. The apparatus of claim 13, further comprising:
a temperature sensor positioned adjacent the elongate, hollow body distal region; and
at least one temperature sensor wire extending between the elongate, hollow body proximal region and the temperature sensor, and positioned within the body thickness of the elongate, hollow body.
15. The apparatus of claim 13, wherein the plurality of electrical conductors are substantially parallel in a region between the ultrasound radiating member and the elongate, hollow body proximal region.
16. The apparatus of claim 15, wherein the plurality of electrical conductors are integrated into a unitary cable.
17. The apparatus of claim 13, wherein the plurality of electrical conductors do not cross paths in a region between the ultrasound radiating member and the elongate, hollow body proximal region.
18. The apparatus of claim 17, wherein the plurality of electrical conductors are integrated into a unitary cable.
19. The apparatus of claim 13, wherein the plurality of electrical conductors are wrapped around the inner core in opposite directions.
20. The ultrasound catheter of claim 13, wherein the plurality of electrical conductors comprise electrically conductive fibers.
21. A method comprising:
maneuvering a guidewire through a patient's vasculature, such that a guidewire distal region is adjacent to a treatment site;
passing an elongate tubular body over the guidewire, the elongate tubular body having a distal region, a proximal region opposite the distal region and a tubular ultrasound radiating member mounted to the elongate tubular body distal region, such that the ultrasound radiating member is adjacent the treatment site;
withdrawing the guidewire from the elongate tubular body;
passing an electronic driving signal to the ultrasound radiating member to cause the ultrasound radiating member to deliver ultrasonic energy to the treatment site;
passing a therapeutic compound through the elongate tubular body to the treatment site, such that a quantity of therapeutic compound delivered to the treatment site is exposed to ultrasonic energy.
22. The method of claim 21, wherein the ultrasound radiating member is positioned within the elongate tubular body.
23. The method of claim 21, further comprising sensing a temperature at the treatment site.
24. A method of manufacturing an ultrasonic catheter comprising:
providing an inner tube having an inner diameter sufficient to accommodate a guidewire;
mounting a tubular ultrasound radiating member around a distal region of the inner tube;
positioning a first and a second electrical conductor along the inner tube, such that the first electrical conductor contacts an inner side of the ultrasound radiating member, and the second electrical conductor contacts an outer side of the ultrasound radiating member;
concentrically translating an outer tube over the inner tube and the ultrasound radiating member; and
radially shrinking the outer tube onto the inner tube.
25. The method of claim 24, further comprising:
mounting a temperature sensor adjacent to the distal region of the inner tube; and
positioning at least one temperature sensor wire along the inner tube, such that the temperature sensor wire is electrically connect to the temperature sensor.
26. The method of claim 24, wherein the first and second electrical conductors are positioned along the inner tube in a substantially parallel configuration.
27. The method of claim 26, wherein the first and second electrical conductors are positioned along the inner tube at substantially radially opposite points.
28. The method of claim 24, further comprising integrating the first and second electrical conductors into a unitary cable.
29. The method of claim 24, wherein the first and second electrical conductors are wrapped around the inner core in opposite directions.
30. The method of claim 24, further comprising connecting the first and second electrical conductors to opposite poles of a power supply at a proximal end of the ultrasonic catheter.
31. An apparatus comprising:
an elongate tubular body having a proximal region and a distal region opposite the proximal region, the tubular body defining a central lumen having a central lumen surface that is electrically conductive;
an elongate, hollow inner core extending through the central lumen and having an inner core outer surface that is electrically conductive;
an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core, such that the tubular body conductive surface and the inner core conductive surface are both in electrical contact with the ultrasound radiating member; and
an insulating sleeve positioned between the tubular body and the inner core in a region proximal to the ultrasound radiating member.
32. The apparatus of claim 31, further comprising a temperature sensor positioned adjacent the elongate tubular body distal region.
33. The apparatus of claim 31, wherein the tubular body conductive surface and the inner core conductive surface are electrically connected to opposite poles of a power supply.
34. The apparatus of claim 31, further comprising a plurality of ultrasound radiating members positioned between the tubular body and the inner core.
35. The apparatus of claim 34, further comprising an insulating sleeve positioned between the tubular boy and the inner core in regions between the plurality of ultrasound radiating members.
36. The apparatus of claim 31, wherein the conductive surfaces comprise metallic fibers disposed on the central lumen surface or the inner core outer surface.
37. The apparatus of claim 36, wherein the metallic fibers comprise copper.
38. An ultrasound catheter comprising:
an elongate tubular body having a proximal region and a distal region opposite the proximal region, the tubular body defining a central lumen having a central lumen diameter;
an elongate, hollow inner core extending through the central lumen and having an inner core outer diameter that is less than or equal to the central lumen diameter;
an ultrasound radiating member positioned within the distal region of the tubular body and between the tubular body and the inner core;
a temperature sensor positioned adjacent the distal region of the elongate tubular body; and
at least one temperature sensor wire extending between the tubular body proximal region and the tubular body distal region, wherein at least a portion of the at least one temperature sensor wire is positioned between the tubular body and the inner core, and wherein the at least one temperature sensor wire is electrically connected to the temperature sensor.
US10/378,032 2002-02-28 2003-02-28 Ultrasound catheter with embedded conductors Abandoned US20040068189A1 (en)

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Application Number Priority Date Filing Date Title
US10/378,032 US20040068189A1 (en) 2002-02-28 2003-02-28 Ultrasound catheter with embedded conductors
US11/417,406 US20060224142A1 (en) 2002-02-28 2006-05-04 Ultrasound catheter with embedded conductors
US11/417,384 US7774933B2 (en) 2002-02-28 2006-05-04 Method of manufacturing ultrasound catheters
US11/418,357 US20060206039A1 (en) 2002-02-28 2006-05-04 Ultrasound catheter with embedded conductors
US12/846,744 US20100331763A1 (en) 2002-02-28 2010-07-29 Ultrasound catheter with embedded conductors

Applications Claiming Priority (3)

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US36134102P 2002-02-28 2002-02-28
US10/309,417 US7384407B2 (en) 2001-12-03 2002-12-03 Small vessel ultrasound catheter
US10/378,032 US20040068189A1 (en) 2002-02-28 2003-02-28 Ultrasound catheter with embedded conductors

Related Parent Applications (1)

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US10/309,417 Continuation-In-Part US7384407B2 (en) 2001-12-03 2002-12-03 Small vessel ultrasound catheter

Related Child Applications (3)

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US11/417,384 Division US7774933B2 (en) 2002-02-28 2006-05-04 Method of manufacturing ultrasound catheters
US11/417,406 Division US20060224142A1 (en) 2002-02-28 2006-05-04 Ultrasound catheter with embedded conductors
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Cited By (39)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040158150A1 (en) * 1999-10-05 2004-08-12 Omnisonics Medical Technologies, Inc. Apparatus and method for an ultrasonic medical device for tissue remodeling
US20040199228A1 (en) * 2003-01-03 2004-10-07 Wilson Richard R. Ultrasonic catheter with axial energy field
WO2005027756A1 (en) * 2003-08-22 2005-03-31 Omnisonics Medical Technologies, Inc. Apparatus and method for an ultrasonic medical device engaging a flexible material
US20050137520A1 (en) * 2003-10-29 2005-06-23 Rule Peter R. Catheter with ultrasound-controllable porous membrane
US20050192556A1 (en) * 2004-01-30 2005-09-01 Azita Soltani Treatment of vascular occlusions using ultrasonic energy and microbubbles
US20050197619A1 (en) * 2003-04-22 2005-09-08 Rule Peter R. Ultrasound enhanced central venous catheter
US20050215946A1 (en) * 2004-01-29 2005-09-29 Hansmann Douglas R Method and apparatus for detecting vascular conditions with a catheter
US20060123043A1 (en) * 2004-12-02 2006-06-08 Samsung Electronics Co., Ltd. File system path processing device and method
US20060173387A1 (en) * 2004-12-10 2006-08-03 Douglas Hansmann Externally enhanced ultrasonic therapy
US20060184070A1 (en) * 2004-11-12 2006-08-17 Hansmann Douglas R External ultrasonic therapy
US20060264809A1 (en) * 2005-04-12 2006-11-23 Hansmann Douglas R Ultrasound catheter with cavitation promoting surface
US20070265560A1 (en) * 2006-04-24 2007-11-15 Ekos Corporation Ultrasound Therapy System
US20080171965A1 (en) * 2007-01-08 2008-07-17 Ekos Corporation Power parameters for ultrasonic catheter
US20080274097A1 (en) * 1991-03-22 2008-11-06 Katsuro Tachibana Booster for therapy of diseases with ultrasound and pharmaceutical liquid composition containing the same
US20090018472A1 (en) * 2007-01-08 2009-01-15 Azita Soltani Power parameters for ultrasonic catheter
US20100121269A1 (en) * 2008-11-12 2010-05-13 Hansen Medical, Inc. Apparatus and method for sensing force on a robotically controlled medical instrument
US7774933B2 (en) 2002-02-28 2010-08-17 Ekos Corporation Method of manufacturing ultrasound catheters
US7794414B2 (en) 2004-02-09 2010-09-14 Emigrant Bank, N.A. Apparatus and method for an ultrasonic medical device operating in torsional and transverse modes
US20110004105A1 (en) * 2009-07-03 2011-01-06 Ekos Corporation Power parameters for ultrasonic catheter
US20110201974A1 (en) * 2010-02-17 2011-08-18 Ekos Corporation Treatment of vascular occlusions using ultrasonic energy and microbubbles
US20120059285A1 (en) * 2010-08-27 2012-03-08 Ekos Corporation Method and apparatus for treatment of intracranial hemorrhages
US8167831B2 (en) 2001-12-03 2012-05-01 Ekos Corporation Catheter with multiple ultrasound radiating members
US8192363B2 (en) 2006-10-27 2012-06-05 Ekos Corporation Catheter with multiple ultrasound radiating members
US8226629B1 (en) 2002-04-01 2012-07-24 Ekos Corporation Ultrasonic catheter power control
US8690818B2 (en) 1997-05-01 2014-04-08 Ekos Corporation Ultrasound catheter for providing a therapeutic effect to a vessel of a body
US8764700B2 (en) 1998-06-29 2014-07-01 Ekos Corporation Sheath for use with an ultrasound element
US8790359B2 (en) 1999-10-05 2014-07-29 Cybersonics, Inc. Medical systems and related methods
US9044568B2 (en) 2007-06-22 2015-06-02 Ekos Corporation Method and apparatus for treatment of intracranial hemorrhages
US9579494B2 (en) 2013-03-14 2017-02-28 Ekos Corporation Method and apparatus for drug delivery to a target site
US10092742B2 (en) 2014-09-22 2018-10-09 Ekos Corporation Catheter system
WO2019136461A1 (en) * 2018-01-08 2019-07-11 Tao Song Device having a multi-channel transmission member
US10398504B2 (en) 2016-05-23 2019-09-03 Qisda Corporation Ultrasound catheter and medical system using the same
US10656025B2 (en) 2015-06-10 2020-05-19 Ekos Corporation Ultrasound catheter
US20200281623A1 (en) * 2018-01-16 2020-09-10 Daniel Ezra Walzman Bypass catheter
WO2020190623A1 (en) * 2019-03-20 2020-09-24 Avent, Inc. Catheter with seal layer
US11458290B2 (en) 2011-05-11 2022-10-04 Ekos Corporation Ultrasound system
US11596769B2 (en) 2018-01-16 2023-03-07 Daniel Ezra Walzman Bypass catheter
US11738172B2 (en) 2018-01-16 2023-08-29 Daniel Ezra Walzman Bypass catheter
US11925367B2 (en) 2018-12-20 2024-03-12 Ekos Corporation Power parameters for ultrasonic catheter

Families Citing this family (39)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6855123B2 (en) 2002-08-02 2005-02-15 Flow Cardia, Inc. Therapeutic ultrasound system
US8506519B2 (en) 1999-02-16 2013-08-13 Flowcardia, Inc. Pre-shaped therapeutic catheter
US8936554B2 (en) * 1999-03-10 2015-01-20 Stroke2Prevent B.V. Method and system for ultrasonic imaging of an organ in a patient's body through a part of the patient's respiratory tract
US9955994B2 (en) 2002-08-02 2018-05-01 Flowcardia, Inc. Ultrasound catheter having protective feature against breakage
US8133236B2 (en) 2006-11-07 2012-03-13 Flowcardia, Inc. Ultrasound catheter having protective feature against breakage
US7335180B2 (en) 2003-11-24 2008-02-26 Flowcardia, Inc. Steerable ultrasound catheter
US6942677B2 (en) 2003-02-26 2005-09-13 Flowcardia, Inc. Ultrasound catheter apparatus
US7137963B2 (en) 2002-08-26 2006-11-21 Flowcardia, Inc. Ultrasound catheter for disrupting blood vessel obstructions
US8007489B2 (en) * 2003-06-25 2011-08-30 Volcano Corporation Method and apparatus for curving a catheter
US7758510B2 (en) 2003-09-19 2010-07-20 Flowcardia, Inc. Connector for securing ultrasound catheter to transducer
EP1725289A4 (en) * 2004-01-29 2007-11-14 Ekos Corp Small vessel ultrasound catheter
US7540852B2 (en) 2004-08-26 2009-06-02 Flowcardia, Inc. Ultrasound catheter devices and methods
US8221343B2 (en) 2005-01-20 2012-07-17 Flowcardia, Inc. Vibrational catheter devices and methods for making same
US8152742B2 (en) * 2006-05-01 2012-04-10 Boston Scientific Scimed, Inc. Crossing guide wire with corrugated shaping ribbon
US8246643B2 (en) 2006-11-07 2012-08-21 Flowcardia, Inc. Ultrasound catheter having improved distal end
US8285362B2 (en) * 2007-06-28 2012-10-09 W. L. Gore & Associates, Inc. Catheter with deflectable imaging device
US8864675B2 (en) 2007-06-28 2014-10-21 W. L. Gore & Associates, Inc. Catheter
US8852112B2 (en) 2007-06-28 2014-10-07 W. L. Gore & Associates, Inc. Catheter with deflectable imaging device and bendable electrical conductor
US8623071B2 (en) * 2008-01-07 2014-01-07 DePuy Synthes Products, LLC Radiopaque super-elastic intravascular stent
US8500648B2 (en) * 2008-05-30 2013-08-06 W. L. Gore & Associates, Inc Real time ultrasound catheter probe
US8504139B2 (en) 2009-03-10 2013-08-06 Medtronic Xomed, Inc. Navigating a surgical instrument
US9226689B2 (en) 2009-03-10 2016-01-05 Medtronic Xomed, Inc. Flexible circuit sheet
US9226688B2 (en) 2009-03-10 2016-01-05 Medtronic Xomed, Inc. Flexible circuit assemblies
US8226566B2 (en) 2009-06-12 2012-07-24 Flowcardia, Inc. Device and method for vascular re-entry
US11039845B2 (en) * 2009-10-06 2021-06-22 Cardioprolific Inc. Methods and devices for endovascular therapy
US20120215099A1 (en) * 2009-10-06 2012-08-23 Wallace Michael P Methods and Apparatus for Endovascular Ultrasound Delivery
WO2011137301A2 (en) * 2010-04-30 2011-11-03 Medtronic Xomed, Inc. Navigated malleable surgical instrument
US10492868B2 (en) 2011-01-28 2019-12-03 Medtronic Navigation, Inc. Method and apparatus for image-based navigation
US10617374B2 (en) 2011-01-28 2020-04-14 Medtronic Navigation, Inc. Method and apparatus for image-based navigation
US9974501B2 (en) 2011-01-28 2018-05-22 Medtronic Navigation, Inc. Method and apparatus for image-based navigation
US9750486B2 (en) 2011-10-25 2017-09-05 Medtronic Navigation, Inc. Trackable biopsy needle
CN104114104B (en) 2011-12-08 2016-12-07 华盛顿大学商业中心 Ultrasonic probe
US9603615B2 (en) 2012-01-18 2017-03-28 C.R. Bard, Inc. Vascular re-entry device
EP3895632A1 (en) 2012-08-02 2021-10-20 Bard Peripheral Vascular, Inc. Ultrasound catheter system
US10278729B2 (en) 2013-04-26 2019-05-07 Medtronic Xomed, Inc. Medical device and its construction
US20180140321A1 (en) 2016-11-23 2018-05-24 C. R. Bard, Inc. Catheter With Retractable Sheath And Methods Thereof
US11596726B2 (en) 2016-12-17 2023-03-07 C.R. Bard, Inc. Ultrasound devices for removing clots from catheters and related methods
US10758256B2 (en) 2016-12-22 2020-09-01 C. R. Bard, Inc. Ultrasonic endovascular catheter
US10582983B2 (en) 2017-02-06 2020-03-10 C. R. Bard, Inc. Ultrasonic endovascular catheter with a controllable sheath

Citations (61)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US527406A (en) * 1894-10-16 Expansion- bolt
US4841977A (en) * 1987-05-26 1989-06-27 Inter Therapy, Inc. Ultra-thin acoustic transducer and balloon catheter using same in imaging array subassembly
US4948587A (en) * 1986-07-08 1990-08-14 Massachusetts Institute Of Technology Ultrasound enhancement of transbuccal drug delivery
US5059851A (en) * 1990-09-06 1991-10-22 Cardiometrics, Inc. Miniature ultrasound high efficiency transducer assembly, guidewire using the same and method
US5158071A (en) * 1988-07-01 1992-10-27 Hitachi, Ltd. Ultrasonic apparatus for therapeutical use
US5197946A (en) * 1990-06-27 1993-03-30 Shunro Tachibana Injection instrument with ultrasonic oscillating element
US5226421A (en) * 1992-03-06 1993-07-13 Cardiometrics, Inc. Doppler elongate flexible member having an inflatable balloon mounted thereon
US5318014A (en) * 1992-09-14 1994-06-07 Coraje, Inc. Ultrasonic ablation/dissolution transducer
US5345940A (en) * 1991-11-08 1994-09-13 Mayo Foundation For Medical Education And Research Transvascular ultrasound hemodynamic and interventional catheter and method
US5348481A (en) * 1993-09-29 1994-09-20 Cardiometrics, Inc. Rotary connector for use with small diameter flexible elongate member having electrical capabilities
US5362309A (en) * 1992-09-14 1994-11-08 Coraje, Inc. Apparatus and method for enhanced intravascular phonophoresis including dissolution of intravascular blockage and concomitant inhibition of restenosis
US5368036A (en) * 1992-10-20 1994-11-29 Fuji Photo Optical Co., Ltd. Ultrasound probe
US5380273A (en) * 1992-05-19 1995-01-10 Dubrul; Will R. Vibrating catheter
US5429136A (en) * 1993-04-21 1995-07-04 Devices For Vascular Intervention, Inc. Imaging atherectomy apparatus
US5431663A (en) * 1990-12-10 1995-07-11 Coraje, Inc. Miniature ultrasonic transducer for removal of intravascular plaque and clots
US5447509A (en) * 1991-01-11 1995-09-05 Baxter International Inc. Ultrasound catheter system having modulated output with feedback control
US5456259A (en) * 1991-07-30 1995-10-10 Intravascular Research Limited Ultrasonic transducer arrangement and catheter
US5496294A (en) * 1994-07-08 1996-03-05 Target Therapeutics, Inc. Catheter with kink-resistant distal tip
US5503155A (en) * 1994-01-26 1996-04-02 Cardiovascular Imaging Systems, Inc. Drive cable having internal lead wires
US5546948A (en) * 1990-08-21 1996-08-20 Boston Scientific Corporation Ultrasound imaging guidewire
US5569197A (en) * 1994-12-21 1996-10-29 Schneider (Usa) Inc Drug delivery guidewire
US5620479A (en) * 1992-11-13 1997-04-15 The Regents Of The University Of California Method and apparatus for thermal therapy of tumors
US5628728A (en) * 1995-05-31 1997-05-13 Ekos Corporation Medicine applying tool
US5630837A (en) * 1993-07-01 1997-05-20 Boston Scientific Corporation Acoustic ablation
US5713848A (en) * 1993-05-19 1998-02-03 Dubrul; Will R. Vibrating catheter
US5725494A (en) * 1995-11-30 1998-03-10 Pharmasonics, Inc. Apparatus and methods for ultrasonically enhanced intraluminal therapy
US5735811A (en) * 1995-11-30 1998-04-07 Pharmasonics, Inc. Apparatus and methods for ultrasonically enhanced fluid delivery
US5836946A (en) * 1996-06-12 1998-11-17 The Spectranetics Corporation Catheter for delivery of electric energy and a process for manufacturing same
US5916192A (en) * 1991-01-11 1999-06-29 Advanced Cardiovascular Systems, Inc. Ultrasonic angioplasty-atherectomy catheter and method of use
US5976120A (en) * 1997-05-05 1999-11-02 Micro Therapeutics, Inc. Single segment microcatheter
US5997497A (en) * 1991-01-11 1999-12-07 Advanced Cardiovascular Systems Ultrasound catheter having integrated drug delivery system and methods of using same
US6024703A (en) * 1997-05-07 2000-02-15 Eclipse Surgical Technologies, Inc. Ultrasound device for axial ranging
US6024718A (en) * 1996-09-04 2000-02-15 The Regents Of The University Of California Intraluminal directed ultrasound delivery device
US6096000A (en) * 1997-06-23 2000-08-01 Ekos Corporation Apparatus for transport of fluids across, into or from biological tissues
US6110314A (en) * 1994-03-11 2000-08-29 Intravascular Research Limited Ultrasonic transducer array and method of manufacturing the same
US6113558A (en) * 1997-09-29 2000-09-05 Angiosonics Inc. Pulsed mode lysis method
US6120454A (en) * 1998-02-03 2000-09-19 Boston Scientific Corporation Annular array ultrasound catheter
US6135971A (en) * 1995-11-09 2000-10-24 Brigham And Women's Hospital Apparatus for deposition of ultrasound energy in body tissue
US6176842B1 (en) * 1995-03-08 2001-01-23 Ekos Corporation Ultrasound assembly for use with light activated drugs
US6182666B1 (en) * 1996-12-26 2001-02-06 Cryogen, Inc. Cryosurgical probe and method for uterine ablation
US6210356B1 (en) * 1998-08-05 2001-04-03 Ekos Corporation Ultrasound assembly for use with a catheter
US6228046B1 (en) * 1997-06-02 2001-05-08 Pharmasonics, Inc. Catheters comprising a plurality of oscillators and methods for their use
US6241695B1 (en) * 1999-08-10 2001-06-05 Reza R. Dabir Apparatus and method for pressure management
US6258080B1 (en) * 1997-07-01 2001-07-10 Target Therapeutics, Inc. Kink-free spiral-wound catheter
US6261246B1 (en) * 1997-09-29 2001-07-17 Scimed Life Systems, Inc. Intravascular imaging guidewire
US6296619B1 (en) * 1998-12-30 2001-10-02 Pharmasonics, Inc. Therapeutic ultrasonic catheter for delivering a uniform energy dose
US20010047141A1 (en) * 2000-03-20 2001-11-29 Mckenzie John High output therapeutic ultrasound transducer
US20020000763A1 (en) * 1998-11-20 2002-01-03 Jones Joie P. Methods for selectively dissolving and removing materials using ultra-high frequency ultrasound
US6344037B1 (en) * 1998-02-03 2002-02-05 Scimed Life Systems, Inc. Integrated coaxial transmission line and flexible drive cable
US20020032394A1 (en) * 2000-03-08 2002-03-14 Axel Brisken Methods, systems, and kits for plaque stabilization
US6361500B1 (en) * 2000-02-07 2002-03-26 Scimed Life Systems, Inc. Three transducer catheter
US6372498B2 (en) * 1997-12-31 2002-04-16 Pharmasonics, Inc. Methods, systems, and kits for intravascular nucleic acid delivery
US20020055747A1 (en) * 2000-11-09 2002-05-09 Metamorphic Surgical Devices, Llc Apparatus for capturing objects beyond an operative site utilizing a capture device delivered on a medical guide wire
US6391042B1 (en) * 1999-03-02 2002-05-21 Sound Surgical Technologies Llc Pulsed ultrasonic device and method
US20020099292A1 (en) * 1998-11-16 2002-07-25 Cardiac Pathways Corporation Catheter including ultrasound transducer with emissions attenuation
US6437487B1 (en) * 2001-02-28 2002-08-20 Acuson Corporation Transducer array using multi-layered elements and a method of manufacture thereof
US6456863B1 (en) * 1997-10-01 2002-09-24 Ep Technologies, Inc. Molded catheter distal end assembly and process for the manufacture thereof
US20020188278A1 (en) * 2001-06-07 2002-12-12 Bruce Tockman Method and apparatus for an adjustable shape guide catheter
US20030028173A1 (en) * 2001-08-06 2003-02-06 Scimed Life Systems, Inc. Integrated polymer and braid for intravascular catheters
US6599288B2 (en) * 2000-05-16 2003-07-29 Atrionix, Inc. Apparatus and method incorporating an ultrasound transducer onto a delivery member
US6692494B1 (en) * 1999-08-05 2004-02-17 Broncus Technologies, Inc. Methods and devices for creating collateral channels in the lungs

Family Cites Families (124)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3433226A (en) 1965-07-21 1969-03-18 Aeroprojects Inc Vibratory catheterization apparatus and method of using
US4040414A (en) 1976-05-12 1977-08-09 Xygiene, Inc. Ultrasonic personal care instrument and method
US4176662A (en) 1977-06-17 1979-12-04 The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Administration Apparatus for endoscopic examination
US4319580A (en) 1979-08-28 1982-03-16 The Board Of Regents Of The University Of Washington Method for detecting air emboli in the blood in an intracorporeal blood vessel
US4531943A (en) 1983-08-08 1985-07-30 Angiomedics Corporation Catheter with soft deformable tip
US4549533A (en) 1984-01-30 1985-10-29 University Of Illinois Apparatus and method for generating and directing ultrasound
US4750902A (en) 1985-08-28 1988-06-14 Sonomed Technology, Inc. Endoscopic ultrasonic aspirators
US4906238A (en) * 1985-10-15 1990-03-06 Albert R. Greenfeld Exterior antimigration refinements for self-cleaning indwelling therapeutic articles
US4739768B2 (en) 1986-06-02 1995-10-24 Target Therapeutics Inc Catheter for guide-wire tracking
US4808153A (en) 1986-11-17 1989-02-28 Ultramed Corporation Device for removing plaque from arteries
US4870953A (en) 1987-11-13 1989-10-03 Donmicheal T Anthony Intravascular ultrasonic catheter/probe and method for treating intravascular blockage
US5163421A (en) 1988-01-22 1992-11-17 Angiosonics, Inc. In vivo ultrasonic system with angioplasty and ultrasonic contrast imaging
US5588432A (en) * 1988-03-21 1996-12-31 Boston Scientific Corporation Catheters for imaging, sensing electrical potentials, and ablating tissue
US5372138A (en) 1988-03-21 1994-12-13 Boston Scientific Corporation Acousting imaging catheters and the like
US4924863A (en) * 1988-05-04 1990-05-15 Mmtc, Inc. Angioplastic method for removing plaque from a vas
US5344435A (en) 1988-07-28 1994-09-06 Bsd Medical Corporation Urethral inserted applicator prostate hyperthermia
US4920954A (en) * 1988-08-05 1990-05-01 Sonic Needle Corporation Ultrasonic device for applying cavitation forces
US5021044A (en) * 1989-01-30 1991-06-04 Advanced Cardiovascular Systems, Inc. Catheter for even distribution of therapeutic fluids
US5328470A (en) 1989-03-31 1994-07-12 The Regents Of The University Of Michigan Treatment of diseases by site-specific instillation of cells or site-specific transformation of cells and kits therefor
US4936281A (en) * 1989-04-13 1990-06-26 Everest Medical Corporation Ultrasonically enhanced RF ablation catheter
DE4005743A1 (en) 1990-02-23 1991-08-29 Wolf Gmbh Richard Lithotriptor to destroy gallstones intra-or trans-luminally - has shock-wave generator, lead contg. incompressible material, and opt balloon to press generator against gall bladder
US5108369A (en) 1990-03-15 1992-04-28 Diagnostic Devices Group, Limited Dual-diameter multifunction catheter
WO1991019529A1 (en) * 1990-06-15 1991-12-26 Cortrak Medical, Inc. Drug delivery apparatus and method
US5498238A (en) * 1990-06-15 1996-03-12 Cortrak Medical, Inc. Simultaneous angioplasty and phoretic drug delivery
US5520189A (en) 1990-07-13 1996-05-28 Coraje, Inc. Intravascular ultrasound imaging guidewire
US5250034A (en) 1990-09-17 1993-10-05 E-Z-Em, Inc. Pressure responsive valve catheter
US5496267A (en) 1990-11-08 1996-03-05 Possis Medical, Inc. Asymmetric water jet atherectomy
US5304115A (en) 1991-01-11 1994-04-19 Baxter International Inc. Ultrasonic angioplasty device incorporating improved transmission member and ablation probe
US5368557A (en) 1991-01-11 1994-11-29 Baxter International Inc. Ultrasonic ablation catheter device having multiple ultrasound transmission members
US5312328A (en) * 1991-01-11 1994-05-17 Baxter International Inc. Ultra-sound catheter for removing obstructions from tubular anatomical structures such as blood vessels
US5267954A (en) 1991-01-11 1993-12-07 Baxter International Inc. Ultra-sound catheter for removing obstructions from tubular anatomical structures such as blood vessels
US5542917A (en) 1991-01-11 1996-08-06 Baxter International, Inc. Ultrasound delivery catheters incorporating improved distal tip construction
US5353798A (en) 1991-03-13 1994-10-11 Scimed Life Systems, Incorporated Intravascular imaging apparatus and methods for use and manufacture
US5445155A (en) 1991-03-13 1995-08-29 Scimed Life Systems Incorporated Intravascular imaging apparatus and methods for use and manufacture
JP3115625B2 (en) 1991-03-30 2000-12-11 帝國製薬株式会社 Topical patch containing lidocaine
US5458568A (en) 1991-05-24 1995-10-17 Cortrak Medical, Inc. Porous balloon for selective dilatation and drug delivery
US5307816A (en) * 1991-08-21 1994-05-03 Kabushiki Kaisha Toshiba Thrombus resolving treatment apparatus
CA2122834C (en) 1991-11-04 1999-10-05 Henry Nita Ultrasonic ablation device adapted for guidewire passage
JPH07505790A (en) 1991-11-08 1995-06-29 バクスター インターナショナル インコーポレーテッド Transfer catheter and ultrasound probe for use with the same
DK171113B1 (en) 1992-01-21 1996-06-17 Baltic Technology Aps Apparatus for removing biological tissue and with an ultrasonic vibrating probe, and method for making the apparatus
GB2263974B (en) 1992-01-30 1995-11-08 Intravascular Res Ltd Ultrasound imaging and catheters for use therein
US5269297A (en) 1992-02-27 1993-12-14 Angiosonics Inc. Ultrasonic transmission apparatus
US5295484A (en) 1992-05-19 1994-03-22 Arizona Board Of Regents For And On Behalf Of The University Of Arizona Apparatus and method for intra-cardiac ablation of arrhythmias
US5271406A (en) * 1992-05-22 1993-12-21 Diagnostic Devices Group, Limited Low-profile ultrasonic transducer incorporating static beam steering
US5382228A (en) * 1992-07-09 1995-01-17 Baxter International Inc. Method and device for connecting ultrasound transmission member (S) to an ultrasound generating device
US5327891A (en) 1992-07-30 1994-07-12 Rammler David H Catheter track and catheter for diagnosis and treatment
US5336178A (en) 1992-11-02 1994-08-09 Localmed, Inc. Intravascular catheter with infusion array
US5267985A (en) 1993-02-11 1993-12-07 Trancell, Inc. Drug delivery by multiple frequency phonophoresis
US5531715A (en) * 1993-05-12 1996-07-02 Target Therapeutics, Inc. Lubricious catheters
US5462523A (en) 1993-05-18 1995-10-31 Target Therapeutics, Inc. Drug delivery system
US5385148A (en) 1993-07-30 1995-01-31 The Regents Of The University Of California Cardiac imaging and ablation catheter
US5807395A (en) * 1993-08-27 1998-09-15 Medtronic, Inc. Method and apparatus for RF ablation and hyperthermia
US5427118A (en) 1993-10-04 1995-06-27 Baxter International Inc. Ultrasonic guidewire
US5873828A (en) 1994-02-18 1999-02-23 Olympus Optical Co., Ltd. Ultrasonic diagnosis and treatment system
AU686165B2 (en) 1994-04-07 1998-02-05 Derio Medical Instruments Ltd. Device for removal of intraluminal occlusions
US5423797A (en) 1994-04-25 1995-06-13 Medelex, Inc. Acoustic catheter with rotary drive
US5454795A (en) 1994-06-27 1995-10-03 Target Therapeutics, Inc. Kink-free spiral-wound catheter
US5514092A (en) * 1994-08-08 1996-05-07 Schneider (Usa) Inc. Drug delivery and dilatation-drug delivery catheters in a rapid exchange configuration
US5509896A (en) * 1994-09-09 1996-04-23 Coraje, Inc. Enhancement of thrombolysis with external ultrasound
DE69527644T2 (en) 1994-11-23 2003-04-03 Micro Interventional Systems I BALLOON CATHETER WITH HIGH TORQUE
US5599326A (en) * 1994-12-20 1997-02-04 Target Therapeutics, Inc. Catheter with multi-layer section
CA2212808C (en) 1995-02-28 2007-12-04 Boston Scientific Corporation Polymeric implements for torque transmission
US5795298A (en) * 1995-03-28 1998-08-18 Sonometrics Corporation System for sharing electrocardiogram electrodes and transducers
US5606974A (en) 1995-05-02 1997-03-04 Heart Rhythm Technologies, Inc. Catheter having ultrasonic device
US5603694A (en) 1995-10-17 1997-02-18 Brown; Joe E. Infusion coil apparatus and method for delivering fluid-based agents intravascularly
US5618275A (en) * 1995-10-27 1997-04-08 Sonex International Corporation Ultrasonic method and apparatus for cosmetic and dermatological applications
US5803083A (en) 1995-11-09 1998-09-08 Cordis Corporation Guiding catheter with ultrasound imaging capability
US5728062A (en) 1995-11-30 1998-03-17 Pharmasonics, Inc. Apparatus and methods for vibratory intraluminal therapy employing magnetostrictive transducers
US5796120A (en) * 1995-12-28 1998-08-18 Georgia Tech Research Corporation Tunnel thin film electroluminescent device
US5895398A (en) 1996-02-02 1999-04-20 The Regents Of The University Of California Method of using a clot capture coil
NL1002274C2 (en) 1996-02-07 1997-08-08 Cordis Europ High-frequency thrombectomy catheter.
US5782811A (en) * 1996-05-30 1998-07-21 Target Therapeutics, Inc. Kink-resistant braided catheter with distal side holes
US5971949A (en) 1996-08-19 1999-10-26 Angiosonics Inc. Ultrasound transmission apparatus and method of using same
US5836896A (en) 1996-08-19 1998-11-17 Angiosonics Method of inhibiting restenosis by applying ultrasonic energy
US6241703B1 (en) * 1996-08-19 2001-06-05 Angiosonics Inc. Ultrasound transmission apparatus having a tip
US5827313A (en) 1996-09-27 1998-10-27 Boston Scientific Corporation Device for controlled longitudinal movement of an operative element within a catheter sheath and method
US6309339B1 (en) * 1997-03-28 2001-10-30 Endosonics Corporation Intravascular radiation delivery device
EP0873722A1 (en) 1997-04-24 1998-10-28 Sulzer Osypka GmbH Apparatus for an endocardiac treatment
WO1998048711A1 (en) * 1997-05-01 1998-11-05 Ekos Corporation Ultrasound catheter
US6582392B1 (en) 1998-05-01 2003-06-24 Ekos Corporation Ultrasound assembly for use with a catheter
US6723063B1 (en) * 1998-06-29 2004-04-20 Ekos Corporation Sheath for use with an ultrasound element
US6676626B1 (en) * 1998-05-01 2004-01-13 Ekos Corporation Ultrasound assembly with increased efficacy
US5931805A (en) 1997-06-02 1999-08-03 Pharmasonics, Inc. Catheters comprising bending transducers and methods for their use
FR2764516B1 (en) * 1997-06-11 1999-09-03 Inst Nat Sante Rech Med ULTRASONIC INTRATISSULAIRE APPLICATOR FOR HYPERTHERMIA
US5842994A (en) * 1997-07-02 1998-12-01 Boston Scientific Technology, Inc. Multifunction intraluminal ultrasound catheter having a removable core with maximized transducer aperture
US6562021B1 (en) 1997-12-22 2003-05-13 Micrus Corporation Variable stiffness electrically conductive composite, resistive heating catheter shaft
US6508816B2 (en) 1998-03-27 2003-01-21 John H. Shadduck Medical instrument working end creating very high pressure gradients
US6241692B1 (en) * 1998-10-06 2001-06-05 Irvine Biomedical, Inc. Ultrasonic ablation device and methods for lead extraction
US6607502B1 (en) 1998-11-25 2003-08-19 Atrionix, Inc. Apparatus and method incorporating an ultrasound transducer onto a delivery member
US6206831B1 (en) * 1999-01-06 2001-03-27 Scimed Life Systems, Inc. Ultrasound-guided ablation catheter and methods of use
CA2368707C (en) 1999-02-02 2006-06-06 Transurgical, Inc. Intrabody hifu applicator
US6855123B2 (en) 2002-08-02 2005-02-15 Flow Cardia, Inc. Therapeutic ultrasound system
US6466815B1 (en) * 1999-03-30 2002-10-15 Olympus Optical Co., Ltd. Navigation apparatus and surgical operation image acquisition/display apparatus using the same
US6235024B1 (en) * 1999-06-21 2001-05-22 Hosheng Tu Catheters system having dual ablation capability
US6368315B1 (en) 1999-06-23 2002-04-09 Durect Corporation Composite drug delivery catheter
US7152228B2 (en) * 1999-07-08 2006-12-19 Science Applications International Corporation Automatically generated objects within extensible object frameworks and links to enterprise resources
US6524251B2 (en) 1999-10-05 2003-02-25 Omnisonics Medical Technologies, Inc. Ultrasonic device for tissue ablation and sheath for use therewith
US20030036705A1 (en) * 1999-10-05 2003-02-20 Omnisonics Medical Technologies, Inc. Ultrasonic probe device having an impedance mismatch with rapid attachment and detachment means
EP1090658A1 (en) 1999-10-05 2001-04-11 OmniSonics Medical Technologies Ultrasonic medical treatment apparatus
US6551337B1 (en) 1999-10-05 2003-04-22 Omnisonics Medical Technologies, Inc. Ultrasonic medical device operating in a transverse mode
US6660013B2 (en) 1999-10-05 2003-12-09 Omnisonics Medical Technologies, Inc. Apparatus for removing plaque from blood vessels using ultrasonic energy
US20030236539A1 (en) 1999-10-05 2003-12-25 Omnisonics Medical Technologies, Inc. Apparatus and method for using an ultrasonic probe to clear a vascular access device
US6652547B2 (en) 1999-10-05 2003-11-25 Omnisonics Medical Technologies, Inc. Apparatus and method of removing occlusions using ultrasonic medical device operating in a transverse mode
US6533754B1 (en) 1999-11-26 2003-03-18 Terumo Kabushiki Kaisha Catheter
US6423026B1 (en) * 1999-12-09 2002-07-23 Advanced Cardiovascular Systems, Inc. Catheter stylet
US6524300B2 (en) * 2000-01-03 2003-02-25 Angiodynamics, Inc. Infusion catheter with non-uniform drug delivery density
US6361531B1 (en) * 2000-01-21 2002-03-26 Medtronic Xomed, Inc. Focused ultrasound ablation devices having malleable handle shafts and methods of using the same
US6663613B1 (en) 2000-01-25 2003-12-16 Bacchus Vascular, Inc. System and methods for clot dissolution
US6568021B1 (en) * 2000-02-10 2003-05-27 George W. Wood Trowel with levels
US6913581B2 (en) * 2000-03-20 2005-07-05 Paul D. Corl High output therapeutic ultrasound transducer
CA2409719C (en) * 2000-05-16 2012-05-08 Atrionix, Inc. Deflectable tip catheter with guidewire tracking mechanism
JP4798826B2 (en) * 2000-08-25 2011-10-19 古野電気株式会社 Beam angle control method and control apparatus for cylindrical transducer
US6416492B1 (en) * 2000-09-28 2002-07-09 Scimed Life Systems, Inc. Radiation delivery system utilizing intravascular ultrasound
US6554801B1 (en) * 2000-10-26 2003-04-29 Advanced Cardiovascular Systems, Inc. Directional needle injection drug delivery device and method of use
US6740040B1 (en) * 2001-01-30 2004-05-25 Advanced Cardiovascular Systems, Inc. Ultrasound energy driven intraventricular catheter to treat ischemia
US6589182B1 (en) 2001-02-12 2003-07-08 Acuson Corporation Medical diagnostic ultrasound catheter with first and second tip portions
WO2002070158A1 (en) 2001-03-07 2002-09-12 Omnisonics Medical Technologies, Inc. Apparatus and method for manufacturing small diameter medical devices
US20020151825A1 (en) 2001-04-12 2002-10-17 Pearl Technology Holdings, Llc Ultrasound plaque emulsion device
US7135029B2 (en) * 2001-06-29 2006-11-14 Makin Inder Raj S Ultrasonic surgical instrument for intracorporeal sonodynamic therapy
US20030023261A1 (en) 2001-07-30 2003-01-30 Scimed Life Systems Inc. Chronic total occlusion device with variable stiffness shaft
EP1463454A1 (en) * 2001-12-14 2004-10-06 Ekos Corporation Blood flow reestablishment determination
US6746465B2 (en) * 2001-12-14 2004-06-08 The Regents Of The University Of California Catheter based balloon for therapy modification and positioning of tissue
AU2003212481A1 (en) 2002-02-28 2003-09-09 Ekos Corporation Ultrasound assembly for use with a catheter
US7137963B2 (en) * 2002-08-26 2006-11-21 Flowcardia, Inc. Ultrasound catheter for disrupting blood vessel obstructions

Patent Citations (65)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US527406A (en) * 1894-10-16 Expansion- bolt
US4948587A (en) * 1986-07-08 1990-08-14 Massachusetts Institute Of Technology Ultrasound enhancement of transbuccal drug delivery
US4841977A (en) * 1987-05-26 1989-06-27 Inter Therapy, Inc. Ultra-thin acoustic transducer and balloon catheter using same in imaging array subassembly
US5158071A (en) * 1988-07-01 1992-10-27 Hitachi, Ltd. Ultrasonic apparatus for therapeutical use
US5197946A (en) * 1990-06-27 1993-03-30 Shunro Tachibana Injection instrument with ultrasonic oscillating element
US5546948A (en) * 1990-08-21 1996-08-20 Boston Scientific Corporation Ultrasound imaging guidewire
US5059851A (en) * 1990-09-06 1991-10-22 Cardiometrics, Inc. Miniature ultrasound high efficiency transducer assembly, guidewire using the same and method
US5431663A (en) * 1990-12-10 1995-07-11 Coraje, Inc. Miniature ultrasonic transducer for removal of intravascular plaque and clots
US5997497A (en) * 1991-01-11 1999-12-07 Advanced Cardiovascular Systems Ultrasound catheter having integrated drug delivery system and methods of using same
US5916192A (en) * 1991-01-11 1999-06-29 Advanced Cardiovascular Systems, Inc. Ultrasonic angioplasty-atherectomy catheter and method of use
US5447509A (en) * 1991-01-11 1995-09-05 Baxter International Inc. Ultrasound catheter system having modulated output with feedback control
US5456259A (en) * 1991-07-30 1995-10-10 Intravascular Research Limited Ultrasonic transducer arrangement and catheter
US5345940A (en) * 1991-11-08 1994-09-13 Mayo Foundation For Medical Education And Research Transvascular ultrasound hemodynamic and interventional catheter and method
US5226421A (en) * 1992-03-06 1993-07-13 Cardiometrics, Inc. Doppler elongate flexible member having an inflatable balloon mounted thereon
US5380273A (en) * 1992-05-19 1995-01-10 Dubrul; Will R. Vibrating catheter
US5362309A (en) * 1992-09-14 1994-11-08 Coraje, Inc. Apparatus and method for enhanced intravascular phonophoresis including dissolution of intravascular blockage and concomitant inhibition of restenosis
US5474531A (en) * 1992-09-14 1995-12-12 Coraje, Inc. Apparatus and method for enhanced intravascular phonophoresis including dissolution of intravascular blockage and concomitant inhibition of restenosis
US5318014A (en) * 1992-09-14 1994-06-07 Coraje, Inc. Ultrasonic ablation/dissolution transducer
US5368036A (en) * 1992-10-20 1994-11-29 Fuji Photo Optical Co., Ltd. Ultrasound probe
US5620479A (en) * 1992-11-13 1997-04-15 The Regents Of The University Of California Method and apparatus for thermal therapy of tumors
US5429136A (en) * 1993-04-21 1995-07-04 Devices For Vascular Intervention, Inc. Imaging atherectomy apparatus
US5713848A (en) * 1993-05-19 1998-02-03 Dubrul; Will R. Vibrating catheter
US5630837A (en) * 1993-07-01 1997-05-20 Boston Scientific Corporation Acoustic ablation
US5348481A (en) * 1993-09-29 1994-09-20 Cardiometrics, Inc. Rotary connector for use with small diameter flexible elongate member having electrical capabilities
US5503155A (en) * 1994-01-26 1996-04-02 Cardiovascular Imaging Systems, Inc. Drive cable having internal lead wires
US20020087083A1 (en) * 1994-03-11 2002-07-04 Nix Elvin Leonard Ultrasonic transducer array and method of manufacturing the same
US6110314A (en) * 1994-03-11 2000-08-29 Intravascular Research Limited Ultrasonic transducer array and method of manufacturing the same
US5496294A (en) * 1994-07-08 1996-03-05 Target Therapeutics, Inc. Catheter with kink-resistant distal tip
US5569197A (en) * 1994-12-21 1996-10-29 Schneider (Usa) Inc Drug delivery guidewire
US6176842B1 (en) * 1995-03-08 2001-01-23 Ekos Corporation Ultrasound assembly for use with light activated drugs
US5628728A (en) * 1995-05-31 1997-05-13 Ekos Corporation Medicine applying tool
US6135971A (en) * 1995-11-09 2000-10-24 Brigham And Women's Hospital Apparatus for deposition of ultrasound energy in body tissue
US5735811A (en) * 1995-11-30 1998-04-07 Pharmasonics, Inc. Apparatus and methods for ultrasonically enhanced fluid delivery
US5725494A (en) * 1995-11-30 1998-03-10 Pharmasonics, Inc. Apparatus and methods for ultrasonically enhanced intraluminal therapy
US5836946A (en) * 1996-06-12 1998-11-17 The Spectranetics Corporation Catheter for delivery of electric energy and a process for manufacturing same
US6024718A (en) * 1996-09-04 2000-02-15 The Regents Of The University Of California Intraluminal directed ultrasound delivery device
US6182666B1 (en) * 1996-12-26 2001-02-06 Cryogen, Inc. Cryosurgical probe and method for uterine ablation
US5976120A (en) * 1997-05-05 1999-11-02 Micro Therapeutics, Inc. Single segment microcatheter
US6024703A (en) * 1997-05-07 2000-02-15 Eclipse Surgical Technologies, Inc. Ultrasound device for axial ranging
US6228046B1 (en) * 1997-06-02 2001-05-08 Pharmasonics, Inc. Catheters comprising a plurality of oscillators and methods for their use
US6096000A (en) * 1997-06-23 2000-08-01 Ekos Corporation Apparatus for transport of fluids across, into or from biological tissues
US6258080B1 (en) * 1997-07-01 2001-07-10 Target Therapeutics, Inc. Kink-free spiral-wound catheter
US6261246B1 (en) * 1997-09-29 2001-07-17 Scimed Life Systems, Inc. Intravascular imaging guidewire
US6113558A (en) * 1997-09-29 2000-09-05 Angiosonics Inc. Pulsed mode lysis method
US6456863B1 (en) * 1997-10-01 2002-09-24 Ep Technologies, Inc. Molded catheter distal end assembly and process for the manufacture thereof
US6372498B2 (en) * 1997-12-31 2002-04-16 Pharmasonics, Inc. Methods, systems, and kits for intravascular nucleic acid delivery
US6344037B1 (en) * 1998-02-03 2002-02-05 Scimed Life Systems, Inc. Integrated coaxial transmission line and flexible drive cable
US6120454A (en) * 1998-02-03 2000-09-19 Boston Scientific Corporation Annular array ultrasound catheter
US6210356B1 (en) * 1998-08-05 2001-04-03 Ekos Corporation Ultrasound assembly for use with a catheter
US20020099292A1 (en) * 1998-11-16 2002-07-25 Cardiac Pathways Corporation Catheter including ultrasound transducer with emissions attenuation
US20020000763A1 (en) * 1998-11-20 2002-01-03 Jones Joie P. Methods for selectively dissolving and removing materials using ultra-high frequency ultrasound
US6296619B1 (en) * 1998-12-30 2001-10-02 Pharmasonics, Inc. Therapeutic ultrasonic catheter for delivering a uniform energy dose
US20010041880A1 (en) * 1998-12-30 2001-11-15 Brisken Axel F. Therapeutic ultrasound catheter for delivering a uniform energy dose
US6391042B1 (en) * 1999-03-02 2002-05-21 Sound Surgical Technologies Llc Pulsed ultrasonic device and method
US6692494B1 (en) * 1999-08-05 2004-02-17 Broncus Technologies, Inc. Methods and devices for creating collateral channels in the lungs
US6241695B1 (en) * 1999-08-10 2001-06-05 Reza R. Dabir Apparatus and method for pressure management
US6361500B1 (en) * 2000-02-07 2002-03-26 Scimed Life Systems, Inc. Three transducer catheter
US20020032394A1 (en) * 2000-03-08 2002-03-14 Axel Brisken Methods, systems, and kits for plaque stabilization
US20010047141A1 (en) * 2000-03-20 2001-11-29 Mckenzie John High output therapeutic ultrasound transducer
US6508775B2 (en) * 2000-03-20 2003-01-21 Pharmasonics, Inc. High output therapeutic ultrasound transducer
US6599288B2 (en) * 2000-05-16 2003-07-29 Atrionix, Inc. Apparatus and method incorporating an ultrasound transducer onto a delivery member
US20020055747A1 (en) * 2000-11-09 2002-05-09 Metamorphic Surgical Devices, Llc Apparatus for capturing objects beyond an operative site utilizing a capture device delivered on a medical guide wire
US6437487B1 (en) * 2001-02-28 2002-08-20 Acuson Corporation Transducer array using multi-layered elements and a method of manufacture thereof
US20020188278A1 (en) * 2001-06-07 2002-12-12 Bruce Tockman Method and apparatus for an adjustable shape guide catheter
US20030028173A1 (en) * 2001-08-06 2003-02-06 Scimed Life Systems, Inc. Integrated polymer and braid for intravascular catheters

Cited By (69)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080274097A1 (en) * 1991-03-22 2008-11-06 Katsuro Tachibana Booster for therapy of diseases with ultrasound and pharmaceutical liquid composition containing the same
US8690818B2 (en) 1997-05-01 2014-04-08 Ekos Corporation Ultrasound catheter for providing a therapeutic effect to a vessel of a body
US8764700B2 (en) 1998-06-29 2014-07-01 Ekos Corporation Sheath for use with an ultrasound element
US8790359B2 (en) 1999-10-05 2014-07-29 Cybersonics, Inc. Medical systems and related methods
US20040158150A1 (en) * 1999-10-05 2004-08-12 Omnisonics Medical Technologies, Inc. Apparatus and method for an ultrasonic medical device for tissue remodeling
US8167831B2 (en) 2001-12-03 2012-05-01 Ekos Corporation Catheter with multiple ultrasound radiating members
US10926074B2 (en) 2001-12-03 2021-02-23 Ekos Corporation Catheter with multiple ultrasound radiating members
US8696612B2 (en) 2001-12-03 2014-04-15 Ekos Corporation Catheter with multiple ultrasound radiating members
US10080878B2 (en) 2001-12-03 2018-09-25 Ekos Corporation Catheter with multiple ultrasound radiating members
US9415242B2 (en) 2001-12-03 2016-08-16 Ekos Corporation Catheter with multiple ultrasound radiating members
US7774933B2 (en) 2002-02-28 2010-08-17 Ekos Corporation Method of manufacturing ultrasound catheters
US8852166B1 (en) 2002-04-01 2014-10-07 Ekos Corporation Ultrasonic catheter power control
US9943675B1 (en) 2002-04-01 2018-04-17 Ekos Corporation Ultrasonic catheter power control
US8226629B1 (en) 2002-04-01 2012-07-24 Ekos Corporation Ultrasonic catheter power control
US20110060253A1 (en) * 2003-01-03 2011-03-10 Ekos Corporation Ultrasonic catheter with axial energy field
US7771372B2 (en) 2003-01-03 2010-08-10 Ekos Corporation Ultrasonic catheter with axial energy field
US20040199228A1 (en) * 2003-01-03 2004-10-07 Wilson Richard R. Ultrasonic catheter with axial energy field
US20060122507A1 (en) * 2003-04-22 2006-06-08 Rule Peter R Ultrasound enhanced central venous catheter
US20050197619A1 (en) * 2003-04-22 2005-09-08 Rule Peter R. Ultrasound enhanced central venous catheter
US7993308B2 (en) 2003-04-22 2011-08-09 Ekos Corporation Ultrasound enhanced central venous catheter
WO2005027756A1 (en) * 2003-08-22 2005-03-31 Omnisonics Medical Technologies, Inc. Apparatus and method for an ultrasonic medical device engaging a flexible material
US20050137520A1 (en) * 2003-10-29 2005-06-23 Rule Peter R. Catheter with ultrasound-controllable porous membrane
US9107590B2 (en) 2004-01-29 2015-08-18 Ekos Corporation Method and apparatus for detecting vascular conditions with a catheter
US20050215946A1 (en) * 2004-01-29 2005-09-29 Hansmann Douglas R Method and apparatus for detecting vascular conditions with a catheter
US20100081934A1 (en) * 2004-01-30 2010-04-01 Ekos Corporation Treatment of vascular occlusions using ultrasonic energy and microbubbles
US7341569B2 (en) 2004-01-30 2008-03-11 Ekos Corporation Treatment of vascular occlusions using ultrasonic energy and microbubbles
US20050192556A1 (en) * 2004-01-30 2005-09-01 Azita Soltani Treatment of vascular occlusions using ultrasonic energy and microbubbles
US7648478B2 (en) 2004-01-30 2010-01-19 Ekos Corporation Treatment of vascular occlusions using ultrasonic energy and microbubbles
US7794414B2 (en) 2004-02-09 2010-09-14 Emigrant Bank, N.A. Apparatus and method for an ultrasonic medical device operating in torsional and transverse modes
US20060184070A1 (en) * 2004-11-12 2006-08-17 Hansmann Douglas R External ultrasonic therapy
US20060123043A1 (en) * 2004-12-02 2006-06-08 Samsung Electronics Co., Ltd. File system path processing device and method
US20060173387A1 (en) * 2004-12-10 2006-08-03 Douglas Hansmann Externally enhanced ultrasonic therapy
US20060264809A1 (en) * 2005-04-12 2006-11-23 Hansmann Douglas R Ultrasound catheter with cavitation promoting surface
US11058901B2 (en) 2006-04-24 2021-07-13 Ekos Corporation Ultrasound therapy system
US10232196B2 (en) 2006-04-24 2019-03-19 Ekos Corporation Ultrasound therapy system
US20070265560A1 (en) * 2006-04-24 2007-11-15 Ekos Corporation Ultrasound Therapy System
US8192363B2 (en) 2006-10-27 2012-06-05 Ekos Corporation Catheter with multiple ultrasound radiating members
US20080171965A1 (en) * 2007-01-08 2008-07-17 Ekos Corporation Power parameters for ultrasonic catheter
US10188410B2 (en) 2007-01-08 2019-01-29 Ekos Corporation Power parameters for ultrasonic catheter
US10182833B2 (en) 2007-01-08 2019-01-22 Ekos Corporation Power parameters for ultrasonic catheter
US20090018472A1 (en) * 2007-01-08 2009-01-15 Azita Soltani Power parameters for ultrasonic catheter
US11672553B2 (en) 2007-06-22 2023-06-13 Ekos Corporation Method and apparatus for treatment of intracranial hemorrhages
US9044568B2 (en) 2007-06-22 2015-06-02 Ekos Corporation Method and apparatus for treatment of intracranial hemorrhages
US20100121269A1 (en) * 2008-11-12 2010-05-13 Hansen Medical, Inc. Apparatus and method for sensing force on a robotically controlled medical instrument
US9480820B2 (en) 2008-11-12 2016-11-01 Hansen Medical, Inc. Apparatus and method for sensing force on a robotically controlled medical instrument
US8372019B2 (en) * 2008-11-12 2013-02-12 Hansen Medical, Inc. Apparatus and method for sensing force on a robotically controlled medical instrument
US9849273B2 (en) 2009-07-03 2017-12-26 Ekos Corporation Power parameters for ultrasonic catheter
US20110004105A1 (en) * 2009-07-03 2011-01-06 Ekos Corporation Power parameters for ultrasonic catheter
US8192391B2 (en) 2009-07-03 2012-06-05 Ekos Corporation Power parameters for ultrasonic catheter
US20110201974A1 (en) * 2010-02-17 2011-08-18 Ekos Corporation Treatment of vascular occlusions using ultrasonic energy and microbubbles
US9192566B2 (en) 2010-02-17 2015-11-24 Ekos Corporation Treatment of vascular occlusions using ultrasonic energy and microbubbles
US8740835B2 (en) 2010-02-17 2014-06-03 Ekos Corporation Treatment of vascular occlusions using ultrasonic energy and microbubbles
US20120059285A1 (en) * 2010-08-27 2012-03-08 Ekos Corporation Method and apparatus for treatment of intracranial hemorrhages
US10888657B2 (en) * 2010-08-27 2021-01-12 Ekos Corporation Method and apparatus for treatment of intracranial hemorrhages
US11458290B2 (en) 2011-05-11 2022-10-04 Ekos Corporation Ultrasound system
US9579494B2 (en) 2013-03-14 2017-02-28 Ekos Corporation Method and apparatus for drug delivery to a target site
US10507320B2 (en) 2014-09-22 2019-12-17 Ekos Corporation Catheter system
US10092742B2 (en) 2014-09-22 2018-10-09 Ekos Corporation Catheter system
US10656025B2 (en) 2015-06-10 2020-05-19 Ekos Corporation Ultrasound catheter
US11740138B2 (en) 2015-06-10 2023-08-29 Ekos Corporation Ultrasound catheter
US10398504B2 (en) 2016-05-23 2019-09-03 Qisda Corporation Ultrasound catheter and medical system using the same
US11134976B2 (en) 2018-01-08 2021-10-05 Tao Song Device having a multi-channel transmission member
WO2019136461A1 (en) * 2018-01-08 2019-07-11 Tao Song Device having a multi-channel transmission member
US11596438B2 (en) * 2018-01-16 2023-03-07 Daniel Ezra Walzman Bypass catheter
US11596769B2 (en) 2018-01-16 2023-03-07 Daniel Ezra Walzman Bypass catheter
US11738172B2 (en) 2018-01-16 2023-08-29 Daniel Ezra Walzman Bypass catheter
US20200281623A1 (en) * 2018-01-16 2020-09-10 Daniel Ezra Walzman Bypass catheter
US11925367B2 (en) 2018-12-20 2024-03-12 Ekos Corporation Power parameters for ultrasonic catheter
WO2020190623A1 (en) * 2019-03-20 2020-09-24 Avent, Inc. Catheter with seal layer

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US7774933B2 (en) 2010-08-17
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US20100331763A1 (en) 2010-12-30
US20060224142A1 (en) 2006-10-05

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