US20060015093A1 - Open system heat exchange catheters and methods of use - Google Patents

Open system heat exchange catheters and methods of use Download PDF

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US20060015093A1
US20060015093A1 US11/231,263 US23126305A US2006015093A1 US 20060015093 A1 US20060015093 A1 US 20060015093A1 US 23126305 A US23126305 A US 23126305A US 2006015093 A1 US2006015093 A1 US 2006015093A1
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fluid
bladder
tube
inlet
coaxial
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US11/231,263
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Jay Eum
Thach Duong
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Endocare Inc
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Endocare Inc
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Publication of US20060015093A1 publication Critical patent/US20060015093A1/en
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B18/02Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by cooling, e.g. cryogenic techniques
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B2018/00005Cooling or heating of the probe or tissue immediately surrounding the probe
    • A61B2018/00041Heating, e.g. defrosting
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B18/04Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
    • A61B2018/044Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating the surgical action being effected by a circulating hot fluid
    • A61B2018/046Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating the surgical action being effected by a circulating hot fluid in liquid form

Definitions

  • the present invention relates to urological warming and cooling devices and more particularly to a method of warming or alternatively cooling the urethra of a patient during ablative surgery.
  • Cryosurgical probes are used to treat a variety of diseases.
  • the cryosurgical probes quickly freeze diseased body tissue, causing the tissue to die after which it will be absorbed by the body, expelled by the body or sloughed off.
  • Cryothermal treatment is currently used to treat prostate cancer and benign prostate disease, breast tumors and breast cancer, liver tumors and liver cancer, lung tumors, kidney tumors, bone tumors, glaucoma and other eye diseases.
  • Cryosurgery is also proposed for the treatment of a number of other diseases.
  • cryosurgical probes for cryoablation of the prostate is described in Onik, Ultrasound - Guided Cryosurgery, Scientific American at 62 (January 1996) and Onik, Cohen, et al., Transrectal Ultrasound - Guided Percutaneous Radial Cryosurgical Ablation Of The Prostate, 72. Cancer 1291 (1993).
  • this procedure generally referred to as cryoablation of the prostate, several cryosurgical probes are inserted through the skin in the perineal area (between the scrotum and the anus), which provides the easiest access to the prostate.
  • the probes are pushed into the prostate gland through previously placed cannulas. Placement of the probes within the prostate gland is visualized with an ultrasound imaging probe placed in the rectum.
  • the probes are quickly cooled to temperatures typically below ⁇ 120° C.
  • the prostate tissue is killed by the freezing, and any tumor or cancer within the prostate is also killed.
  • the body absorbs some of the dead tissue over a period of several weeks.
  • other necrosed tissue may slough off and pass through the urethra, often causing undesirable blockage.
  • the Baust patent discloses a coaxial three lumen catheter in which warm saline passes through the outside lumen, returns through a coaxial second lumen, while the third lumen is a urinary drainage lumen centrally disposed within the other two lumens. The catheter is used to heat the urethra while the prostate is being frozen with cryosurgical probes.
  • Eshel Technique for Localized Thermal Treatment of Mammals
  • U.S. Pat. No. 5,257,977 shows a catheter which delivers heated saline flow to provide therapeutic hyperthermia treatment of the prostate.
  • Eshel shows a three lumen catheter with centrally located urinary drainage lumen.
  • Schossow Endotracheal Tube
  • U.S. Pat. No. 3,087,493 Apr. 27, 1960.
  • Schossow describes a device employed to intubate the human trachea, such device connected with ducts and/or tubes outside the patient for the purpose of, for example, drawing off from the patient's respiratory tract undesirable liquids and/or introducing beneficial liquids into the trachea.
  • the device consists of an outer tube, which fits inside the patient's trachea, and a two layered inner tube.
  • the lumen of the inner tube is open to be connected with devices or ducts through which suction may be applied or fluids injected into the trachea.
  • the distal portion of the inner tube is vented with ports or openings which create a “sprinkler” effect inside the tube. Schossow does not suggest use as a urethral warming catheter during cryoablation of the prostate.
  • the urethral tissue near the bladder neck sphincter (near the hot water outlet) is heated more than the urethral tissue near the external sphincter, creating a strong thermal gradient in the prostatic urethra and an uneven heating effect.
  • the hot water reaches the external sphincter it may have lost so much heat to the upper region of the urethra that it is not warm enough to protect the external sphincter from freezing.
  • hotter water In order for the tissue at the bladder neck sphincter to be adequately warmed, hotter water must be pumped in, risking urethral damage due to scalded tissue, or more water must be pumped at higher rates and pressures, increasing the material requirements of the hot water supply system and the warming catheter.
  • U.S. Pat. No. 6,017,361 issued to Mikus et al, entitled Urethral Warming Catheter, discloses an improved method and means for maintaining the temperature of urethral tissues during cryoablation of the prostate gland and thereby eliminates or reduces the sloughing of dead cells into the urethra.
  • Diffuser holes or ports are drilled into the inner tube of the warming catheter. The holes create an advantage over the prior art of achieving improved uniformity of fluid flow and temperature, utilizing a lower initial temperature and resulting in a more even application of thermal treatment to the urethral tissues.
  • the apparatus may find additional utility in other areas of surgery where thermal treatment or maintenance of tissues is required with or without the capability of drainage.
  • the present invention includes various embodiments of open system heat exchange catheters and methods of use.
  • the various catheters can be used with various ablative surgical devices.
  • One specific exemplary use is in conjunction with cryosurgical probes involving ablation of the prostate, in which the integrity of the urethra is desired to be maintained.
  • Other uses involve use with various heating ablative devices.
  • the method for providing heat exchange with the urethra involves inserting a suprapubic suction tube into the bladder of a patient. At least one ablative surgical device is inserted into a prostate region of the patient. An injection tube assembly inserted through the patient's urethra and into the bladder. Heat exchange fluid is delivered through the injection tube assembly during operation of the at least one ablative surgical device, the heat exchange fluid is delivered into the bladder. The suction tube expels bladder fluid from the bladder during the delivering of heat exchange fluid through the injection tub assembly. The bladder fluid includes the heat exchange fluid.
  • the urethra is warmed or alternatively cooled by the heat exchange fluid to preserve living tissue thereof.
  • a coaxial tube assembly is used.
  • the coaxial portion can be used to define a path for the return of bladder fluid. This obviates the use of a suprapubic suction tube in providing this function.
  • the use of a coaxial portion allows access for an endoscope.
  • a double lumen tube assembly is utilized.
  • the use of a double lumen tube assembly also obviates the need of a suprapubic suction tube by defining a path for the return of bladder fluid.
  • FIG. 1 is a cross-sectional view of the lower abdominal portion of the human body with a first embodiment of the heat exchange catheter in place, the first embodiment comprising an open tube, being utilized with a suprapubic suction tube.
  • FIG. 2 is a cross-sectional view of a second embodiment of the heat exchange catheter in which a coaxial portion allows the heat exchange catheter to be used as both an inlet and an outlet for heat exchange fluid.
  • FIG. 3 is a cross-sectional view of a third embodiment of the heat exchange catheter in which a coaxial portion provides for the introduction of an endoscope, the heat exchange catheter being utilized with a suprapubic suction tube.
  • FIG. 4 is a cross-sectional view of a fourth embodiment of the heat exchange catheter in which a double lumen tube assembly provides utilization of the device as both an inlet and an outlet for heat exchange fluid.
  • FIG. 1 illustrates a first preferred method of warming a urethra 10 of a patient 12 during ablative surgery in accordance with the principles of the present invention.
  • a suprapubic suction tube 14 is inserted into the bladder 16 of the patient 12 .
  • Ablative devices 18 are inserted into the prostate region 20 of the patient 12 .
  • An injection tube assembly, designated generally as 22 is inserted through the patient's urethra 10 and into the bladder 16 .
  • Warming fluid is delivered through the injection tube assembly 22 during operation of the ablative surgical devices 18 .
  • the warming fluid is delivered into the bladder 16 .
  • the suction tube 14 is operated to expel bladder fluid from the bladder 16 during the delivering of warming fluid through the injection tub assembly 22 , the bladder fluid including the warming fluid.
  • the urethra is warmed by the warming fluid to preserve living tissue thereof.
  • the ablative devices are preferably cryosurgical probes such as manufactured and marketed by Endocare, Inc., of Irvine, Calif.
  • the figure shows use of six cryosurgical probes 18 as well as four temperature probes 19 .
  • other ablative devices may be used, for example, radio frequency electrodes, laser fibers, microwave catheters, high-intensity focused ultrasound. In such instances the heat exchange fluid is cool so as to prevent the urethra from the heating by the ablative elements.
  • the injection tube assembly includes a single tube assembly including an insertable injection tube 24 , a connector 26 and a source tube 28 .
  • the tubes 24 and 28 are preferably formed of a flexible material such as various plastics, including, for example, polyethelene.
  • the connector 26 is a suitable rigid material such as polycarbonate.
  • injection tube assembly 22 receives warming fluid from a pump and warmer, which are, in turn, connected to a reservoir.
  • the warming catheter includes a single tube inlet 32 .
  • a coaxial portion 34 includes an inner coaxial tube 36 and an outer coaxial tube 38 .
  • the outer coaxial tube 38 is in fluid communication with the inlet 32 and discharges warming fluid into the bladder.
  • the inner coaxial tube 36 introduces bladder fluid from the bladder.
  • An outlet 40 is preferably a single tube that is in fluid communication with the inner tube 36 .
  • a connector 42 connects the inlet 32 , the coaxial portion 34 and the outlet 40 .
  • warming fluid is delivered through the inlet 32 , through the outer coaxial tube 38 , thus warming the urethra, discharged to the bladder, and mixed with bladder fluid.
  • Bladder fluid is directed through the inner coaxial tube 36 and through the outlet 40 .
  • this system is an open system, that is, the fluid from the warming catheter 30 is discharged freely into the bladder.
  • the injection tube assembly 44 includes a co-axial portion; however, in this embodiment, this provides access for an endoscope.
  • the injection tube assembly 44 includes a warming fluid inlet comprising a single tube 46 .
  • a coaxial portion 48 includes an inner coaxial tube 50 and an outer coaxial tube 52 .
  • the outer coaxial tube 52 is in fluid communication with the inlet 46 and discharges warming fluid into the bladder.
  • the inner coaxial tube 50 does not introduce bladder fluid from the bladder. Instead, it retains a distal portion of an endoscope 54 .
  • An endoscope inlet 54 is preferably a single tube that is in communication with the inner tube 50 so that the endoscope inlet contains a proximal portion of the endoscope and the inner coaxial tube retains a distal portion of the endoscope.
  • a connector 56 connects the inlet 46 , the coaxial portion 48 and the endoscope inlet 54 .
  • warming fluid is delivered through the inlet 46 , through the outer coaxial tube 52 , thus warming the urethra, discharged to the bladder, and mixed with bladder fluid.
  • Bladder fluid is directed through a suprapubic suction tube.
  • the inner coaxial tube 50 and the endoscope inlet 54 cooperate to provide access to an endoscope 58 .
  • this system is an open system, that is, the fluid from the warming catheter 30 is discharged freely into the bladder.
  • the injection tube assembly comprises a double lumen tube assembly, designated generally as 60 .
  • the double lumen tube assembly 60 includes a single tube inlet 62 .
  • a double lumen portion 64 includes a first fluid passageway 66 and a second fluid passageway 68 .
  • the first fluid passageway 62 is in fluid communication with the inlet 62 and discharges warming fluid into the bladder.
  • the second fluid passageway 68 introduces bladder fluid from the bladder and directs it through a single tube outlet 70 .
  • a connector 72 is preferably used to connect the double lumen portion 64 with the inlet 62 and outlet 70 .
  • the examples discussed above refer to the use of a warming fluid it is understood that if the ablative devices are for heating rather than for cooling, the heat exchange fluid would be a cooling fluid.

Abstract

Various embodiments of open system heat exchange catheters and methods of use are disclosed. The various catheters can be used with various ablative surgical devices. One specific exemplary use is in conjunction with cryosurgical probes involving ablation of the prostate, in which the integrity of the urethra is desired to be maintained. Other uses involve various heating ablative devices. In one embodiment an injection tube assembly is used to provide heat exchange fluid through the urethra to the bladder where it is then expelled via a suprapubic suction tube. In other embodiments a coaxial tube assembly is utilized which defines a passageway for either expelling the bladder fluid or for providing access to an endoscope. In other embodiments a double lumen assembly is utilized that defines a passageway for expelling bladder fluid.

Description

    BACKGROUND OF THE INVENTION
  • 1. Field of the Invention
  • The present invention relates to urological warming and cooling devices and more particularly to a method of warming or alternatively cooling the urethra of a patient during ablative surgery.
  • 2. Description of the Related Art
  • Cryosurgical probes are used to treat a variety of diseases. The cryosurgical probes quickly freeze diseased body tissue, causing the tissue to die after which it will be absorbed by the body, expelled by the body or sloughed off. Cryothermal treatment is currently used to treat prostate cancer and benign prostate disease, breast tumors and breast cancer, liver tumors and liver cancer, lung tumors, kidney tumors, bone tumors, glaucoma and other eye diseases. Cryosurgery is also proposed for the treatment of a number of other diseases.
  • The use of cryosurgical probes for cryoablation of the prostate is described in Onik, Ultrasound-Guided Cryosurgery, Scientific American at 62 (January 1996) and Onik, Cohen, et al., Transrectal Ultrasound-Guided Percutaneous Radial Cryosurgical Ablation Of The Prostate, 72. Cancer 1291 (1993). In this procedure, generally referred to as cryoablation of the prostate, several cryosurgical probes are inserted through the skin in the perineal area (between the scrotum and the anus), which provides the easiest access to the prostate. The probes are pushed into the prostate gland through previously placed cannulas. Placement of the probes within the prostate gland is visualized with an ultrasound imaging probe placed in the rectum. The probes are quickly cooled to temperatures typically below −120° C. The prostate tissue is killed by the freezing, and any tumor or cancer within the prostate is also killed. The body absorbs some of the dead tissue over a period of several weeks. However, other necrosed tissue may slough off and pass through the urethra, often causing undesirable blockage. Thus, it is often desirable to avoid cryoinjury to the urethra during cryoablation of the prostate. This may be done by placing a warming catheter in the urethra and continuously flushing the catheter with warm fluid to keep the urethra from freezing.
  • Devices for warming the urethra have been available for quite some time. In 1911, U.S. Pat. No. 1,011,606 issued for an “Appliance For Subjecting Portions Of The Human System To Heat Or Cold.” This device was a coaxial dual lumen catheter intended for the application of therapeutic cooling or heating to the urethra and bladder. Devices for warming other body parts have also been proposed, such as Grams, Ear Probe For Use In Closed-Loop Caloric Irrigation, U.S. Pat. No. 4,244,377 (Jan. 13, 1981), which shows a coaxial dual lumen cannula intended for the application of therapeutic heating inside the ear.
  • Baust, et al., Closed Circulation Tissue Warming Apparatus and Method of Using the Same in Prostate Surgery, U.S. Pat. No. 5,437,673 (Aug. 1, 1995), and related publications, illustrate use of a urethral warming catheter which is used to protect the urethra from cryothermal damage during cryosurgical treatment of the prostate for benign prostate hyperplasia. The Baust patent discloses a coaxial three lumen catheter in which warm saline passes through the outside lumen, returns through a coaxial second lumen, while the third lumen is a urinary drainage lumen centrally disposed within the other two lumens. The catheter is used to heat the urethra while the prostate is being frozen with cryosurgical probes.
  • Eshel, Technique for Localized Thermal Treatment of Mammals, U.S. Pat. No. 5,257,977 (Nov. 2, 1993) shows a catheter which delivers heated saline flow to provide therapeutic hyperthermia treatment of the prostate. Like the Baust patent, Eshel shows a three lumen catheter with centrally located urinary drainage lumen.
  • Still other devices have been described for importing fluid into the body and allowing a means for removing fluid from the body. One such device is described in Schossow, Endotracheal Tube, U.S. Pat. No. 3,087,493 (Apr. 27, 1960). Schossow describes a device employed to intubate the human trachea, such device connected with ducts and/or tubes outside the patient for the purpose of, for example, drawing off from the patient's respiratory tract undesirable liquids and/or introducing beneficial liquids into the trachea. The device consists of an outer tube, which fits inside the patient's trachea, and a two layered inner tube. The lumen of the inner tube is open to be connected with devices or ducts through which suction may be applied or fluids injected into the trachea. The distal portion of the inner tube is vented with ports or openings which create a “sprinkler” effect inside the tube. Schossow does not suggest use as a urethral warming catheter during cryoablation of the prostate.
  • During cryoablation, the prostate tissue is killed by freezing temperatures in the cryogenic temperature range, typically −120° C. and below. The hot fluid used for the warming catheter is supplied at about 30° C. to 50° C. Warm fluid is pumped through the urethral warming catheter, such as the catheter described in Baust. As the warm fluid travels the length of the urethral catheter disposed within the cryosurgically cooled urethra, it is cooled by the surrounding freezing tissue. By the time the hot water has traveled from the bladder neck sphincter to the external sphincter, it has been significantly cooled by the surrounding frozen prostate. As a result, the urethral tissue near the bladder neck sphincter (near the hot water outlet) is heated more than the urethral tissue near the external sphincter, creating a strong thermal gradient in the prostatic urethra and an uneven heating effect. By the time the hot water reaches the external sphincter, it may have lost so much heat to the upper region of the urethra that it is not warm enough to protect the external sphincter from freezing. In order for the tissue at the bladder neck sphincter to be adequately warmed, hotter water must be pumped in, risking urethral damage due to scalded tissue, or more water must be pumped at higher rates and pressures, increasing the material requirements of the hot water supply system and the warming catheter.
  • U.S. Pat. No. 6,017,361, issued to Mikus et al, entitled Urethral Warming Catheter, discloses an improved method and means for maintaining the temperature of urethral tissues during cryoablation of the prostate gland and thereby eliminates or reduces the sloughing of dead cells into the urethra. Diffuser holes or ports, much like a “sprinkler,” are drilled into the inner tube of the warming catheter. The holes create an advantage over the prior art of achieving improved uniformity of fluid flow and temperature, utilizing a lower initial temperature and resulting in a more even application of thermal treatment to the urethral tissues. The apparatus may find additional utility in other areas of surgery where thermal treatment or maintenance of tissues is required with or without the capability of drainage.
  • SUMMARY OF THE INVENTION
  • The present invention includes various embodiments of open system heat exchange catheters and methods of use. The various catheters can be used with various ablative surgical devices. One specific exemplary use is in conjunction with cryosurgical probes involving ablation of the prostate, in which the integrity of the urethra is desired to be maintained. Other uses involve use with various heating ablative devices.
  • In one main aspect, the method for providing heat exchange with the urethra involves inserting a suprapubic suction tube into the bladder of a patient. At least one ablative surgical device is inserted into a prostate region of the patient. An injection tube assembly inserted through the patient's urethra and into the bladder. Heat exchange fluid is delivered through the injection tube assembly during operation of the at least one ablative surgical device, the heat exchange fluid is delivered into the bladder. The suction tube expels bladder fluid from the bladder during the delivering of heat exchange fluid through the injection tub assembly. The bladder fluid includes the heat exchange fluid. The urethra is warmed or alternatively cooled by the heat exchange fluid to preserve living tissue thereof.
  • In other embodiments, a coaxial tube assembly is used. With such an arrangement the coaxial portion can be used to define a path for the return of bladder fluid. This obviates the use of a suprapubic suction tube in providing this function. Alternatively, the use of a coaxial portion allows access for an endoscope.
  • In another embodiment, a double lumen tube assembly is utilized. The use of a double lumen tube assembly also obviates the need of a suprapubic suction tube by defining a path for the return of bladder fluid.
  • These systems are open systems inasmuch as fluid from the heat exchange catheters is not isolated from bladder fluid. Instead, it is mixed with the bladder fluid and then expelled.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a cross-sectional view of the lower abdominal portion of the human body with a first embodiment of the heat exchange catheter in place, the first embodiment comprising an open tube, being utilized with a suprapubic suction tube.
  • FIG. 2 is a cross-sectional view of a second embodiment of the heat exchange catheter in which a coaxial portion allows the heat exchange catheter to be used as both an inlet and an outlet for heat exchange fluid.
  • FIG. 3 is a cross-sectional view of a third embodiment of the heat exchange catheter in which a coaxial portion provides for the introduction of an endoscope, the heat exchange catheter being utilized with a suprapubic suction tube.
  • FIG. 4 is a cross-sectional view of a fourth embodiment of the heat exchange catheter in which a double lumen tube assembly provides utilization of the device as both an inlet and an outlet for heat exchange fluid.
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • Referring now to the drawings and the characters of reference marked thereon, FIG. 1 illustrates a first preferred method of warming a urethra 10 of a patient 12 during ablative surgery in accordance with the principles of the present invention. In this method a suprapubic suction tube 14 is inserted into the bladder 16 of the patient 12. Ablative devices 18 are inserted into the prostate region 20 of the patient 12. An injection tube assembly, designated generally as 22, is inserted through the patient's urethra 10 and into the bladder 16. Warming fluid is delivered through the injection tube assembly 22 during operation of the ablative surgical devices 18. The warming fluid is delivered into the bladder 16. The suction tube 14 is operated to expel bladder fluid from the bladder 16 during the delivering of warming fluid through the injection tub assembly 22, the bladder fluid including the warming fluid. The urethra is warmed by the warming fluid to preserve living tissue thereof.
  • The ablative devices are preferably cryosurgical probes such as manufactured and marketed by Endocare, Inc., of Irvine, Calif. The figure shows use of six cryosurgical probes 18 as well as four temperature probes 19. Alternatively, other ablative devices may be used, for example, radio frequency electrodes, laser fibers, microwave catheters, high-intensity focused ultrasound. In such instances the heat exchange fluid is cool so as to prevent the urethra from the heating by the ablative elements.
  • In this first embodiment illustrated, the injection tube assembly includes a single tube assembly including an insertable injection tube 24, a connector 26 and a source tube 28. The tubes 24 and 28 are preferably formed of a flexible material such as various plastics, including, for example, polyethelene. The connector 26 is a suitable rigid material such as polycarbonate.
  • Although not shown the injection tube assembly 22 receives warming fluid from a pump and warmer, which are, in turn, connected to a reservoir.
  • Referring now to FIG. 2 another embodiment of a warming catheter, i.e. injection tube assembly, is illustrated, designated generally as 30, in which a first section of the injection tube assembly provides delivery of warming fluid and a second section expels bladder fluid. In this embodiment, the warming catheter includes a single tube inlet 32. A coaxial portion 34 includes an inner coaxial tube 36 and an outer coaxial tube 38. The outer coaxial tube 38 is in fluid communication with the inlet 32 and discharges warming fluid into the bladder. The inner coaxial tube 36 introduces bladder fluid from the bladder. An outlet 40 is preferably a single tube that is in fluid communication with the inner tube 36. A connector 42 connects the inlet 32, the coaxial portion 34 and the outlet 40.
  • During use, warming fluid is delivered through the inlet 32, through the outer coaxial tube 38, thus warming the urethra, discharged to the bladder, and mixed with bladder fluid. Bladder fluid is directed through the inner coaxial tube 36 and through the outlet 40. As with the previous embodiment this system is an open system, that is, the fluid from the warming catheter 30 is discharged freely into the bladder.
  • Referring now to FIG. 3, another embodiment of the present invention is illustrated, designated generally by 44, in which the injection tube assembly includes a co-axial portion; however, in this embodiment, this provides access for an endoscope. As in the previous embodiment the injection tube assembly 44 includes a warming fluid inlet comprising a single tube 46. A coaxial portion 48 includes an inner coaxial tube 50 and an outer coaxial tube 52. The outer coaxial tube 52 is in fluid communication with the inlet 46 and discharges warming fluid into the bladder. However, the inner coaxial tube 50 does not introduce bladder fluid from the bladder. Instead, it retains a distal portion of an endoscope 54. An endoscope inlet 54 is preferably a single tube that is in communication with the inner tube 50 so that the endoscope inlet contains a proximal portion of the endoscope and the inner coaxial tube retains a distal portion of the endoscope. A connector 56 connects the inlet 46, the coaxial portion 48 and the endoscope inlet 54.
  • During use, warming fluid is delivered through the inlet 46, through the outer coaxial tube 52, thus warming the urethra, discharged to the bladder, and mixed with bladder fluid. Bladder fluid is directed through a suprapubic suction tube. The inner coaxial tube 50 and the endoscope inlet 54 cooperate to provide access to an endoscope 58. As with the previous embodiments this system is an open system, that is, the fluid from the warming catheter 30 is discharged freely into the bladder.
  • Referring now to FIG. 4, another embodiment of the present invention is illustrated in which the injection tube assembly comprises a double lumen tube assembly, designated generally as 60. The double lumen tube assembly 60 includes a single tube inlet 62. A double lumen portion 64 includes a first fluid passageway 66 and a second fluid passageway 68. The first fluid passageway 62 is in fluid communication with the inlet 62 and discharges warming fluid into the bladder. The second fluid passageway 68 introduces bladder fluid from the bladder and directs it through a single tube outlet 70. A connector 72 is preferably used to connect the double lumen portion 64 with the inlet 62 and outlet 70.
  • Although the examples discussed above refer to the use of a warming fluid it is understood that if the ablative devices are for heating rather than for cooling, the heat exchange fluid would be a cooling fluid.
  • Thus, while the preferred embodiments of the devices and methods have been described in reference to the environment in which they were developed, they are merely illustrative of the principles of the invention. Other embodiments and configurations may be devised without departing from the spirit of the invention and the scope of the appended claims.

Claims (23)

1. (canceled)
2. (canceled)
3. (canceled)
4. (canceled)
5. (canceled)
6. A method for warming the urethra of a patient during ablative surgery, comprising the steps of:
a) inserting at least one ablative surgical device into a prostate region of the patient;
b) inserting an injection tube assembly through the patient's urethra and into the bladder;
c) delivering warming fluid through a first section of said injection tube assembly during operation of said at least one ablative surgical device, said warming fluid being delivered into the bladder; and,
f) operating a second section of said injection tube assembly to expel bladder fluid from the bladder during said delivering of warming fluid through said injection tube assembly, said bladder fluid including said warming fluid,
wherein said urethra is warmed by said warming fluid to preserve living tissue thereof.
7. The method of claim 6, wherein said step of inserting an injection tube assembly comprises inserting a co-axial tube assembly, said co-axial tube assembly comprising:
a) an inlet comprising a single tube;
b) a coaxial portion, comprising:
i) an inner coaxial tube; and
ii) an outer coaxial tube, said inner coaxial tube and outer coaxial tube being coaxial, said outer coaxial tube being in fluid communication with said inlet and for discharging said warming fluid into the bladder, said inner coaxial tube for introducing bladder fluid from said bladder;
c) an outlet comprising a single tube, said outlet being in fluid communication with said inner tube; and,
d) a connector for connecting said inlet, said coaxial portion and said outlet,
wherein during use, warming fluid is delivered through said inlet, through said outer coaxial tube thus warming said urethra, discharged to the bladder, and mixed with bladder fluid, and wherein bladder fluid is directed through said inner coaxial tube and through said outlet.
8. The method of claim 6, wherein said step of inserting an injection tube assembly comprises inserting a double lumen tube assembly, said double lumen tube assembly comprising:
a) an inlet comprising a single tube;
b) a double lumen portion, comprising:
i) a first fluid passageway; and
ii) a second fluid passageway,
said first fluid passageway being in fluid communication with said inlet and for discharging said warming fluid into the bladder, said second fluid passageway for introducing bladder fluid from said bladder;
c) an outlet comprising a single tube, said outlet being in communication with said second fluid passageway,
wherein during use, warming fluid is delivered through said inlet, through said first fluid passageway thus warming said urethra, discharged to the bladder, and mixed with bladder fluid, and wherein bladder fluid is directed through said second passageway and through said outlet.
9. A method for warming the urethra of a patient during ablative surgery, comprising the steps of:
a) inserting a suprapubic suction tube into the bladder of a patient;
b) inserting at least one ablative surgical device into a prostate region of the patient;
c) inserting an injection tube assembly through the patient's urethra and into the bladder, said injection tube assembly comprising:
i. a warming fluid inlet comprising a single tube;
ii. a coaxial portion comprising:
1. an inner coaxial tube; and
2. an outer coaxial tube, said inner coaxial tube and outer coaxial tube being coaxial,
said outer coaxial tube being in fluid communication with said warming fluid inlet and for discharging said warming fluid into the bladder, said inner coaxial tube for retaining a distal portion of an endoscope;
iii) an endoscope inlet comprising a single tube, said endoscope inlet for containing a proximal portion of an endoscope; and,
iv) a connector for connecting said warming fluid inlet, said coaxial portion and said endoscope inlet;
d) delivering warming fluid through said inlet of said injection tube assembly during operation of said at least one ablative surgical device, said warming fluid being delivered into the bladder; and,
e) operating said suction tube to expel bladder fluid from the bladder during said delivering of warming fluid through said injection tub assembly, said bladder fluid including said warming fluid,
wherein said urethra is warmed by said warming fluid to preserve living tissue thereof.
10. The method of claim 9, further comprising the step of inserting an endoscope into said endoscope inlet.
11. (canceled)
12. (canceled)
13. (canceled)
14. (canceled)
15. (canceled)
16. A method for cooling the urethra of a patient during ablative surgery, comprising the steps of:
a) inserting at least one ablative surgical device into a prostate region of the patient;
b) inserting an injection tube assembly through the patient's urethra and into the bladder;
c) delivering cooling fluid through a first section of said injection tube assembly during operation of said at least one ablative surgical device, said cooling fluid being delivered into the bladder; and,
d) operating a second section of said injection tube assembly to expel bladder fluid from the bladder during said delivering of cooling fluid through said injection tube assembly, said bladder fluid including said cooling fluid,
wherein said urethra is warmed by said cooling fluid to preserve living tissue thereof.
17. The method of claim 16, wherein said step of inserting an injection tube assembly comprises inserting a co-axial tube assembly, said co-axial tube assembly comprising:
a) an inlet comprising a single tube;
b) a coaxial portion comprising:
a. an inner coaxial tube; and
b. an outer coaxial tube, said inner coaxial tube and outer coaxial tube being coaxial, said outer coaxial tube being in fluid communication with said inlet and for discharging said cooling fluid into the bladder, said inner coaxial tube for introducing bladder fluid from said bladder;
c) an outlet comprising a single tube, said outlet being in fluid communication with said inner tube; and,
d) a connector for connecting said inlet, said coaxial portion and said outlet,
wherein during use, cooling fluid is delivered through said inlet, through said outer coaxial tube thus cooling said urethra, discharged to the bladder, and mixed with bladder fluid, and wherein bladder fluid is directed through said inner coaxial tube and through said outlet.
18. The method of claim 16, wherein said step of inserting an injection tube assembly comprises inserting a double lumen tube assembly, said double lumen tube assembly comprising:
a) an inlet comprising a single tube;
b) a double lumen portion, comprising:
i) a first fluid passageway; and
ii) a second fluid passageway,
said first fluid passageway being in fluid communication with said inlet and for discharging said cooling fluid into the bladder, said second fluid passageway for introducing bladder fluid from said bladder;
c) an outlet comprising a single tube, said outlet being in communication with said second fluid passageway,
wherein during use, cooling fluid is delivered through said inlet, through said first fluid passageway thus cooling said urethra, discharged to the bladder, and mixed with bladder fluid, and wherein bladder fluid is directed through said second passageway and through said outlet.
19. A method for cooling the urethra of a patient during ablative surgery, comprising the steps of:
a) inserting a suprapubic suction tube into the bladder of a patient;
b) inserting at least one ablative surgical device into a prostate region of the patient;
c) inserting an injection tube assembly through the patient's urethra and into the bladder, said injection tube assembly comprising:
i. a cooling fluid inlet comprising a single tube;
ii. a coaxial portion comprising:
1. an inner coaxial tube; and,
2. an outer coaxial tube, said inner coaxial tube and outer coaxial tube being coaxial,
said outer coaxial tube being in fluid communication with said cooling fluid inlet and for discharging said cooling fluid into the bladder, said inner coaxial tube for retaining a distal portion of an endoscope; and,
iii. an endoscope inlet comprising a single tube, said endoscope inlet for containing a proximal portion of an endoscope; and,
iii. a connector for connecting said cooling fluid inlet, said coaxial portion and said endoscope inlet;
d) delivering cooling fluid through said inlet of said injection tube assembly during operation of said at least one ablative surgical device, said cooling fluid being delivered into the bladder; and,
e) operating said suction tube to expel bladder fluid from the bladder during said delivering of cooling fluid through said injection tub assembly, said bladder fluid including said cooling fluid,
wherein said urethra is cooled by said cooling fluid to preserve living tissue thereof.
20. The method of claim 19, further comprising the step of inserting an endoscope into said endoscope inlet.
21. A heat exchange catheter for maintaining a suitable temperature of the urethra of a patient during ablative surgery, comprising:
an injection tube assembly, comprising:
a) an inlet comprising a single tube for providing the introduction of a heat exchange fluid;
b) a coaxial portion, comprising:
i) an inner coaxial tube; and
ii) an outer coaxial tube, said inner coaxial tube and outer coaxial tube being coaxial,
said outer coaxial tube being in fluid communication with said inlet and for discharging the heat exchange fluid into the bladder, said inner coaxial tube for introducing bladder fluid from said bladder;
c) an outlet comprising a single tube, said outlet being in fluid communication with said inner tube; and,
d) a connector for connecting said inlet, said coaxial portion and said outlet,
wherein during use, heat exchange fluid is delivered through said inlet, through said outer coaxial tube thus providing heat transfer with said urethra, discharged to the bladder, and mixed with bladder fluid, and wherein bladder fluid is directed through said inner coaxial tube and through said outlet.
22. A heat exchange catheter for maintaining a suitable temperature of the urethra of a patient during ablative surgery, comprising:
an injection tube assembly, comprising:
a) a heat exchange fluid inlet comprising a single tube;
b) a coaxial portion comprising:
a. an inner coaxial tube; and,
b. an outer coaxial tube, said inner coaxial tube and outer coaxial tube being coaxial, said outer coaxial tube being in fluid communication with said heat exchange fluid inlet and for discharging said heat exchange fluid into the bladder, said inner coaxial tube for retaining a distal portion of an endoscope;
c) an endoscope inlet comprising a single tube, said endoscope inlet for containing a proximal portion of an endoscope; and,
d) a connector for connecting said heat exchange fluid inlet, said coaxial portion and said endoscope inlet,
wherein during use, heat exchange fluid is delivered through said heat exchange fluid inlet, through said outer coaxial tube, and into the bladder.
23. A heat exchange catheter for maintaining a suitable temperature of the urethra of a patient during ablative surgery, comprising:
a double lumen tube assembly, comprising:
a) an inlet comprising a single tube;
b) a double lumen portion, comprising:
a first fluid passageway; and
a second fluid passageway,
said first fluid passageway being in fluid communication with said inlet and for discharging heat exchange fluid into the bladder, said second fluid passageway for introducing bladder fluid from said bladder;
c) an outlet comprising a single tube, said outlet being in communication with said second fluid passageway,
wherein during use, heat exchange fluid is delivered through said inlet, through said first fluid passageway thus providing heat transfer with said urethra, discharged to the bladder, and mixed with bladder fluid, and wherein bladder fluid is directed through said second passageway and through said outlet.
US11/231,263 2003-01-04 2005-09-20 Open system heat exchange catheters and methods of use Abandoned US20060015093A1 (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20100305557A1 (en) * 2009-06-02 2010-12-02 Chu Michael S H HTA Sheath with Removable Scope

Families Citing this family (96)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7892229B2 (en) 2003-01-18 2011-02-22 Tsunami Medtech, Llc Medical instruments and techniques for treating pulmonary disorders
US8016823B2 (en) 2003-01-18 2011-09-13 Tsunami Medtech, Llc Medical instrument and method of use
US6300108B1 (en) 1999-07-21 2001-10-09 The Regents Of The University Of California Controlled electroporation and mass transfer across cell membranes
US6795728B2 (en) 2001-08-17 2004-09-21 Minnesota Medical Physics, Llc Apparatus and method for reducing subcutaneous fat deposits by electroporation
US6892099B2 (en) 2001-02-08 2005-05-10 Minnesota Medical Physics, Llc Apparatus and method for reducing subcutaneous fat deposits, virtual face lift and body sculpturing by electroporation
US8251986B2 (en) 2000-08-17 2012-08-28 Angiodynamics, Inc. Method of destroying tissue cells by eletroporation
US6697670B2 (en) 2001-08-17 2004-02-24 Minnesota Medical Physics, Llc Apparatus and method for reducing subcutaneous fat deposits by electroporation with improved comfort of patients
US9433457B2 (en) 2000-12-09 2016-09-06 Tsunami Medtech, Llc Medical instruments and techniques for thermally-mediated therapies
US7549987B2 (en) 2000-12-09 2009-06-23 Tsunami Medtech, Llc Thermotherapy device
USRE42016E1 (en) 2001-08-13 2010-12-28 Angiodynamics, Inc. Apparatus and method for the treatment of benign prostatic hyperplasia
US6994706B2 (en) 2001-08-13 2006-02-07 Minnesota Medical Physics, Llc Apparatus and method for treatment of benign prostatic hyperplasia
US8444636B2 (en) 2001-12-07 2013-05-21 Tsunami Medtech, Llc Medical instrument and method of use
US20040215181A1 (en) * 2003-04-25 2004-10-28 Medtronic, Inc. Delivery of fluid during transurethral prostate treatment
US8298222B2 (en) 2003-12-24 2012-10-30 The Regents Of The University Of California Electroporation to deliver chemotherapeutics and enhance tumor regression
US8048067B2 (en) 2003-12-24 2011-11-01 The Regents Of The University Of California Tissue ablation with irreversible electroporation
US8287552B2 (en) * 2005-03-18 2012-10-16 Boston Scientific Scimed, Inc. Vacuum device for sealing an anatomical opening
US20060293730A1 (en) 2005-06-24 2006-12-28 Boris Rubinsky Methods and systems for treating restenosis sites using electroporation
US8114070B2 (en) 2005-06-24 2012-02-14 Angiodynamics, Inc. Methods and systems for treating BPH using electroporation
US20070032785A1 (en) 2005-08-03 2007-02-08 Jennifer Diederich Tissue evacuation device
US20090118724A1 (en) * 2005-10-05 2009-05-07 Roni Zvuloni Method and Apparatus for Positioning a Medical Instrument
US20080177360A1 (en) * 2007-01-24 2008-07-24 Willeford Kenneth L Patient warming system
US20070179491A1 (en) * 2006-01-31 2007-08-02 Medtronic, Inc. Sensing needle for ablation therapy
US8048069B2 (en) 2006-09-29 2011-11-01 Medtronic, Inc. User interface for ablation therapy
JP2010506657A (en) 2006-10-16 2010-03-04 ザ リージェンツ オブ ザ ユニバーシティ オブ カリフォルニア Gel with a certain conductivity used for irreversible electroporation of tissue
US8945114B2 (en) * 2007-04-26 2015-02-03 Medtronic, Inc. Fluid sensor for ablation therapy
US8814856B2 (en) * 2007-04-30 2014-08-26 Medtronic, Inc. Extension and retraction mechanism for a hand-held device
US20080275440A1 (en) * 2007-05-03 2008-11-06 Medtronic, Inc. Post-ablation verification of lesion size
US9186207B2 (en) * 2007-06-14 2015-11-17 Medtronic, Inc. Distal viewing window of a medical catheter
WO2009009398A1 (en) 2007-07-06 2009-01-15 Tsunami Medtech, Llc Medical system and method of use
EP2198797B1 (en) 2007-08-23 2011-04-13 Aegea Medical, Inc. Uterine therapy device
US9924992B2 (en) 2008-02-20 2018-03-27 Tsunami Medtech, Llc Medical system and method of use
WO2009121017A1 (en) 2008-03-27 2009-10-01 The Regents Of The University Of California Balloon catheter for reducing restenosis via irreversible electroporation
US8992517B2 (en) 2008-04-29 2015-03-31 Virginia Tech Intellectual Properties Inc. Irreversible electroporation to treat aberrant cell masses
US10448989B2 (en) 2009-04-09 2019-10-22 Virginia Tech Intellectual Properties, Inc. High-frequency electroporation for cancer therapy
US9867652B2 (en) 2008-04-29 2018-01-16 Virginia Tech Intellectual Properties, Inc. Irreversible electroporation using tissue vasculature to treat aberrant cell masses or create tissue scaffolds
US8926606B2 (en) 2009-04-09 2015-01-06 Virginia Tech Intellectual Properties, Inc. Integration of very short electric pulses for minimally to noninvasive electroporation
US9198733B2 (en) 2008-04-29 2015-12-01 Virginia Tech Intellectual Properties, Inc. Treatment planning for electroporation-based therapies
WO2009134876A1 (en) 2008-04-29 2009-11-05 Virginia Tech Intellectual Properties, Inc. Irreversible electroporation to create tissue scaffolds
US9283051B2 (en) 2008-04-29 2016-03-15 Virginia Tech Intellectual Properties, Inc. System and method for estimating a treatment volume for administering electrical-energy based therapies
US11272979B2 (en) 2008-04-29 2022-03-15 Virginia Tech Intellectual Properties, Inc. System and method for estimating tissue heating of a target ablation zone for electrical-energy based therapies
US10245098B2 (en) 2008-04-29 2019-04-02 Virginia Tech Intellectual Properties, Inc. Acute blood-brain barrier disruption using electrical energy based therapy
US11254926B2 (en) 2008-04-29 2022-02-22 Virginia Tech Intellectual Properties, Inc. Devices and methods for high frequency electroporation
US10117707B2 (en) 2008-04-29 2018-11-06 Virginia Tech Intellectual Properties, Inc. System and method for estimating tissue heating of a target ablation zone for electrical-energy based therapies
US10238447B2 (en) 2008-04-29 2019-03-26 Virginia Tech Intellectual Properties, Inc. System and method for ablating a tissue site by electroporation with real-time monitoring of treatment progress
US10272178B2 (en) 2008-04-29 2019-04-30 Virginia Tech Intellectual Properties Inc. Methods for blood-brain barrier disruption using electrical energy
US10702326B2 (en) 2011-07-15 2020-07-07 Virginia Tech Intellectual Properties, Inc. Device and method for electroporation based treatment of stenosis of a tubular body part
US20090281477A1 (en) 2008-05-09 2009-11-12 Angiodynamics, Inc. Electroporation device and method
US8721632B2 (en) 2008-09-09 2014-05-13 Tsunami Medtech, Llc Methods for delivering energy into a target tissue of a body
US8579888B2 (en) 2008-06-17 2013-11-12 Tsunami Medtech, Llc Medical probes for the treatment of blood vessels
US9173704B2 (en) 2008-06-20 2015-11-03 Angiodynamics, Inc. Device and method for the ablation of fibrin sheath formation on a venous catheter
WO2010008834A2 (en) 2008-06-23 2010-01-21 Angiodynamics, Inc. Treatment devices and methods
US9561066B2 (en) 2008-10-06 2017-02-07 Virender K. Sharma Method and apparatus for tissue ablation
EP2341859B1 (en) 2008-10-06 2017-04-05 Virender K. Sharma Apparatus for tissue ablation
US10695126B2 (en) 2008-10-06 2020-06-30 Santa Anna Tech Llc Catheter with a double balloon structure to generate and apply a heated ablative zone to tissue
US9561068B2 (en) 2008-10-06 2017-02-07 Virender K. Sharma Method and apparatus for tissue ablation
US10064697B2 (en) 2008-10-06 2018-09-04 Santa Anna Tech Llc Vapor based ablation system for treating various indications
WO2010085765A2 (en) 2009-01-23 2010-07-29 Moshe Meir H Therapeutic energy delivery device with rotational mechanism
US11284931B2 (en) 2009-02-03 2022-03-29 Tsunami Medtech, Llc Medical systems and methods for ablating and absorbing tissue
US8231603B2 (en) 2009-02-10 2012-07-31 Angiodynamics, Inc. Irreversible electroporation and tissue regeneration
US11638603B2 (en) 2009-04-09 2023-05-02 Virginia Tech Intellectual Properties, Inc. Selective modulation of intracellular effects of cells using pulsed electric fields
US11382681B2 (en) 2009-04-09 2022-07-12 Virginia Tech Intellectual Properties, Inc. Device and methods for delivery of high frequency electrical pulses for non-thermal ablation
USD630321S1 (en) 2009-05-08 2011-01-04 Angio Dynamics, Inc. Probe handle
US8903488B2 (en) 2009-05-28 2014-12-02 Angiodynamics, Inc. System and method for synchronizing energy delivery to the cardiac rhythm
US9895189B2 (en) 2009-06-19 2018-02-20 Angiodynamics, Inc. Methods of sterilization and treating infection using irreversible electroporation
US8900223B2 (en) 2009-11-06 2014-12-02 Tsunami Medtech, Llc Tissue ablation systems and methods of use
US20110118732A1 (en) 2009-11-19 2011-05-19 The Regents Of The University Of California Controlled irreversible electroporation
US9161801B2 (en) 2009-12-30 2015-10-20 Tsunami Medtech, Llc Medical system and method of use
US9943353B2 (en) 2013-03-15 2018-04-17 Tsunami Medtech, Llc Medical system and method of use
WO2012051433A2 (en) 2010-10-13 2012-04-19 Angiodynamics, Inc. System and method for electrically ablating tissue of a patient
WO2012064864A1 (en) 2010-11-09 2012-05-18 Aegea Medical Inc. Positioning method and apparatus for delivering vapor to the uterus
WO2012142219A1 (en) 2011-04-12 2012-10-18 Thermedical, Inc. Methods and devices for heating fluid in fluid enhanced ablation therapy
US9078665B2 (en) 2011-09-28 2015-07-14 Angiodynamics, Inc. Multiple treatment zone ablation probe
EP2763617B1 (en) 2011-10-07 2017-12-06 Aegea Medical Inc. Integrity testing apparatus for delivering vapor to the uterus
US9414881B2 (en) 2012-02-08 2016-08-16 Angiodynamics, Inc. System and method for increasing a target zone for electrical ablation
US10022176B2 (en) 2012-08-15 2018-07-17 Thermedical, Inc. Low profile fluid enhanced ablation therapy devices and methods
WO2014113724A2 (en) 2013-01-17 2014-07-24 Sharma Virender K Method and apparatus for tissue ablation
US9888956B2 (en) 2013-01-22 2018-02-13 Angiodynamics, Inc. Integrated pump and generator device and method of use
US9610396B2 (en) 2013-03-15 2017-04-04 Thermedical, Inc. Systems and methods for visualizing fluid enhanced ablation therapy
US9033972B2 (en) 2013-03-15 2015-05-19 Thermedical, Inc. Methods and devices for fluid enhanced microwave ablation therapy
US10166321B2 (en) 2014-01-09 2019-01-01 Angiodynamics, Inc. High-flow port and infusion needle systems
AU2015259303B2 (en) 2014-05-12 2021-10-28 Arena, Christopher B. Selective modulation of intracellular effects of cells using pulsed electric fields
EP3145426B1 (en) 2014-05-22 2023-03-22 Aegea Medical, Inc. Apparatus for delivering vapor to the uterus
US9993290B2 (en) 2014-05-22 2018-06-12 Aegea Medical Inc. Systems and methods for performing endometrial ablation
WO2016100325A1 (en) 2014-12-15 2016-06-23 Virginia Tech Intellectual Properties, Inc. Devices, systems, and methods for real-time monitoring of electrophysical effects during tissue treatment
US10660691B2 (en) 2015-10-07 2020-05-26 Angiodynamics, Inc. Multiple use subassembly with integrated fluid delivery system for use with single or dual-lumen peristaltic tubing
US11331037B2 (en) 2016-02-19 2022-05-17 Aegea Medical Inc. Methods and apparatus for determining the integrity of a bodily cavity
US11331140B2 (en) 2016-05-19 2022-05-17 Aqua Heart, Inc. Heated vapor ablation systems and methods for treating cardiac conditions
US9743984B1 (en) 2016-08-11 2017-08-29 Thermedical, Inc. Devices and methods for delivering fluid to tissue during ablation therapy
US10905492B2 (en) 2016-11-17 2021-02-02 Angiodynamics, Inc. Techniques for irreversible electroporation using a single-pole tine-style internal device communicating with an external surface electrode
US11607537B2 (en) 2017-12-05 2023-03-21 Virginia Tech Intellectual Properties, Inc. Method for treating neurological disorders, including tumors, with electroporation
US11311329B2 (en) 2018-03-13 2022-04-26 Virginia Tech Intellectual Properties, Inc. Treatment planning for immunotherapy based treatments using non-thermal ablation techniques
US11925405B2 (en) 2018-03-13 2024-03-12 Virginia Tech Intellectual Properties, Inc. Treatment planning system for immunotherapy enhancement via non-thermal ablation
US11083871B2 (en) 2018-05-03 2021-08-10 Thermedical, Inc. Selectively deployable catheter ablation devices
JP2021525598A (en) 2018-06-01 2021-09-27 サンタ アナ テック エルエルシーSanta Anna Tech Llc Multi-stage steam-based ablation processing method and steam generation and delivery system
US11918277B2 (en) 2018-07-16 2024-03-05 Thermedical, Inc. Inferred maximum temperature monitoring for irrigated ablation therapy
WO2023055551A1 (en) * 2021-09-29 2023-04-06 Spiral Therapeutics Inc. Endoscopic systems and methods for treating hearing loss

Citations (38)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1011606A (en) * 1910-03-05 1911-12-12 Jacob A Fulton Appliance for subjecting portions of the human system to heat or cold.
US3087493A (en) * 1960-04-27 1963-04-30 George W Schossow Endotracheal tube
US3261351A (en) * 1963-10-10 1966-07-19 American Cystoscope Makers Inc Endoscope
US3858586A (en) * 1971-03-11 1975-01-07 Martin Lessen Surgical method and electrode therefor
US3908637A (en) * 1974-04-22 1975-09-30 Louis W Doroshow Rigid urethral instrument
US4244377A (en) * 1978-10-19 1981-01-13 Grams Guenter A Ear probe for use in closed-loop caloric irrigation
US4726355A (en) * 1986-02-17 1988-02-23 Olympus Optical Co., Ltd. Curvable part device for endoscope devices
US4813429A (en) * 1986-05-12 1989-03-21 Biodan Medical Systems Ltd. Catheter and probe
US4822812A (en) * 1987-05-21 1989-04-18 Merrell Dow Pharmaceuticals Inc. β-(Fluoromethylene)-5-hydroxytryptophan and derivatives and their use as prodrugs for MAO inhibition
US4920961A (en) * 1988-06-02 1990-05-01 Circon Corporation System for disconnetably mounting an endoscope sheath with an endoscope tool
US5156142A (en) * 1988-11-18 1992-10-20 Effner Gmbh Endoscope
US5184602A (en) * 1988-11-18 1993-02-09 Effner Biomet Gmbh Endoscope, in particular an arthroscope
US5242390A (en) * 1991-05-03 1993-09-07 Goldrath Milton H Endometrium coagulating surgical method for thermal destruction of the endometrium
US5248312A (en) * 1992-06-01 1993-09-28 Sensor Electronics, Inc. Liquid metal-filled balloon
US5249585A (en) * 1988-07-28 1993-10-05 Bsd Medical Corporation Urethral inserted applicator for prostate hyperthermia
US5257977A (en) * 1990-03-22 1993-11-02 Argomed Ltd. Technique for localized thermal treatment of mammals
US5313934A (en) * 1992-09-10 1994-05-24 Deumed Group Inc. Lens cleaning means for invasive viewing medical instruments
US5437673A (en) * 1993-02-04 1995-08-01 Cryomedical Sciences, Inc. Closed circulation tissue warming apparatus and method of using the same in prostate surgery
US5456680A (en) * 1993-09-14 1995-10-10 Spectranetics Corp Fiber optic catheter with shortened guide wire lumen
US5460628A (en) * 1991-01-28 1995-10-24 Neuwirth; Robert S. Heated balloon medical apparatus with fluid agitating means
US5480417A (en) * 1988-11-21 1996-01-02 Technomed Medical Systems Method and apparatus for the surgical treatment of tissues by thermal effect, and in particular the prostate, using a urethral microwave-emitting probe means
US5501227A (en) * 1986-04-15 1996-03-26 Yock; Paul G. Angioplasty apparatus facilitating rapid exchange and method
US5549559A (en) * 1990-03-22 1996-08-27 Argomed Ltd. Thermal treatment apparatus
US5575756A (en) * 1993-08-16 1996-11-19 Olympus Optical Co., Ltd. Endoscope apparatus
US5624392A (en) * 1990-05-11 1997-04-29 Saab; Mark A. Heat transfer catheters and methods of making and using same
US5637075A (en) * 1994-04-25 1997-06-10 Hamamatsu Ent Surgicenter Apparatus for observing inside of body cavity
US5697888A (en) * 1994-04-21 1997-12-16 Olympus Optical Co., Ltd. Endoscope apparatus having valve device for supplying water and gas
US5735792A (en) * 1992-11-25 1998-04-07 Clarus Medical Systems, Inc. Surgical instrument including viewing optics and an atraumatic probe
US5772659A (en) * 1995-09-26 1998-06-30 Valleylab Inc. Electrosurgical generator power control circuit and method
US5827269A (en) * 1996-12-31 1998-10-27 Gynecare, Inc. Heated balloon having a reciprocating fluid agitator
US5843144A (en) * 1995-06-26 1998-12-01 Urologix, Inc. Method for treating benign prostatic hyperplasia with thermal therapy
US5925040A (en) * 1997-06-18 1999-07-20 Medical Scientific, Inc. Electrosurgical instrument having a segmented roller electrode
US6017361A (en) * 1997-03-13 2000-01-25 Endo Care, Inc. Urethral warming catheter
US6033399A (en) * 1997-04-09 2000-03-07 Valleylab, Inc. Electrosurgical generator with adaptive power control
US6067475A (en) * 1998-11-05 2000-05-23 Urologix, Inc. Microwave energy delivery system including high performance dual directional coupler for precisely measuring forward and reverse microwave power during thermal therapy
US6414281B1 (en) * 1999-07-30 2002-07-02 Watlow Electric Manufacturing Company Hot-toe multicell electric heater
US6767346B2 (en) * 2001-09-20 2004-07-27 Endocare, Inc. Cryosurgical probe with bellows shaft
US6936045B2 (en) * 2001-09-20 2005-08-30 Endocare, Inc. Malleable cryosurgical probe

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3752158A (en) * 1970-11-23 1973-08-14 Snyder Manuf Co Inc Apparatus and method for suprapubic drainage of the urinary bladder
IL78755A0 (en) 1986-05-12 1986-08-31 Biodan Medical Systems Ltd Applicator for insertion into a body opening for medical purposes
US5647868A (en) * 1994-02-02 1997-07-15 Chinn; Douglas Owen Cryosurgical integrated control and monitoring system and method

Patent Citations (38)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1011606A (en) * 1910-03-05 1911-12-12 Jacob A Fulton Appliance for subjecting portions of the human system to heat or cold.
US3087493A (en) * 1960-04-27 1963-04-30 George W Schossow Endotracheal tube
US3261351A (en) * 1963-10-10 1966-07-19 American Cystoscope Makers Inc Endoscope
US3858586A (en) * 1971-03-11 1975-01-07 Martin Lessen Surgical method and electrode therefor
US3908637A (en) * 1974-04-22 1975-09-30 Louis W Doroshow Rigid urethral instrument
US4244377A (en) * 1978-10-19 1981-01-13 Grams Guenter A Ear probe for use in closed-loop caloric irrigation
US4726355A (en) * 1986-02-17 1988-02-23 Olympus Optical Co., Ltd. Curvable part device for endoscope devices
US5501227A (en) * 1986-04-15 1996-03-26 Yock; Paul G. Angioplasty apparatus facilitating rapid exchange and method
US4813429A (en) * 1986-05-12 1989-03-21 Biodan Medical Systems Ltd. Catheter and probe
US4822812A (en) * 1987-05-21 1989-04-18 Merrell Dow Pharmaceuticals Inc. β-(Fluoromethylene)-5-hydroxytryptophan and derivatives and their use as prodrugs for MAO inhibition
US4920961A (en) * 1988-06-02 1990-05-01 Circon Corporation System for disconnetably mounting an endoscope sheath with an endoscope tool
US5249585A (en) * 1988-07-28 1993-10-05 Bsd Medical Corporation Urethral inserted applicator for prostate hyperthermia
US5156142A (en) * 1988-11-18 1992-10-20 Effner Gmbh Endoscope
US5184602A (en) * 1988-11-18 1993-02-09 Effner Biomet Gmbh Endoscope, in particular an arthroscope
US5480417A (en) * 1988-11-21 1996-01-02 Technomed Medical Systems Method and apparatus for the surgical treatment of tissues by thermal effect, and in particular the prostate, using a urethral microwave-emitting probe means
US5257977A (en) * 1990-03-22 1993-11-02 Argomed Ltd. Technique for localized thermal treatment of mammals
US5549559A (en) * 1990-03-22 1996-08-27 Argomed Ltd. Thermal treatment apparatus
US5624392A (en) * 1990-05-11 1997-04-29 Saab; Mark A. Heat transfer catheters and methods of making and using same
US5460628A (en) * 1991-01-28 1995-10-24 Neuwirth; Robert S. Heated balloon medical apparatus with fluid agitating means
US5242390A (en) * 1991-05-03 1993-09-07 Goldrath Milton H Endometrium coagulating surgical method for thermal destruction of the endometrium
US5248312A (en) * 1992-06-01 1993-09-28 Sensor Electronics, Inc. Liquid metal-filled balloon
US5313934A (en) * 1992-09-10 1994-05-24 Deumed Group Inc. Lens cleaning means for invasive viewing medical instruments
US5735792A (en) * 1992-11-25 1998-04-07 Clarus Medical Systems, Inc. Surgical instrument including viewing optics and an atraumatic probe
US5437673A (en) * 1993-02-04 1995-08-01 Cryomedical Sciences, Inc. Closed circulation tissue warming apparatus and method of using the same in prostate surgery
US5575756A (en) * 1993-08-16 1996-11-19 Olympus Optical Co., Ltd. Endoscope apparatus
US5456680A (en) * 1993-09-14 1995-10-10 Spectranetics Corp Fiber optic catheter with shortened guide wire lumen
US5697888A (en) * 1994-04-21 1997-12-16 Olympus Optical Co., Ltd. Endoscope apparatus having valve device for supplying water and gas
US5637075A (en) * 1994-04-25 1997-06-10 Hamamatsu Ent Surgicenter Apparatus for observing inside of body cavity
US5843144A (en) * 1995-06-26 1998-12-01 Urologix, Inc. Method for treating benign prostatic hyperplasia with thermal therapy
US5772659A (en) * 1995-09-26 1998-06-30 Valleylab Inc. Electrosurgical generator power control circuit and method
US5827269A (en) * 1996-12-31 1998-10-27 Gynecare, Inc. Heated balloon having a reciprocating fluid agitator
US6017361A (en) * 1997-03-13 2000-01-25 Endo Care, Inc. Urethral warming catheter
US6033399A (en) * 1997-04-09 2000-03-07 Valleylab, Inc. Electrosurgical generator with adaptive power control
US5925040A (en) * 1997-06-18 1999-07-20 Medical Scientific, Inc. Electrosurgical instrument having a segmented roller electrode
US6067475A (en) * 1998-11-05 2000-05-23 Urologix, Inc. Microwave energy delivery system including high performance dual directional coupler for precisely measuring forward and reverse microwave power during thermal therapy
US6414281B1 (en) * 1999-07-30 2002-07-02 Watlow Electric Manufacturing Company Hot-toe multicell electric heater
US6767346B2 (en) * 2001-09-20 2004-07-27 Endocare, Inc. Cryosurgical probe with bellows shaft
US6936045B2 (en) * 2001-09-20 2005-08-30 Endocare, Inc. Malleable cryosurgical probe

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20100305557A1 (en) * 2009-06-02 2010-12-02 Chu Michael S H HTA Sheath with Removable Scope

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