EP0964652A1

Devices, methods and systems for shrinking tissues

Abstract

Devices, systems, and method for treating urinary incontinence generally relying on energy delivered to a patient's pelvic support tissue to selectively contract or shrink at least a portion of that pelvic support tissue so as to reposition the bladder. The energy will preferably be applied to the endopelvic fascia and/or an arcus tendineus fascia pelvis. A variety of devices and methods are provided for applying gentle resistive heating of these and other tissues to cause them to contract without imposing significant injury on the surrounding tissue structures. By applying sufficient energy over a predetermined time, the tissue can be raised to a temperature which results in contraction without significant necrosis or other tissue damage. By selectively contracting the support tissues, the bladder neck, sphincter, and other components of the urinary tract responsible for the control of urinary flow can be reconfigured or supported in a manner which reduces urinary leakage.

Term

Term ended

Projected expiry passed 5 November 2017, 8.9 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

9 claims: 3 independent, 6 dependent

  1. 1
    Claims of equivalent WO 9819613 A1 WHAT IS CLAIMED IS ; 1 1 . A probe for heating and contracting fascia , the 2 probe comprising :3 a shaft having a proximal end and a distal end;4 first and second electrodes disposed near the distal 5 end of the shaft, the first and second electrodes 6 simultaneously engageable against the fascia, the first and 7 second electrodes being separated by a predetermined distance 8 which limits a depth of tissue heating;and 1 a handle adjacent the proximal end of the shaft for .0 manipulating the electrodes. 1 2. A probe as claimed in claim 1, further 2 comprising a battery mounted to the handle and circuitry 3 coupled to the battery for energizing the electrodes with RF 4 energy to heat the fascia. 1 3. A probe as claimed in claim 1, further 2 comprising a sensor disposed between the electrodes to measure 3 a temperature of the fascia, and a control system coupled to 4 the electrodes and the sensor to limit the temperature of the 5 heated fascia below about 110 °C. 1 4. A probe as claimed in claim 1, wherein an 2 electrode surface diameter is between about 0.25 and 4 mm, and 3 wherein the separation distance is between about 1 and 4 times 4 the electrode surface diameter. 1 5. A probe as claimed in claim 4, wherein the 2 first and second electrodes are adapted for sweeping over the 3 fascia simultaneously. 1 6. A probe as claimed in claim 5, wherein at least 2 one of the first and second electrodes comprises a rollable 3 element. 1 7. A least invasive probe for heating and 2 contracting fascia of a patient body, the fascia being 3 adjacent to a tissue layer, the probe comprising: 4 a shaft having a proximal end and a distal end and 5 defining an axis therebetween;6 an electrode disposed near the distal end of the 7 shaft, the electrode laterally deployable from a narrow 8 configuration to a wide configuration between the fascia and 9 the adjacent tissue layer, the electrode in the wide 0 configuration exposed to engage the fascia, the electrode in 1 the narrow configuration being disposed along the axis of the shaft to facilitate axial insertion and withdrawal of the probe;and a handle adjacent the proximal end of the shaft for manipulating the electrode from outside the patient body. 8. A least invasive probe as claimed in claim 7, further comprising a deployable structure mounted to the shaft, the deployable structure defining a substantially flat major surface when the electrode is in the wide configuration, the deployable structure supporting the electrode on the major ' surface . 9. A least invasive probe as claimed in claim 8, wherein the deployable structure extends eccentrically from the shaft to help orient the electrode toward the fascia. 10. A least invasive probe as claimed in claim 8, wherein the deployable structure comprises a balloon. 11. A least invasive probe as claimed in claim 7, further comprising an asymmetric structure attached to the shaft to indicate an orientation of the deployed electrode from outside the patient body. 12. A least invasive probe as claimed in claim 7, further comprising first and second electrodes, each electrode mounted along an elongate flexible member, and a mechanism for deflecting the flexible members laterally from outside the patient body. 13. A probe for heating and contracting a target tissue of a patient body, the probe comprising: a shaft having a proximal end and a distal end;at least one electrode disposed near the distal end of the shaft;a handle adjacent a proximal end of the shaft to manipulate the at least one electrode from outside the patient body, the handle supporting a battery and circuitry which can energize the at least one electrode with RF power for heating and contracting the target tissue without substantially ablating the target tissue. 1 . A probe as claimed in claim 13 , further comprising a temperature sensor disposed near the distal end of the shaft to monitor a temperature of the target tissue. 15. A probe as claimed in claim 14, wherein the temperature sensor and the electrode are coupled to a circuit which controls RF power supplied to the electrode by the battery pack. 16. A probe as claimed in claim 15, wherein the temperature sensor is mounted between two bipolar electrodes of the probe. 17. A probe as claimed in claim 13, further comprising two bipolar electrodes having surface diameters of between about 0.25 and 1.0 mm, the electrodes separated by between about 0.25 and 4.0 mm. 18. A probe for shrinking collagenated tissue of a patient body, the probe comprising: a shaft having a proximal end and a distal end;a grasper disposed near the distal end of the shaft, the grasper adapted to draw a region of the tissue inward so as to reduce tension within the region;and an energy applying member disposed adjacent to the grasper, the energy applying member capable of heating the drawn tissue so that the drawn tissue contracts without ablating the tissue. 19. A probe as claimed in claim 18, wherein the grasper comprises first and second arms, the arms having arm ends which are engageable against a surface of the tissue, the arms articulatable relative to each other to draw the region of tissue inward.
  2. 3
    30. A method to treat urinary stress incontinence, the method comprising:introducing a probe into a patient body;aligning the probe with a pelvic support tissue within the patient body;and energizing the probe to heat and contract a portion of the pelvic support tissue. 31. A method as claimed in claim 30, further comprising engaging first and second electrodes against the pelvic support tissue and applying an electrical potential across the first and second electrodes to heat a portion of the pelvic support tissue disposed therebetween so at to reposition a bladder or bladder neck within the patient body. 32. A method as claimed in claim 31, further comprising monitoring a temperature of the heated tissue with a temperature sensor of the probe, the sensor being in thermal contact with the heated tissue. 33. A method as claimed in claim 31, wherein the first and second electrodes engage the pelvic support tissue with a predetermined electrode surface diameter and spacing between the electrodes to limit a tissue heating depth. 34. A method as claimed in claim 33, wherein the depth of tissue heating is less than about 2.0 mm, a surface diameter of the electrodes being between about 0.25 and 4.0 mm, the spacing between the first and second electrodes being between about 1 and 4 times the electrode surface diameter. 35. A method as claimed in claim 31, further comprising sweeping the first and second electrodes across the pelvic support tissue while applying the electrical potential to heat a band of the pelvic support tissue substantially bordered by swept paths of the first and second electrodes. 36. A method as claimed in claim 35, further comprising repeatedly sweeping the first and second electrodes across the pelvic support tissue, wherein each sweep of the electrodes heats a band of the pelvic support tissue and raises the bladder by an amount within a predetermined range . 37. A method as claimed in claim 30, wherein the electrical potential has a frequency of between about 100 and 1,000 KHz and an amplitude of between about 20 and 200 volts rms . 38. A method as claimed in claim 37, wherein the pelvic support tissue reaches a maximum temperature of between about 60°C and 80°C for a time between about 0.5 and 5.0 seconds . 39. A method as claimed in claim 30, further comprising monitoring a temperature of the pelvic support tissue while heating.
  3. 6
    60. A method to treat a hyperextending collagenated support tissue of a patient body, the method comprising:grasping a region of the hyperextending tissue and drawing the hyperextending tissue inward so as to decrease tension in the region;and heating at least a portion of the drawn region so that the region shrinks, wherein the region is heated without substantially ablating the hyperextending tissue. 61. A method for contracting a target tissue of a patient body, the method comprising: engaging at least one electrode of a probe against the target tissue, the probe having a battery;converting energy from the battery to RF potential;and energizing the electrode with the RF potential to heat and contract the target tissue. 62. A method as claimed in claim 61, further comprising sensing a temperature of the target tissue ε.nd controlling electrical power provided to the electrode by the battery to avoid ablating the target tissue. 63. A method as claimed in claim 61, further comprising manipulating the electrode with a proximal housing of the probe, the battery and RF conversion circuitry being disposed within the proximal housing. 64. A kit for shrinking a target collagenated tissue within a patient body, the target tissue having a tissue depth, the kit comprising: a probe comprising: a shaft having a proximal end and a distal end;first and second electrodes disposed near the distal end of the shaft, the electrodes defining a separation distance therebetween;and instructions for operating the probe, the instructions including the steps of: electrically coupling the first and second electrodes with the target tissue;and heating and contracting the target tissue without ablating the target tissue by directing an electrical current flux through the target tissue between the electrodes so that the separation distance substantially limits heating beyond the target tissue depth. 65. A kit for treating urinary stress incontinence of a patient having a loose pelvic support structure, the kit comprising: a probe having a heating element;and instructions for operating the probe, the instructions including the steps of: coupling the heating element to the pelvic support structure;and applying an amount of energy with the heating element to the pelvic support structure, wherein the energy is sufficient co cause shrinkage of the pelvic support structure and the shrinkage inhibits urinary incontinence. 66. A kit for treating a hernia, the hernia comprising a structure which protrudes through a collagenated containing tissue, the kit comprising: a probe having a heating element;and instructions for operating the probe, the instructions including the steps of: coupling the probe to the containing tissue;and applying an amount of energy from the probe to the containing tissue which is sufficient to heat the containing tissue so that the containing tissue shrinks to mitigate the hernia. 67. A method for treating urinary incontinence in a patient, said method comprising applying an amount of energy to a tissue structure comprising or supporting the patient's urethra wherein the amount of energy is sufficient to cause partial shrinkage of the tissue and the tissue shrinkage inhibits urinary incontinence. 68. A method as in claim 67, wherein the tissue structure is selected from the group consisting of a region of the urethral wall, the bladder, the bladder neck, the urethra bladder suspension ligaments, the sphincter, pelvic ligaments, pelvic floor muscles, and fascia. 69. A method as in claim 68, wherein the energy is applied to the urethral wall at a single location aligned with the urethral sling. 70. A method as in claim 68, wherein the energy is applied to the urethral wall at at least two sites including a first site upstream of the urethral sling and a second site downstream of the urethral sling.