Claims
- 1. A method for advancing one or more devices into a left ventricle of a heart to contact a mitral valve annulus, the method comprising:
advancing a steerable guide catheter into the left ventricle and around at least a portion of the mitral valve annulus; passing a guide sheath over the steerable guide catheter; withdrawing the steerable guide catheter out of the guide sheath; and advancing one or more devices through the guide sheath to contact the mitral valve annulus.
- 2. A method as in claim 1, wherein the steerable guide catheter is advanced through an aorta into a space in the left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 3. A method as in claim 2, further comprising deforming a flexible distal portion of the steerable guide catheter to conform the distal portion to the mitral valve annulus.
- 4. A method as in claim 3, wherein deforming the flexible distal portion comprises applying tension to at least one tensioning member to cause at least one bend in the distal portion.
- 5. A method as in claim 4, further comprising, before advancing the steerable guide catheter, advancing a shaped guide catheter through the aorta to a position within or adjacent the space in the left ventricle, wherein the steerable guide catheter is advanced through the shaped guide catheter.
- 6. A method as in claim 5, wherein deforming the flexible distal portion further comprises passing the distal portion through at least one bend in the shaped guide catheter.
- 7. A method as in claim 6, wherein passing the distal portion through the at least one bend in the shaped guide catheter comprises:
passing the portion through a first bend to direct it approximately into a plane with a plane of the mitral valve annulus; and passing the portion through a second bend approximately perpendicular to the first bend and having a radius of curvature approximately the same as a radius of curvature of the mitral valve annulus.
- 8. A method as in claim 7, wherein applying tension to the at least one tensioning member causes the flexible distal portion to continue to bend in an arc with a radius of curvature approximately the same as the radius of curvature of the mitral valve annulus.
- 9. A method as in claim 4, wherein tension is applied to two tensioning members to articulate the flexible distal portion in at least two directions.
- 10. A method as in claim 3, wherein deforming the flexible distal portion comprises expanding a shaped expandable member to deform the distal portion.
- 11. A method as in claim 3, wherein deforming the flexible distal portion comprises introducing a fluid into a lumen of the distal portion.
- 12. A method as in claim 3, wherein deforming the flexible distal portion comprises releasing a shape-memory material from constraint.
- 13. A method as in claim 3, wherein deforming the flexible distal portion comprises articulating the distal portion in at least two directions.
- 14. A method as in claim 3, further comprising locking the shape of the flexible distal portion.
- 15. A method as in claim 3, further comprising urging the steerable guide catheter against the mitral valve annulus.
- 16. A method as in claim 15, wherein urging the steerable guide catheter comprises expanding an expandable member coupled with the steerable guide catheter within a space in the left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 17. A method as in claim 15, wherein urging the steerable guide catheter comprises applying an attractive magnetic force between a first magnetic member coupled with the steerable guide catheter and a second magnetic member disposed within a coronary sinus of the heart.
- 18. A method as in claim 1, further comprising urging the guide sheath against the mitral valve annulus.
- 19. A method as in claim 18, wherein urging the guide sheath comprises expanding an expandable member coupled with the guide sheath within a space in the left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 20. A method as in claim 18, wherein urging the guide sheath comprises applying an attractive magnetic force between a first magnetic member coupled with the guide sheath and a second magnetic member disposed within a coronary sinus of the heart.
- 21. A method as in claim 1, wherein a delivery device is advanced through the guide sheath for contacting and delivering a therapy to the mitral valve annulus.
- 22. A method as in claim 21, wherein the delivery device comprises a device for delivering coupled anchors to the mitral valve annulus, the method further comprising:
delivering a plurality of coupled anchors from the anchor delivery device to secure the anchors to the mitral valve annulus; and drawing the anchors together to circumferentially tighten the annulus.
- 23. A method as in claim 22, further comprising expanding an expandable member coupled with the anchor delivery device to urge the delivery device against the length of valve annulus.
- 24. A method as in claim 22, further comprising applying an attractive magnetic force between a first magnetic member coupled with the delivery device and a second magnetic member disposed within a coronary sinus of the heart to urge the delivery device against the length of valve annulus.
- 25. A method as in claim 22, wherein the anchors are delivered from the anchor delivery device through a distal portion of the guide sheath to attach the distal portion to the mitral valve annulus, wherein the distal portion of the guide sheath is detachable from a proximal portion of the guide sheath to remain attached to the annulus.
- 26. A method as in claim 25, further comprising cinching the attached distal portion of the guide sheath to circumferentially tighten the valve annulus.
- 27. A method as in claim 22, wherein the anchors are delivered from the anchor delivery device through a detachable, biocompatible strip coupled with the anchor delivery device to attach the strip to the mitral valve annulus.
- 28. A method as in claim 27, further comprising cinching the attached strip to circumferentially tighten the valve annulus.
- 29. A method as in claim 22, further comprising:
contacting a stabilizing member with the valve annulus on a side of the valve opposite the anchor delivery device; and applying force to the stabilizing member to immobilize the annulus between the stabilizing member and the anchor delivery device to facilitate delivery of the anchors.
- 30. A method as in claim 22, further comprising stabilizing the annulus with the anchor delivery device prior to delivering the anchors.
- 31. A method as in claim 30, wherein stabilizing the annulus with the anchor delivery device comprises expanding an expandable member coupled with the anchor delivery device to move the delivery device into enhanced contact with the valve annulus and stabilize the annulus.
- 32. A method as in claim 22, wherein the delivering and drawing steps cause a first length of the valve annulus to be tightened, the method further comprising:
contacting the anchor delivery device with a second length of the valve annulus; delivering a plurality of coupled anchors from the anchor delivery device to secure the anchors to the second length of the annulus; and drawing the anchors together to circumferentially tighten the second length of the annulus.
- 33. A method as in claim 21, further comprising delivering energy from the delivery device to tighten the valve annulus.
- 34. A method as in claim 33, wherein delivering energy comprises delivering a form of energy selected from the group consisting of radio frequency, ultrasound, microwave and laser energy.
- 35. A method as in claim 21, further comprising delivering at least one pharmacological agent from the delivery device to tighten the valve annulus.
- 36. A method as in claim 1, wherein a visualization device is advanced through the guide sheath for enhancing visualization of the mitral valve annulus.
- 37. A method as in claim 36, wherein the visualization device is selected from the group consisting of an ultrasound device, a camera, an endoscope and a fiber optic device.
- 38. A method as in claim 1, wherein all steps are performed while the heart is beating.
- 39. A method for advancing one or more devices into a left ventricle of a heart to contact a mitral valve annulus, the method comprising:
advancing a shaped guide catheter through an aorta into the left ventricle; passing a steerable guide catheter through the shaped guide catheter and around at least a portion of the length of the mitral valve annulus; passing a guide sheath over the steerable guide catheter, within the shaped guide catheter; withdrawing the steerable guide catheter out of the guide sheath; and advancing one or more devices through the guide sheath to contact the mitral valve annulus.
- 40. A method as in claim 39, wherein the steerable guide catheter is advanced into a space in the left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 41. A method as in claim 39, further comprising deforming a flexible distal portion of the steerable guide catheter to conform the distal portion to the mitral valve annulus.
- 42. A method as in claim 41, wherein deforming the flexible distal portion comprises applying tension to at least one tensioning member to cause at least one bend in the distal portion.
- 43. A method as in claim 42, wherein deforming the flexible distal portion further comprises passing the distal portion through at least one bend in the shaped guide catheter.
- 44. A method as in claim 43, wherein passing the distal portion through the at least one bend in the shaped guide catheter comprises:
passing the portion through a first bend to direct it approximately into a plane with a plane of the mitral valve annulus; and passing the portion through a second bend approximately perpendicular to the first bend and having a radius of curvature approximately the same as a radius of curvature of the mitral valve annulus.
- 45. A method as in claim 44, wherein applying tension to the at least one tensioning member causes the flexible distal portion to continue to bend in an arc with a radius of curvature approximately the same as the radius of curvature of the mitral valve annulus.
- 46. A method as in claim 42, wherein tension is applied to two tensioning members to articulate the flexible distal portion in at least two directions.
- 47. A method as in claim 41, wherein deforming the flexible distal portion comprises expanding a shaped expandable member to deform the distal portion.
- 48. A method as in claim 41, wherein deforming the flexible distal portion comprises introducing a fluid into a lumen of the distal portion.
- 49. A method as in claim 41, wherein deforming the flexible distal portion comprises releasing a shape-memory material from constraint.
- 50. A method as in claim 41, wherein deforming the flexible distal portion comprises articulating the distal portion in at least two directions.
- 51. A method as in claim 41, further comprising locking the shape of the flexible distal portion.
- 52. A method as in claim 41, further comprising urging the steerable guide catheter against the mitral valve annulus.
- 53. A method as in claim 52, wherein urging the steerable guide catheter comprises expanding an expandable member coupled with the steerable guide catheter within a space in the left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 54. A method as in claim 52, wherein urging the steerable guide catheter comprises applying an attractive magnetic force between a first magnetic member coupled with the steerable guide catheter and a second magnetic member disposed within a coronary sinus of the heart.
- 55. A method as in claim 39, further comprising urging the guide sheath against the mitral valve annulus.
- 56. A method as in claim 55, wherein urging the guide sheath comprises expanding an expandable member coupled with the guide sheath within a space in the left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 57. A method as in claim 55, wherein urging the guide sheath comprises applying an attractive magnetic force between a first magnetic member coupled with the guide sheath and a second magnetic member disposed within a coronary sinus of the heart.
- 58. A method as in claim 39, wherein a delivery device is advanced through the guide sheath for contacting and delivering a therapy to the mitral valve annulus.
- 59. A method as in claim 58, wherein the delivery device comprises a device for delivering coupled anchors to the mitral valve annulus, the method further comprising:
delivering a plurality of coupled anchors from the anchor delivery device to secure the anchors to the mitral valve annulus; and drawing the anchors together to circumferentially tighten the annulus.
- 60. A method as in claim 59, further comprising expanding an expandable member coupled with the anchor delivery device to urge the delivery device against the length of valve annulus.
- 61. A method as in claim 59, further comprising applying an attractive magnetic force between a first magnetic member coupled with the delivery device and a second magnetic member disposed within a coronary sinus of the heart to urge the delivery device against the length of valve annulus.
- 62. A method as in claim 59, wherein the anchors are delivered from the anchor delivery device through a distal portion of the guide sheath to attach the distal portion to the mitral valve annulus, wherein the distal portion of the guide sheath is detachable from a proximal portion of the guide sheath to remain attached to the annulus.
- 63. A method as in claim 62, further comprising cinching the attached distal portion of the guide sheath to circumferentially tighten the valve annulus.
- 64. A method as in claim 59, wherein the anchors are delivered from the anchor delivery device through a detachable, biocompatible strip coupled with the anchor delivery device to attach the strip to the mitral valve annulus.
- 65. A method as in claim 64, further comprising cinching the attached strip to circumferentially tighten the valve annulus.
- 66. A method as in claim 59, further comprising:
contacting a stabilizing member with the valve annulus on a side of the valve opposite the anchor delivery device; and applying force to the stabilizing member to immobilize the annulus between the stabilizing member and the anchor delivery device to facilitate delivery of the anchors.
- 67. A method as in claim 59, further comprising stabilizing the annulus with the anchor delivery device prior to delivering the anchors.
- 68. A method as in claim 59, wherein the delivering and drawing steps cause a first length of the valve annulus to be tightened, the method further comprising:
contacting the anchor delivery device with a second length of the valve annulus; delivering a plurality of coupled anchors from the anchor delivery device to secure the anchors to the second length of the annulus; and drawing the anchors together to circumferentially tighten the second length of the annulus.
- 69. A method as in claim 58, further comprising delivering energy from the delivery device to tighten the valve annulus.
- 70. A method as in claim 69, wherein delivering energy comprises delivering a form of energy selected from the group consisting of radio frequency, ultrasound, microwave and laser energy.
- 71. A method as in claim 58, further comprising delivering at least one pharmacological agent from the delivery device to tighten the valve annulus.
- 72. A method as in claim 39, wherein a visualization device is advanced through the guide sheath for enhancing visualization of the mitral valve annulus.
- 73. A method as in claim 72, wherein the visualization device is selected from the group consisting of an ultrasound device, a camera, an endoscope and a fiber optic device.
- 74. A method as in claim 39, wherein all steps are performed while the heart is beating.
- 75. A method for treating a mitral valve annulus of a heart, the method comprising:
advancing a steerable guide catheter into a left ventricle of the heart and around at least a portion of the mitral valve annulus; passing a guide sheath over the steerable guide catheter; withdrawing the steerable guide catheter out of the guide sheath; advancing an anchor delivery device through the guide sheath to contact the mitral valve annulus; delivering a plurality of coupled anchors from the anchor delivery device to secure the anchors to the mitral valve annulus; and drawing the anchors together to circumferentially tighten the annulus.
- 76. A method as in claim 75, further comprising, before advancing the steerable guide catheter, advancing a shaped guide catheter through the aorta to a position within or adjacent the space in the left ventricle, wherein the steerable guide catheter is advanced through the shaped guide catheter.
- 77. A device for facilitating placement of one or more devices in contact with a heart valve annulus, the device comprising:
an elongate catheter body having a proximal portion and a distal portion; at least one tensioning member coupled with the proximal portion of the catheter body and extending to the distal portion; and at least one tensioning actuator coupled with the proximal portion and the tensioning member for applying tension to the tensioning member to deform the distal portion to allow it to conform generally to a shape of the valve annulus.
- 78. A device as in claim 77, wherein the catheter body may be advanced intravascularly to the heart to contact the annulus.
- 79. A device as in claim 78, wherein the catheter body may be advanced through an aorta and into a left ventricle of the heart to contact the valve annulus.
- 80. A device as in claim 78, wherein the proximal portion of the catheter body is relatively stiff compared to the distal portion.
- 81. A device as in claim 78, wherein the catheter body further comprises a rounded, atraumatic distal tip.
- 82. A device as in claim 81, wherein the catheter body further comprises at least one radiopaque portion at or near the distal tip for enhancing visualization.
- 83. A device as in claim 77, wherein the catheter body further comprises at least one lumen extending through the proximal and distal portions for passing one or more fluids.
- 84. A device as in claim 77, wherein the at least one tensioning member comprises two tensioning members, allowing the distal portion to be deformed in at least two different directions.
- 85. A device as in claim 77, wherein the at least one tensioning member comprises at least one tensioning cord comprising a material selected from the group consisting of Nitinol, polyester, nylon, polypropylene and other polymers.
- 86. A device as in claim 77, wherein the at least one tensioning actuator comprises a knob coupled with the tensioning member, wherein turning the knob in one direction applies tension to the tensioning member to deform the distal portion, and wherein turning the knob in an opposite direction releases tension from the tensioning member to return to the distal portion to a less deformed configuration.
- 87. A device as in claim 77, further comprising at least one urging member coupled with the distal portion of the catheter body for urging the distal portion into contact with the valve annulus.
- 88. A device as in claim 87, wherein the at least one urging member comprises an expandable member for expanding within a space in a left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 89. A device as in claim 87, wherein the at least one urging member comprises at least one magnet coupled with the distal portion for applying attractive magnetic force between itself and an oppositely charged magnet disposed in a coronary sinus adjacent the valve annulus.
- 90. A device as in claim 77, further comprising a housing coupled with the proximal end, wherein the tensioning actuator is coupled with the housing.
- 91. A device as in claim 90, wherein the housing further comprises at least one fluid inlet port in fluid communication with at least one lumen in the elongate shaft for introducing one or more fluids into the lumen(s).
- 92. A system for facilitating placement of one or more devices in contact with a heart valve annulus, the system comprising:
a shaped guide catheter having at least one curve toward a distal end for positioning the distal end in a position below the mitral valve; a steerable guide catheter passable through the shaped guide catheter and having a steerable distal end for advancing around a length of the valve annulus below the mitral valve; and a guide sheath passable over the steerable guide catheter through the shaped guide catheter, wherein the one or more devices are passable through the guide sheath to contact the mitral valve annulus.
- 93. A system as in claim 92, wherein the at least one curve of the shaped guide catheter comprises:
a proximal curve approximately perpendicular to a central axis of the shaped guide catheter for bringing the distal end of the catheter into a plane approximately parallel with a plane of the mitral valve; and a distal curve having a radius of curvature approximately the same as a radius of curvature of the mitral valve annulus.
- 94. A system as in claim 92, wherein the steerable guide catheter comprises:
an elongate catheter body having a proximal portion and a distal portion; at least one tensioning member coupled with the proximal portion of the catheter body and extending to the distal portion; and at least one tensioning actuator coupled with the proximal portion and the tensioning member for applying tension to the tensioning member to deform the distal portion to allow it to conform generally to a shape of the valve annulus.
- 95. A system as in claim 94, wherein the catheter body may be advanced intravascularly to the heart to contact the annulus.
- 96. A system as in claim 95, wherein the catheter body may be advanced through an aorta and into a left ventricle of the heart to contact the valve annulus.
- 97. A system as in claim 95, wherein the proximal portion of the catheter body is stiffer than the distal portion.
- 98. A system as in claim 95, wherein the catheter body further comprises a rounded, atraumatic distal tip.
- 99. A system as in claim 98, wherein the catheter body further comprises at least one radiopaque portion at or near the distal tip for enhancing visualization.
- 100. A system as in claim 94, wherein the catheter body further comprises at least one lumen extending through the proximal and distal portions for passing one or more fluids.
- 101. A system as in claim 94, wherein the at least one tensioning member comprises two tensioning members, allowing the distal portion to be deformed in at least two different directions.
- 102. A system as in claim 94, wherein the at least one tensioning member comprises at least one tensioning cord comprising a material selected from the group consisting of Nitinol, polyester, nylon, polypropylene and other polymers.
- 103. A system as in claim 94, wherein the at least one tensioning actuator comprises a knob coupled with the tensioning member, wherein turning the knob in one direction applies tension to the tensioning member to deform the distal portion, and wherein turning the knob in an opposite direction releases tension from the tensioning member to return to the distal portion to a less deformed configuration.
- 104. A system as in claim 94, further comprising at least one urging member coupled with the distal portion of the catheter for urging the distal portion into contact with the valve annulus.
- 105. A system as in claim 104, wherein the at least one urging member comprises an expandable member for expanding within a space in a left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 106. A system as in claim 104, wherein the at least one urging member comprises at least one magnet coupled with the distal portion for applying attractive magnetic force between itself and an oppositely charged magnet disposed in a coronary sinus adjacent the valve annulus.
- 107. A system as in claim 94, further comprising a housing coupled with the proximal end, wherein the tensioning actuator is coupled with the housing.
- 108. A system as in claim 107, wherein the housing further comprises at least one fluid inlet port in fluid communication with at least one lumen in the elongate shaft for introducing one or more fluids into the lumen(s).
- 109. A system as in claim 92, wherein a distal portion of the guide sheath is detachable from a proximal portion of the guide sheath to remain in attached to the valve annulus after an annulus treatment procedure.
- 110. A system as in claim 109, wherein the detachable distal portion comprises a tubular member comprising Dacron.
- 111. A system as in claim 109, wherein the detachable distal portion is cinchable to tighten the mitral valve annulus.
- 112. A system as in claim 92, further comprising at least one urging member coupled with at least one of the shaped guide catheter, the steerable guide catheter and the guide sheath.
- 113. A device as in claim 112, wherein the at least one urging member comprises an expandable member for expanding within a space in a left ventricle formed by a left ventricular wall, at least one mitral valve leaflet and chordae tendiniae of the heart.
- 114. A device as in claim 112, wherein the at least one urging member comprises at least one magnet coupled with at least one of the shaped guide catheter, the steerable guide catheter and the guide sheath for applying attractive magnetic force between itself and an oppositely charged magnet disposed in a coronary sinus adjacent the valve annulus.
- 115. A system as in claim 92, further comprising an anchor delivery device passable through the guide sheath contact and apply coupled anchors to the mitral valve annulus.
- 116. A system as in claim 92, further comprising a visualization device passable through the sheath guide to facilitate visualization of the mitral valve annulus.
- 117. A system as in claim 116, wherein the visualization device is selected from the group consisting of an ultrsound device, a camera, an endoscope and a fiber optic device.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a Continuation-in-Part of U.S. patent application Ser. No. 10/741,130 (Attorney Docket No. 016886-001320), filed on Dec. 19, 2003, which is a Continuation-in-Part of U.S. patent application Ser. Nos. 10/656,797 (Attorney Docket No. 16886-001300), filed on Sep. 4, 2003, and 10/461,043 (Attorney Docket No. 16886-000310), filed on Jun. 13, 2003, the latter of which claims the benefit of Provisional Application Nos. 60/388,935 (Attorney Docket No. 016886-000300US), filed on Jun. 13, 2002; 60/429,288 (Attorney Docket No. 016886-000700US), filed on Nov. 25, 2002; 60/445,890 (Attorney Docket No. 016886-000800US), filed on Feb. 6, 2003, and 60/462,502 (Attorney Docket No. 016886-001100US), filed on Apr. 10, 2003, the full disclosures of which are all incorporated herein by reference.
[0002] The present application claims the benefit of Provisional Application Nos.: 60/459,735 (Attorney Docket No. 16886-000900US), filed on Apr. 1, 2003; 60/462,502 (Attorney Docket No. 16886-001100US), filed on Apr. 10, 2003; and 60/524,622 (Attorney Docket No. 16886-001310US), filed Nov. 24, 2003, the full disclosures of which are hereby incorporated by reference.
Provisional Applications (6)
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Number |
Date |
Country |
|
60524922 |
Nov 2003 |
US |
|
60462502 |
Apr 2003 |
US |
|
60459735 |
Apr 2003 |
US |
|
60445890 |
Feb 2003 |
US |
|
60429288 |
Nov 2002 |
US |
|
60388935 |
Jun 2002 |
US |
Continuation in Parts (3)
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Number |
Date |
Country |
Parent |
10741130 |
Dec 2003 |
US |
Child |
10792681 |
Mar 2004 |
US |
Parent |
10656797 |
Sep 2003 |
US |
Child |
10792681 |
Mar 2004 |
US |
Parent |
10461043 |
Jun 2003 |
US |
Child |
10792681 |
Mar 2004 |
US |