Claims
- 1. A guide catheter comprising an elongated sheath including a fully radiopaque and echogenic distal tip, the distal tip having a length greater than or equal to approximately 0.08 inch.
- 2. The guide catheter of claim 1, wherein the distal tip is formed of a material comprising tungsten carbide particles.
- 3. The guide catheter of claim 1, wherein the length of the distal tip is between approximately 0.08 inch and approximately 0.2 inch.
- 4. The guide catheter of claim 1, wherein the length of the distal tip is greater than or equal to approximately 0.2 inch.
- 5. The guide catheter of claim 1, wherein the length of the distal tip is between approximately 0.4 inch and approximately 2 inch.
- 6. The guide catheter of claim 2, wherein the tungsten carbide particles have an average size less than or equal to approximately 500 nanometers.
- 7. The guide catheter of claim 6, wherein the tungsten carbide particles have an average size between approximately 100 nanometers and approximately 200 nanometers.
- 8. The guide catheter of claim 6, wherein the tungsten carbide particles have an average size less than or equal to approximately 200 nanometers
- 9. The guide catheter of claim 2, wherein the tungsten carbide particles are approximately 40% to approximately 80% by weight of the fully radiopaque and echogenic distal tip.
- 10. The guide catheter of claim 9, wherein the tungsten carbide particles are approximately 70% to approximately 80% by weight of the fully radiopaque and echogenic distal tip.
- 11. The guide catheter of claim 1, wherein the elongated sheath further includes a reinforcing braid extending along a length of the sheath to a point proximal to the fully radiopaque and echogenic distal tip.
- 12. The guide catheter of claim 11, wherein the point proximal to the distal tip is spaced between approximately 0.25 inch and approximately 0.35 inch from the distal tip.
- 13. The guide catheter of claim 1, wherein the fully radiopaque and echogenic distal tip includes a first resilient preformed curve.
- 14. The guide catheter of claim 13, wherein the first curve sweeps about an angle greater than or equal to approximately 180°.
- 15. The guide catheter of claim 13, wherein the first curve sweeps about an angle of approximately 90°.
- 16. The guide catheter of claim 13, wherein the first curve sweeps about an angle between approximately 10° and approximately 70°.
- 17. The guide catheter of claim 13, wherein the fully radiopaque and echogenic distal tip further includes a second resilient preformed curve extending from the first resilient preformed curve.
- 18. The guide catheter of claim 17, wherein the first and second curves, together, sweep about an angle greater than approximately 90°.
- 19. The guide catheter of claim 17, wherein the first curve sweeps about an angle between approximately 160° and approximately 180° and the second curve sweeps, in an opposite direction to the first curve, about an angle between approximately 40° and approximately 80°.
- 20. The guide catheter of claim 17, wherein the first curve and the second curve form an Amplatz shape.
- 21. The guide catheter of claim 17, wherein the fully radiopaque and echogenic distal tip further includes a third resilient preformed curve extending from the second resilient preformed curve.
- 22. The guide catheter of claim 21, wherein the first, second and third curves, together, sweep about an angle greater than approximately 100°.
- 23. The guide catheter of claim 1, wherein the fully radiopaque and echogenic distal tip includes a tapered transition.
- 24. The guide catheter of claim 13, wherein the fully radiopaque and echogenic distal tip includes a tapered transition.
- 25. The guide catheter of claim 24, wherein the tapered transition is located proximal to the first resilient preformed curve.
- 26. The guide catheter of claim 17, wherein the fully radiopaque and echogenic distal tip includes a tapered transition.
- 27. The guide catheter of claim 26, wherein the tapered transition is located proximal to the second resilient preformed curve.
- 28. The guide catheter of claim 21, wherein the fully radiopaque and echogenic distal tip includes a tapered transition.
- 29. The guide catheter of claim 28, wherein the tapered transition is located proximal to the third resilient preformed curve.
- 30. The guide catheter of claim 1, wherein the material forming the fully radiopaque and echogenic distal tip has hardness between approximately 25 durometer and approximately 35 durometer on a D scale.
- 31. The guide catheter of claim 1, wherein
the elongated sheath further includes a proximal segment; the proximal segment including a distal end; and the fully radiopaque and echogenic distal tip is coupled to the distal end of the proximal segment by means of a butt joint.
- 32. The guide catheter of claim 31, wherein the butt joint is heat fused.
- 33. The guide catheter of claim 32, wherein the butt joint is formed by an RF process.
- 34. The guide catheter of claim 33, wherein the fully radiopaque and echogenic distal tip includes a tapered transition formed in the RF die.
- 35. The guide catheter of claim 1, wherein:
the elongated sheath further includes a proximal segment having a first stiffness and including a distal end; and the fully radiopaque and echogenic distal tip is coupled to the distal end of the proximal segment and has a second stiffness, which is less than the first stiffness.
- 36. The guide catheter of claim 1, wherein the radiopaque and echogenic distal tip is atraumatic.
- 37. The guide catheter of claim 1, wherein
the elongated sheath further includes a proximal segment; the proximal segment including a distal end and a proximal segment outer diameter; and the fully radiopaque and echogenic distal tip is coupled to the distal end of the proximal segment and includes a distal tip outer diameter, which is less than the proximal segment outer diameter.
- 38. The guide catheter of claim 4, further comprising an outer sheath slideably receiving the elongated sheath; wherein the elongated sheath engaged within the outer sheath may be positioned so that the fully radiopaque and echogenic distal tip protrudes from a distal end of the outer sheath.
- 39. The guide catheter of claim 38, wherein the length of the distal tip is between approximately 0.4 inch and approximately 2 inches.
- 40. The guide catheter of claim 38, wherein the distal tip is formed of a material comprising tungsten carbide particles.
- 41. The guide catheter of claim 40, wherein the tungsten carbide particles have an average size less than or equal to approximately 500 nanometers.
- 42. The guide catheter of claim 41, wherein the tungsten carbide particles have an average size between approximately 100 nanometers and approximately 200 nanometers.
- 43. The guide catheter of claim 41, wherein the tungsten carbide particles have an average size less than or equal to approximately 200 nanometers
- 44. The guide catheter of claim 40, wherein the tungsten carbide particles are approximately 40% to approximately 80% by weight of the radiopaque and echogenic distal tip.
- 45. The guide catheter of claim 44, wherein the tungsten carbide particles are approximately 70% to approximately 80% by weight of the radiopaque and echogenic distal tip.
- 46. The guide catheter of claim 38, wherein the fully radiopaque and echogenic distal tip includes a first resilient preformed curve.
- 47. The guide catheter of claim 46, wherein the first curve sweeps about an angle greater than or equal to approximately 180°.
- 48. The guide catheter of claim 46, wherein the first curve sweeps about an angle of approximately 90°.
- 49. The guide catheter of claim 46, wherein the first curve sweeps about an angle between approximately 10° and approximately 70°.
- 50. The guide catheter of claim 46, wherein the fully radiopaque and echogenic distal tip further includes a second resilient preformed curve extending from the first resilient preformed curve.
- 51. The guide catheter of claim 50, wherein the first and second curves, together, sweep about an angle greater than approximately 90°.
- 52. The guide catheter of claim 50, wherein the first curve sweeps about an angle between approximately 160° and approximately 180° and the second curve sweeps, in an opposite direction to the first curve, about an angle between approximately 40° and approximately 80°.
- 53. The guide catheter of claim 50, wherein the first curve and the second curve form an Amplatz shape.
- 54. The guide catheter of claim 50, wherein the fully radiopaque and echogenic distal tip further includes a third resilient preformed curve extending from the second resilient preformed curve.
- 55. The guide catheter of claim 54, wherein the first, second and third curves, together, sweep about an angle greater than approximately 100°.
- 56. The guide catheter of claim 38, wherein the fully radiopaque and echogenic distal tip includes a tapered transition.
- 57. The guide catheter of claim 46, wherein the fully radiopaque and echogenic distal tip includes a tapered transition.
- 58. The guide catheter of claim 57, wherein the tapered transition is located proximal to the first resilient preformed curve.
- 59. The guide catheter of claim 50, wherein the fully radiopaque and echogenic distal tip includes a tapered transition.
- 60. The guide catheter of claim 59, wherein the tapered transition is located proximal to the second resilient preformed curve.
- 61. The guide catheter of claim 54, wherein the fully radiopaque and echogenic distal tip includes a tapered transition.
- 62. The guide catheter of claim 61, wherein the tapered transition is located proximal to the third resilient preformed curve.
- 63. The guide catheter of claim 38, wherein the material forming the radiopaque and echogenic distal tip has a hardness between approximately 25 durometer and approximately 35 durometer on a D scale.
- 64. The guide catheter of claim 38, wherein
the elongated sheath further includes a proximal segment; the proximal segment including a distal end; and the fully radiopaque and echogenic distal tip is coupled to the distal end of the proximal segment by means of a butt joint.
- 65. The guide catheter of claim 64, wherein the butt joint is heat fused.
- 66. The guide catheter of claim 65, wherein the butt joint is formed by an RF process.
- 67. The guide catheter of claim 66, wherein the fully radiopaque and echogenic distal tip includes a tapered transition formed in the RF die.
- 68. The guide catheter of claim 38, wherein:
the elongated sheath further includes a proximal segment having a first stiffness and including a distal end; and the fully radiopaque and echogenic distal tip is coupled to the distal end of the proximal segment and has a second stiffness, which is less than the first stiffness.
- 69. The guide catheter of claim 38, wherein the radiopaque and echogenic distal tip is atraumatic.
- 70. A guide catheter, comprising:
an outer sheath; and an inner sheath slideably engaged within the outer sheath and including a fully radiopaque distal tip having a length greater than or equal to approximately 0.2 inch; wherein the inner sheath engaged within the outer sheath may be positioned such that the radiopaque distal tip protrudes from a distal end of the outer sheath.
- 71. The guide catheter of claim 70, wherein the fully radiopaque distal tip is also fully echogenic.
- 72. The guide catheter of claim 71, wherein the distal tip is formed of a material comprising tungsten carbide particles.
- 73. The guide catheter of claim 72, wherein the fully radiopaque distal tip includes a first resilient preformed curve.
- 74. The guide catheter of claim 73, wherein the first curve sweeps about an angle greater than or equal to approximately 180°.
- 75. The guide catheter of claim 73, wherein the first curve sweeps about an angle of approximately 90°.
- 76. The guide catheter of claim 73, wherein the first curve sweeps about an angle between approximately 10° and approximately 70°.
- 77. The guide catheter of claim 73, wherein the fully radiopaque distal tip further includes a second resilient preformed curve extending from the first resilient preformed curve.
- 78. The guide catheter of claim 77, wherein the first and second curves, together, sweep about an angle greater than approximately 90°.
- 79. The guide catheter of claim 77, wherein the first curve sweeps about an angle between approximately 160° and approximately 180° and the second curve sweeps, in an opposite direction to the first curve, about an angle between approximately 40° and approximately 80°.
- 80. The guide catheter of claim 77, wherein the first curve and the second curve form an Amplatz shape.
- 81. The guide catheter of claim 77, wherein the fully radiopaque distal tip further includes a third resilient preformed curve extending from the second resilient preformed curve.
- 82. The guide catheter of claim 81, wherein the first, second and third curves, together, sweep about an angle greater than approximately 100°.
- 83. The guide catheter of claim 70, wherein the fully radiopaque distal tip includes a tapered transition.
- 84. The guide catheter of claim 73, wherein the fully radiopaque distal tip includes a tapered transition.
- 85. The guide catheter of claim 84, wherein the tapered transition is located proximal to the first resilient preformed curve.
- 86. The guide catheter of claim 77, wherein the fully radiopaque distal tip includes a tapered transition.
- 87. The guide catheter of claim 86, wherein the tapered transition is located proximal to the second resilient preformed curve.
- 88. The guide catheter of claim 81, wherein the fully radiopaque distal tip includes a tapered transition.
- 89. The guide catheter of claim 88, wherein the tapered transition is located proximal to the third resilient preformed curve.
- 90. A method for positioning a guide catheter within a body in order to deliver a medical device or agent, comprising:
advancing an inner sheath of the guide catheter through an outer sheath of the guide catheter such that distal tip of the inner sheath extends distally from a distal end of the outer sheath; wherein the distal tip of the inner sheath is fully radiopaque.
- 91. The method of claim 90, wherein the distal tip is also fully echogenic.
- 92. The method of claim 91, further comprising visualizing the distal tip of the inner sheath by means of ultrasound.
- 93. The method of claim 90, further comprising cannulating a coronary sinus with the distal end of the outer sheath such that advancing the inner sheath positions the distal tip of the inner sheath within the coronary vasculature.
- 94. The method of claim 90, further comprising dilating of a structure of coronary vasculature when the inner sheath is advanced.
- 95. The method of claim 90, further comprising cannulating a coronary sinus with the distal tip of the inner sheath.
- 96. The method of claim 90, further comprising cannulating a branch vein of the coronary vasculature with the distal tip of the inner sheath.
- 97. The method of claim 96, further comprising advancing a guide wire through the inner sheath, out through the distal tip of the inner sheath and into the branch vein.
- 98. The method of claim 96, further comprising advancing a lead through the inner sheath, out through the distal tip of the inner sheath and into the branch vein.
- 99. The method of claim 97, further comprising advancing a lead over the guide wire and into the branch vein.
RELATED APPLICATION
[0001] This application is a continuation in part of application Ser. No. 10/016,114 (Attorney Docket 10137.00) filed on Dec. 12, 2001 and entitled “Guide Catheter”.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10016114 |
Dec 2001 |
US |
Child |
10682220 |
Oct 2003 |
US |