IP Library › Granted Patent US 11,717,345
Granted Patent B2
US 11,717,345 · App. 17/232,560 · Granted Aug 8, 2023

Methods of ablating tissue using a catheter injection system

Inventors: David R. Fischell (Menlo Park, CA); Tim A. Fischell (Kalamazoo, MI)
Assignee: Ablative Solutions, Inc.
A61B18/1492A61M5/00A61B2018/0022A61B2018/00214A61B2018/00375A61B2018/00404A61B2018/00434A61B2018/00511A61B2018/00577A61B2018/143
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Quick Facts
Patent No.
US 11,717,345
App. No.
17/232,560
Granted
Aug 8, 2023
Kind
B2
Abstract

At the present time, physicians often treat patients with atrial fibrillation (AF) using radiofrequency (RF) catheter systems to ablate conducting tissue in the wall of the Left Atrium of the heart around the ostium of the pulmonary veins. These systems are expensive and take time consuming to use. The present invention circular ablation system CAS includes a multiplicity of expandable needles that can be expanded around a central axis and positioned to inject a fluid like ethanol to ablate conductive tissue in a ring around the ostium of a pulmonary vein quickly and without the need for expensive capital equipment. The expansion of the needles is accomplished by self-expanding or balloon expandable structures. The invention includes centering means so that the needles will be situated in a pattern surrounding the outside of the ostium of a vein. Also included are members that limit the distance of penetration of the needles into the wall of the left atrium. The present invention also has application to ablating tissue around the ostium of a renal artery for the treatment of hypertension.

Claims (38)

1. An ablation system comprising:

a guiding catheter configured to advance through a target vessel until a distal portion of the ablation system lies near a target tissue;

an inner tube forming a distal end of the ablation system; and

at least two needles forming the distal portion of the ablation system,

wherein the at least two needles are configured to advance from a first position within the guiding catheter to a second position outward from the guiding catheter toward and into a wall of the target tissue, wherein the inner tube is positioned distal to the at least two needles in the first position and the second position,

wherein the at least two needles are coupled to a manifold and configured for simultaneous advancement from the first position to the second position,

wherein the penetration of the at least two needles is limited to a pre-determined depth of penetration.

2. The ablation system of claim 1 , further comprising a diameter-increasing structure.

3. The ablation system of claim 2 , wherein the inner tube is located distal to the diameter-increasing structure.

4. The ablation system of claim 1 , wherein the diameter-increasing structure is configured to center the distal portion of the ablation system.

5. The ablation system of claim 1 , wherein the at least two needles are configured to deliver ablative fluid.

6. The ablation system of claim 1 , wherein ablation system comprises an injection lumen in fluid communication with an injection port of each needle.

7. The ablation system of claim 1 , wherein the at least two needles comprise a shape memory material.

8. The ablation system of claim 1 , wherein the at least two needles comprise a radiopaque material.

9. The ablation system of claim 1 , further comprising an injection connector at a proximal end of the ablation system.

10. An ablation system comprising:

a guiding catheter configured to advance through a target vessel until a distal portion of the ablation system lies near a target tissue;

an inner tube forming a distal end of the ablation system; and

at least two needles forming the distal portion of the ablation system,

wherein the at least two needles are configured to advance from a first position within the guiding catheter to a second position outward from the guiding catheter toward and into the target tissue, wherein the inner tube is positioned distal to the two needles in the first position and the second position,

wherein the at least two needles are coupled to a manifold and configured for simultaneous advancement from the first position to the second position,

wherein each of the at least two needles in the second position extends from a support structure configured to rest against the luminal wall, wherein the support structure does not penetrate the luminal wall, wherein the inner tube is located distal to the support structure.

11. The ablation system of claim 10 , wherein the support structure comprises a flattened distal end.

12. The ablation system of claim 10 , wherein at least one support structure is symmetric around the corresponding needle.

13. The ablation system of claim 12 , wherein the at least one symmetric support structure has a generally round cross section.

14. The ablation system of claim 13 , wherein the at least one support structure with a generally round cross section has a larger diameter than the corresponding needle.

15. The ablation system of claim 10 , wherein the support structure comprises a preset shape.

16. An ablation system comprising:

a guiding catheter configured to advance through a target vessel until a distal portion of the ablation system lies near a target tissue;

an inner tube forming a distal end of the ablation system; and

a plurality of needles forming the distal portion of the ablation system,

wherein the plurality of needles are configured to advance from a first position within the guiding catheter to a second position outward from the guiding catheter toward and into the target tissue, wherein the inner tube is positioned distal to the plurality of needles in the first position and the second position,

wherein the plurality of needles are coupled to a manifold and configured for simultaneous advancement from the first position to the second position,

wherein the depth of penetration of the plurality of needles beyond the luminal wall has a fixed maximum depth of penetration.

17. The ablation system of claim 16 , wherein each needle is configured to produce a circle of ablation, wherein the circles of ablation of the plurality of needles intersect to form an ablative ring.

18. The ablation system of claim 16 , wherein ablation system is selected based on a diameter of an ablation ring to be created by injection of fluid through the plurality of needles.

19. The ablation system of claim 16 , wherein ablation system is configured to provide reproducible circumferential ablation.

20. The ablation system of claim 16 , wherein the fixed maximum depth of penetration is between 0.5 mm and 1 cm.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2023
From: FISCHELL, DAVID R.; FISCHELL, TIM A.
To: ABLATIVE SOLUTIONS, INC.
Reel/Frame 063814/0711 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2023
From: FISCHELL INNOVATIONS LLC
To: ABLATIVE SOLUTIONS, INC.
Reel/Frame 063814/0748 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 29, 2023
From: FISCHELL, DAVID R.; FISCHELL, TIM A.
To: FISHELL INNOVATIONS LLC
Reel/Frame 063150/0267 →
Continuity (5)
Continuation 15711162 · Sep 21, 2017
Continuation 14814962 · Jul 31, 2015
Continuation 14057972 · Oct 18, 2013
Division 13092363 · Apr 22, 2011
Related Publication 20210290302A1 · Sep 23, 2021
Cited By (4)
US 12,239,361 US 12,245,790 US 12,343,148 US 12,350,051