IP Library › Granted Patent US 11,273,036
Granted Patent B2
US 11,273,036 · App. 16/435,288 · Granted Mar 15, 2022

Cylindrical implant and balloon

Inventors: David Maimon (Atlit, IL); Michael R. Bialas (Lake Forest, CA); Mindy Lee Ann Black (Huntington Beach, CA); Tamir S. Levi (Zikhron Yaakov, IL); Linda Thai (Mission Viejo, CA); Yidong M. Zhu (Irvine, CA)
Assignee: Edwards Lifesciences Corporation
A61F2/2433A61F2/2418A61F2/958A61F2230/001
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Quick Facts
Patent No.
US 11,273,036
App. No.
16/435,288
Granted
Mar 15, 2022
Kind
B2
Abstract

Disclosed herein are embodiments of a balloon shaped to have one or more enlarged recons to selectively increase expansion forces on an implant. For example, the balloon may have a central portion that is enlarged to exert more force on the center of a stent-mounted prosthetic heart valve. This overcomes the stent-mounted prosthetic heart valve's tendency to expand with flared ends. This forms a more cylindrical or barrel shaped stent frame during expansion of the balloon—reducing or eliminating the instance wherein the cylindrical stent frame has flared ends. Alternatively, the balloon may have conical flares placed to cause or enhance flared ends of the cylindrical implant to enhance its anchoring capabilities.

Claims (43)

1. A system comprising:

a prosthetic heart valve having a generally cylindrical stent frame with an axial opening and having an inflow end defining an inflow diameter, an outflow end defining an outflow diameter and a central region defining a central diameter, the central region between the inflow end and the outflow end; and

a balloon extending through the axial opening and configured to expand and exert a radially directed force against the stent frame,

wherein the stent frame in a partially expanded condition has a generally barrel shape such that the central diameter of the stent frame is larger than either the inflow diameter or the outflow diameter of the stent frame in the partially expanded condition and at a pressure in the balloon of at least 4 atmospheres.

2. The system of claim 1 , wherein the inflow diameter of the stent frame in the partially expanded condition is larger than the outflow diameter.

3. The system of claim 1 , wherein the outflow diameter of the stent frame in the partially expanded condition is larger than the inflow diameter.

4. The system of claim 1 , wherein the balloon is configured to exert the radially directed force through 4 to 6 atmospheres of pressure while the outflow diameter and the inflow diameter of the stent frame are smaller than the central diameter.

5. The system of claim 1 , wherein the central diameter of the stent frame in the partially expanded condition is at most 2 mm larger than either the inflow or the outflow diameter.

6. The system of claim 5 , wherein the pressure in the balloon is from 4 to 5 atmospheres.

7. The system of claim 1 , wherein the central diameter of the stent frame in the partially expanded condition is at most 1.2 mm larger than either the inflow diameter or the outflow diameter.

8. The system of claim 1 , wherein the central diameter of the stent frame in the partially expanded condition is at most 0.8 mm larger than either the inflow diameter or the outflow diameter.

9. The system of claim 1 , wherein the balloon further includes enlarged ends configured to extend radially past the outflow end and the inflow end of the stent frame so as to retain the prosthetic heart valve on the balloon.

10. The system of claim 1 , wherein the balloon is configured to expand to a larger diameter under the central region of the stent frame than under the inflow and outflow ends of the stent frame.

11. The system of claim 1 , wherein the stent frame is configured to have regions of different stiffness.

12. A system comprising:

a prosthetic heart valve having a generally cylindrical stent frame with an axial opening and having an inflow end defining an inflow diameter, an outflow end defining an outflow diameter and a central region defining a central diameter, the central region between the inflow end and the outflow end; and

a balloon extending through the axial opening and configured to expand and exert a radially directed force against the stent frame,

wherein the stent frame in an at least partially expanded condition has a generally barrel shape such that the central diameter of the stent frame is larger than either the inflow diameter or the outflow diameter of the stent frame in the partially expanded condition and at a pressure in the balloon of at least 4 atmospheres, and

wherein the balloon has a wall material with a stiffness adjacent the inflow end and the outflow end of the stent frame that is greater than a stiffness of the wall material at the central region.

13. A system comprising:

a prosthetic heart valve having a generally cylindrical stent frame with an axial opening and having an inflow end defining an inflow diameter, an outflow end defining an outflow diameter and a central region defining a central diameter, the central region between the inflow end and the outflow end; and

a balloon extending through the axial opening and configured to expand and exert a radially directed force against the stent frame,

wherein the stent frame in an at least partially expanded condition has a generally barrel shape such that the central diameter of the stent frame is larger than either the inflow diameter or the outflow diameter of the stent frame in at least the partially expanded condition and at a pressure in the balloon of at least 4 atmospheres,

wherein the stent frame is configured to have regions of different stiffness; and

wherein the stent frame has a lower stiffness at the central region than a stiffness adjacent the inflow end and the outflow end.

14. A system comprising:

a prosthetic heart valve having a generally cylindrical stent frame with an axial opening and having an inflow end defining an inflow diameter, an outflow end defining an outflow diameter and a central region defining a central diameter, the central region between the inflow end and the outflow end; and

a balloon extending through the axial opening and configured to expand and exert a radially directed force against the stent frame,

wherein the stent frame in an at least partially expanded condition has a generally barrel shape such that the central diameter of the stent frame is larger than either the inflow diameter or the outflow diameter of the stent frame in the at least partially expanded condition and at a pressure in the balloon of at least 4 atmospheres,

wherein the stent frame is configured to have regions of different stiffness, and

wherein the stent frame has a lower stiffness adjacent the inflow end and the outflow end than a stiffness at the central region.

15. A method comprising:

inflating a balloon, positioned in an axial opening of a generally cylindrical stent frame of a prosthetic heart valve, to a pressure of at least 4 atmospheres;

exerting a radial force against the cylindrical stent frame by the inflating of the balloon; and

expanding the generally cylindrical stent frame to a partially expanded condition having a generally barrel shape by exerting the radial force so that an outflow diameter and an inflow diameter of the stent frame are smaller than a central diameter of the stent frame.

16. The method of claim 15 , wherein expanding the generally cylindrical stent frame includes expanding the generally cylindrical stent frame so that the central diameter is at most 2 mm larger than either the inflow or the outflow diameters in the partially expanded condition.

17. The method of claim 15 , wherein expanding the generally cylindrical stent frame includes expanding the generally cylindrical stent frame so that the central diameter is at most 1.2 mm larger than either the inflow or the outflow diameters in the partially expanded condition.

18. A method comprising:

inflating a balloon, positioned in an axial opening of a generally cylindrical stent frame of a prosthetic heart valve, to a pressure of at least 4 atmospheres;

exerting a radial force against the cylindrical stent frame by the inflating of the balloon; and

expanding the generally cylindrical stent frame to an at least partially expanded condition by exerting the radial force so that an outflow diameter and an inflow diameter of the cylindrical stent frame are larger than a central diameter of the cylindrical stent frame.

19. The method of claim 18 , wherein an inflow portion of the balloon and an outflow portion of the balloon are positioned adjacent the inflow diameter and the outflow diameter of the cylindrical stent frame, respectively,

wherein the inflow and outflow portions of the balloon exert a greater radial force against the cylindrical stent frame than a central portion of the balloon, the central portion positioned adjacent the central diameter of the cylindrical stent frame.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2019
From: MAIMON, DAVID; BIALAS, MICHAEL R.; BLACK, MINDY LEE ANN; LEVI, TAMIR S.; THAI, LINDA; ZHU, YIDONG M.
To: EDWARDS LIFESCIENCES CORPORATION
Reel/Frame 049596/0632 →
Continuity (3)
Continuation 15263204 · Sep 12, 2016
Provisional Application 62221541 · Sep 21, 2015
Related Publication 20190290426A1 · Sep 26, 2019