IP Library Granted Patent US 12,263,085
Granted Patent B2
US 12,263,085 · App. 18/221,990 · Granted Apr 1, 2025

Method for delivering a prosthetic heart valve

Inventor: David M. Taylor (Lake Forest, CA)
Assignee: EDWARDS LIFESCIENCES CORPORATION
A61F2/2427A61F2/2433A61F2/2436A61F2230/0069A61M25/0138A61M25/0147
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Quick Facts
Patent No.
US 12,263,085
App. No.
18/221,990
Granted
Apr 1, 2025
Kind
B2
Abstract

A method of implanting a balloon expandable prosthetic valve within a native aortic valve includes introducing a delivery system into a femoral artery of a patient, the delivery system comprising an outer sleeve and a shaft extending through a lumen of the outer sleeve. A distal end portion of the shaft is positioned distal to a distal end of a steerable distal end portion of the outer sleeve. A prosthetic valve is crimped over a balloon disposed along the distal end portion of the shaft. The delivery system further comprises a first radiopaque marker inside the balloon and positioned adjacent a proximal end of the prosthetic valve and a second radiopaque marker inside the balloon and positioned adjacent a distal end of the prosthetic valve. The method also includes identifying a location of the prosthetic valve by monitoring the first and second radiopaque markers inside the balloon under fluoroscopy.

Claims (24)

1. A method of implanting a balloon expandable prosthetic valve within a native aortic valve in a patient, the method comprising:

introducing a delivery system into a femoral artery of the patient, the delivery system comprising an outer sleeve and a shaft extending through a lumen of the outer sleeve, wherein a distal end portion of the shaft is positioned distal to a distal end of a steerable distal end portion of the outer sleeve, and a prosthetic valve is crimped over a balloon disposed along the distal end portion of the shaft, wherein the delivery system further comprises a first radiopaque marker inside the balloon and positioned adjacent a proximal end of the prosthetic valve and a second radiopaque marker inside the balloon and positioned adjacent a distal end of the prosthetic valve, wherein the distal end of the steerable distal end portion is a free end and the prosthetic valve is positioned distal to the free end as the delivery system is introduced into the femoral artery;

identifying a location of the prosthetic valve by monitoring the first and second radiopaque markers inside the balloon under fluoroscopy;

selectively controlling a curvature of the steerable distal end portion so as to advance the prosthetic valve through an aortic arch of the patient, wherein the outer sleeve does not cover the prosthetic valve as the prosthetic valve is introduced into the femoral artery of the patient and advanced through the aortic arch;

wherein selectively controlling the curvature of the steerable distal end portion comprises tensioning a pull wire, wherein the pull wire has a distal end portion fixedly connected to the steerable distal end portion;

positioning the prosthetic valve at a target site within the native aortic valve; and radially expanding the prosthetic valve by inflating the balloon.

2. The method of claim 1 , wherein the first and second radiopaque markers are spaced equidistantly from a longitudinal midpoint of the prosthetic valve crimped over the balloon.

3. The method of claim 1 , further comprising, prior to introducing the delivery system into the femoral artery, pre-dilating leaflets of the native aortic valve with a dilation balloon catheter for increasing a flow area through the native aortic valve.

4. The method of claim 1 , wherein tensioning the pull wire comprises actuating a steering mechanism located in a handle that is coupled to a proximal end of the outer sleeve.

5. The method of claim 1 , wherein positioning the prosthetic valve at the target site comprises aligning the prosthetic valve with respect to the native aortic valve by controlling the curvature of the steerable distal end portion.

6. The method of claim 1 , wherein positioning the prosthetic valve comprises pushing the shaft across the native aortic valve.

7. The method of claim 1 , wherein selectively controlling the curvature of the steerable distal end portion comprises shaping the steerable distal end portion to a shape of the aortic arch while steering the prosthetic valve away from an inner surface of the aortic arch.

8. A method of implanting a balloon expandable prosthetic valve within a native aortic valve in a patient, the method comprising:

providing a delivery assembly comprising a tubular sleeve, a shaft extending through a lumen of the tubular sleeve, and a prosthetic valve disposed along a distal end portion of the shaft, wherein the prosthetic valve is positioned distal to a distal end of the tubular sleeve, wherein the distal end of the tubular sleeve is a free end, wherein the delivery system further comprises a proximal radiopaque marker positioned adjacent a proximal end of the prosthetic valve and a distal radiopaque marker positioned adjacent a distal end of the prosthetic valve, wherein both the proximal and distal radiopaque markers are located on the shaft;

introducing the delivery assembly into a femoral artery of the patient;

identifying a location of the prosthetic valve by monitoring the proximal and distal radiopaque markers under fluoroscopy;

advancing the prosthetic valve through an aortic arch of the patient while keeping the prosthetic valve uncovered by the tubular sleeve;

wherein advancing the prosthetic valve through the aortic arch comprises selectively controlling a curvature of a steerable section of the tubular sleeve;

wherein controlling the curvature of the steerable section comprises tensioning a pull wire, wherein the pull wire has a distal end portion fixedly connected to the steerable section;

positioning the prosthetic valve at a target site within the native aortic valve; and inflating a balloon inside the prosthetic valve to radially expand the prosthetic valve.

9. The method of claim 8 , wherein the prosthetic valve is crimped over the balloon and the proximal and distal radiopaque markers are inside the balloon.

10. The method of claim 8 , wherein the proximal and distal radiopaque markers are positioned equidistantly from a longitudinal midpoint of the prosthetic valve.

11. The method of claim 8 , wherein selectively controlling the curvature of the steerable section comprises shaping the steerable section to a shape of the aortic arch while steering the prosthetic valve away from an inner surface of the aortic arch.

12. The method of claim 8 , wherein positioning the prosthetic valve at the target site comprises aligning the prosthetic valve with respect to the native aortic valve by controlling the curvature of the steerable section and pushing the shaft across the native aortic valve.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2023
From: TAYLOR, DAVID M.
To: EDWARDS LIFESCIENCES CORPORATION
Reel/Frame 064769/0241 →
Continuity (9)
Continuation 17235800 · Apr 20, 2021
Continuation 16709806 · Dec 10, 2019
Continuation 16200431 · Nov 26, 2018
Continuation 15893478 · Feb 9, 2018
Continuation 14704866 · May 5, 2015
Continuation 13774848 · Feb 22, 2013
Continuation 12855378 · Aug 12, 2010
Continuation 11152288 · Jun 13, 2005
Related Publication 20230355384A1 · Nov 9, 2023
References Cited (4)
US 5968068A · Dehdashtian · 1999 [cited by examiner]
US 5976181A · Whelan · 1999 [cited by examiner]
US 6454799B1 · Schreck · 2002 [cited by examiner]
US 11744704B2 · Taylor · 2023 [cited by examiner]