IP Library Granted Patent US 10,512,542
Granted Patent B2
US 10,512,542 · App. 15/455,567 · Granted Dec 24, 2019

Device, system, and method for transcatheter treatment of valve regurgitation

Inventors: Alex Khairkhahan (Palo Alto, CA); Michael D. Lesh (Mill Valley, CA)
Assignee: Polares Medical Inc.
A61F2/2457A61B17/0401A61F2/2418A61F2/2454A61F2/2466A61L27/042A61L27/06A61L27/3625A61L27/50A61B17/068A61B2017/0406A61B2017/0409A61B2017/0414A61B2017/0443A61B2017/0448A61B2017/0649A61B2090/08021A61F2210/0014A61F2220/0008A61L2400/16A61L2430/20
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,512,542
App. No.
15/455,567
Granted
Dec 24, 2019
Kind
B2
Abstract

The invention relates to a device for use in the transcatheter treatment of mitral valve regurgitation, specifically a coaptation enhancement element for implantation across the valve; a system including the coaptation enhancement element and anchors for implantation; a system including the coaptation enhancement element, catheter and driver; and a method for transcatheter implantation of a coaptation element across a heart valve.

Claims (34)

1. A coaptation implant comprising:

a coaptation surface configured for an anterior leaflet of a valve to coapt against;

a superior edge, lateral edges, and an inferior edge, wherein the superior edge has a length greater than a length of the inferior edge, such that a transverse distance between the lateral edges generally decreases from the superior edge to the inferior edge of the coaptation implant;

a hub located near the superior edge;

a helical anchor configured to be rotated relative to the hub to engage tissue;

at least one strut, wherein a strut of the at least one strut extends from the hub toward the inferior edge, the at least one strut arranged to assist in maintaining the shape of the coaptation implant upon placement, while allowing the coaptation implant to assume a reduced configuration for deployment through a catheter.

2. The coaptation implant of claim 1 , wherein the geometry of the coaptation implant is configured to conform substantially to a portion of the surface of a cone.

3. The coaptation implant of claim 1 , wherein the shape of the coaptation implant is configured to conform substantially to a portion of the surface of a cone for about 50% to about 70% of a total height measured along the longitudinal axis of the cone, and the shape of the coaptation implant extends radially outwardly from the surface of the cone to form a radially outward flare.

4. The coaptation implant of claim 3 , wherein the radially outward flare has a radius within a range of from about 5 mm to about 12 mm.

5. The coaptation implant of claim 1 , wherein the at least one strut comprises two struts, wherein the two struts are relatively evenly spaced.

6. The coaptation implant of claim 1 , wherein the at least one strut is disposed within a covering material for maintenance of a shape of the coaptation implant.

7. The coaptation implant of claim 1 , wherein the at least one strut is composed of resiliently deformable materials or a Nitinol alloy.

8. The coaptation implant of claim 1 , wherein the at least one strut is stiffer at an annular end than at a ventricular end of the coaptation implant.

9. The coaptation implant of claim 1 , wherein an additional strut of the at least one strut is a transverse strut.

10. A coaptation implant comprising:

a coaptation surface configured for an anterior leaflet of a valve to coapt against;

a superior edge, lateral edges, and an inferior edge, wherein the superior edge has a length greater than a length of the inferior edge, such that a transverse distance between the lateral edges generally decreases from the superior edge to the inferior edge of the coaptation implant;

a hub located near the superior edge;

a helical anchor configured to be rotated relative to the hub to engage tissue;

a strut extending from the hub toward the inferior edge; and

one or more additional struts, wherein the one or more additional struts curve laterally toward the superior edge to assist in maintaining the shape of a proximal portion of the coaptation implant upon deployment.

11. The coaptation implant of claim 10 , wherein an anterior surface or a posterior surface of the coaptation implant further comprise a covering.

12. The coaptation implant of claim 11 , wherein the covering is comprised of ePTFE, polyurethane foam, polycarbonate foam, biologic tissue, porcine pericardium, or silicone.

13. The coaptation implant of claim 10 , wherein the one or more additional struts assist in maintaining the distance between the lateral margins of the superior edge.

14. The coaptation implant of claim 10 , wherein the one or more additional struts are composed of resiliently deformable materials or a Nitinol alloy.

15. A coaptation implant comprising:

a coaptation surface configured for an anterior leaflet of a valve to coapt against;

a superior edge, lateral edges, and an inferior edge, wherein the superior edge has a length greater than a length of the inferior edge, such that a transverse distance between the lateral edges generally decreases from the superior edge to the inferior edge of the coaptation implant;

a hub located near the superior edge;

a helical anchor configured to be rotated relative to the hub to engage tissue;

one or more struts, wherein a strut of the one or more struts is connected to the hub and extends longitudinally toward the inferior edge.

16. The coaptation implant of claim 15 , wherein the one or more struts are concentrated toward the center of the coaptation implant.

17. The coaptation implant of claim 15 , wherein the one or more struts are concentrated toward the lateral edges of the coaptation implant.

18. The coaptation implant of claim 15 , wherein the one or more struts are composed of resiliently deformable materials or a Nitinol alloy.

Assignments (2)
CHANGE OF NAME Recorded Oct 3, 2019
From: MIDDLE PEAK MEDICAL INC.
To: POLARES MEDICAL INC.
Reel/Frame 050621/0317 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 22, 2017
From: KHAIRKHAHAN, ALEX; LESH, MICHAEL D.
To: MIDDLE PEAK MEDICAL, INC.
Reel/Frame 042456/0305 →
Continuity (5)
Continuation 14542091 · Nov 14, 2014
Continuation 13531407 · Jun 22, 2012
Continuation In Part 13099532 · May 3, 2011
Provisional Application 61437397 · Jan 28, 2011
Related Publication 20170245994A1 · Aug 31, 2017
Cited By (13)
US 12,285,336 US 12,295,845 US 12,350,153 US 12,390,331 US 12,414,855 US 12,419,747 US 12,458,341 US 12,465,489 US 12,478,474 US 12,599,482 US 12,616,574 US 12,616,575 US 12,697,217