IP Library › Granted Patent US 10,959,840
Granted Patent B2
US 10,959,840 · App. 14/961,885 · Granted Mar 30, 2021

Systems and methods for affixing a prosthesis to tissue

Inventor: Michael P. Whitman (Newtown, PA)
Assignee: MICRO INTERVENTIONAL DEVICES, INC.
A61F2/2418A61B17/068A61F2/2409A61B2017/0647A61F2/2427
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Quick Facts
Patent No.
US 10,959,840
App. No.
14/961,885
Granted
Mar 30, 2021
Kind
B2
Abstract

Systems and methods recited herein provide for affixation of a prosthetic valve to surrounding tissue, by at least one anchor and an anchor deployment device. The prosthetic valve device may be compliant with native tissue and may receive the at least one anchor in at least one anchor receptacle to affix the prosthetic valve to native tissue. The anchor may include a distal tip, a proximal head, and a tension component, such that upon deployment into tissue the tension component is situated in a tensioned state to exert a pulling force on the distal end of the anchor.

Claims (64)

1. A prosthetic valve, comprising: a plurality of anchor receptacles;

a plurality of inflow cells situated in a proximal direction of the prosthetic valve, wherein the inflow cells are malleable;

a plurality of annular cells situated medially in the prosthetic valve, forming a circular outflow track, wherein the annular cells are more rigid than the inflow cells; and

a plurality of leaflet posts integral to, and extending distally beyond, the annular cells in an outflow direction of the prosthetic valve, wherein the leaflet posts are more rigid than the annular cells;

wherein each of the plurality of leaflet posts is associated with a corresponding one of the plurality of anchor receptacles situated between a proximal end of the associated leaflet post and the plurality of inflow cells.

2. The prosthetic valve of claim 1 , wherein the plurality of the inflow cells extends radially in a distal direction.

3. The prosthetic valve of claim 1 , wherein each of the anchor receptacles are configured to receive an anchor including a distal end tapered to a distal tip configured to pierce and anchor into tissue, a proximal head, and a tension component, situated between the distal end and the proximal head;

wherein the anchor receptacles are large enough to permit the passage of the distal end of the anchor through the anchor receptacle and into surrounding tissue, and small enough to prevent the passage of the proximal head through the anchor receptacle, such that, after deployment of the anchor the tension component is situated in a tensioned state against the anchor receptacle and the tissue to bring the prosthetic valve into apposition with the tissue.

4. The prosthetic valve of claim 1 , further comprising valve leaflets connected between the leaflet posts.

5. The prosthetic valve of claim 1 , further comprising a woven covering.

6. The prosthetic valve of claim 1 , wherein each of the anchor receptacles are configured to receive an anchor, wherein the anchor comprises:

a distal end tapered to a distal tip configured to pierce and anchor into tissue; a proximal head; and

a tension component integrally connected with the distal end and the proximal head; wherein the tension component is configured to exert a force on the proximal head when the distal end is anchored into the tissue.

7. The prosthetic valve of claim 1 , wherein each of the anchor receptacles are configured to receive an anchor, wherein each anchor includes:

a distal end tapered to a distal tip configured to pierce and anchor tissue;

a proximal head having a width greater than a width of the corresponding anchor receptacle; and

a tension component between the distal end and the proximal head;

wherein the distal end of the anchor is configured to be driven by a deployment device through the corresponding anchor receptacle into tissue adjacent to the prosthetic valve, and further wherein a proximal end of the proximal head of the deployed anchor is configured to be brought into apposition with the corresponding anchor receptacle, such that, after deployment of the anchor into tissue, the tension component is in a tensioned state to exert a pulling force on the proximal head of the anchor so that the proximal head acting on the anchor receptacle of the prosthetic valve will approximate the prosthetic valve with the tissue.

8. The prosthetic valve of claim 1 , wherein a plurality of anchors are configured to be driven by a deployment device through the plurality of anchor receptacles into tissue adjacent to the prosthetic valve, the deployment device comprising:

a retractable sheath covering a cavity for housing the prosthetic valve in a retracted state;

a plurality of deployment arms, each arm including a cavity for housing each anchor; a force delivery device; and

a shaft connecting the force delivery device to the deployment arms;

wherein each of the deployment arms is configured to rotate from a retracted position aligned with an axis of the deployment device to a deployed position directed radially away from the axis; and

wherein the force delivery device is configured to exert a force through the shaft and the deployment arms to drive the anchors into tissue from the cavity of the deployment arms.

9. The prosthetic valve of claim 1 , further comprising an anchor adapted to be received in each anchor receptacle, each anchor including a distal end tapered to a distal tip configured to pierce and anchor into tissue, a proximal head, and a tension component, situated between the distal end and the proximal head;

wherein the anchor receptacles are large enough to permit the passage of the distal end of the anchor through the anchor receptacle and into surrounding tissue, and small enough to prevent the passage of the proximal head through the anchor receptacle, such that, after deployment of the anchor the tension component is situated in a tensioned state against the anchor receptacle and the tissue to bring the prosthetic valve into apposition with the tissue.

10. The prosthetic valve of claim 1 , further comprising an anchor adapted to be received in each anchor receptacle, wherein each anchor includes:

a distal end tapered to a distal tip configured to pierce and anchor into tissue; a proximal head; and

a tension component integrally connected with the distal end and the proximal head; and

wherein the tension component is configured to exert a force on the proximal head when the distal end is anchored into the tissue.

11. The prosthetic valve of claim 1 , further comprising an anchor adapted to be received in each anchor receptacle are configured to receive an anchor, wherein each anchor includes:

a distal end tapered to a distal tip configured to pierce and anchor tissue; a proximal head having a width greater than a width of the corresponding anchor receptacle; and

a tension component between the distal end and the proximal head;

wherein the distal end of the anchor is configured to be driven by a deployment device through the corresponding anchor receptacle into tissue adjacent to the prosthetic valve, and further wherein a proximal end of the proximal head of the deployed anchor is configured to be brought into apposition with the corresponding anchor receptacle, such that, after deployment of the anchor into tissue, the tension component is in a tensioned state to exert a pulling force on the proximal head of the anchor so that the proximal head acting on the anchor receptacle of the prosthetic valve will approximate the prosthetic valve with the tissue.

12. The prosthetic valve of claim 1 , further comprising a plurality of anchors configured to be driven by a deployment device through the plurality of anchor receptacles into tissue adjacent to the prosthetic valve, the deployment device comprising:

a retractable sheath covering a cavity for housing the prosthetic valve in a retracted state;

a plurality of deployment arms, each arm including a cavity for housing each anchor; a force delivery device; and

a shaft connecting the force delivery device to the deployment arms;

wherein each of the deployment arms is configured to rotate from a retracted position aligned with an axis of the deployment device to a deployed position directed radially away from the axis; and

wherein the force delivery device is configured to exert a force through the shaft and the deployment arms to drive the anchors into tissue from the cavity of the deployment arms.

13. The prosthetic valve of claim 1 , wherein the prosthetic valve wall varies in thickness between a proximal end and a distal end.

14. The prosthetic valve of claim 1 , wherein:

the plurality of inflow cells are associated with a first wall thickness;

the plurality of annular cells are associated with a second wall thickness; and

the plurality of leaflet posts are associated with a third wall thickness, wherein the second wall thickness is greater than the first wall thickness, and the third wall thickness is greater than the second wall thickness.

15. A prosthetic valve, comprising:

a plurality of inflow cells situated in a proximal direction of the prosthetic valve;

a plurality of annular cells situated medially in the prosthetic valve, forming a circular outflow track; and

a plurality of leaflet posts integral to, and extending distally beyond, the annular cells in an outflow direction of the prosthetic valve;

wherein the prosthetic valve includes a variable wall thickness;

wherein the plurality of inflow cells are associated with a first wall thickness; the plurality of annular cells are associated with a second wall thickness; and the plurality of leaflet posts are associated with a third wall thickness;

wherein the first wall thickness is distinct from at least one of the second wall thickness and the third wall thickness; and

wherein the second wall thickness is greater than the first wall thickness, and the third wall thickness is greater than the second wall thickness.

16. The prosthetic valve of claim 15 , wherein the plurality of the inflow cells extends radially in a distal direction.

17. The prosthetic valve of claim 15 , further comprising valve leaflets connected between the leaflet posts.

18. A prosthetic valve, comprising:

a plurality of inflow cells situated in a proximal direction of the prosthetic valve;

a plurality of annular cells situated medially in the prosthetic valve, forming a circular outflow track; and

a plurality of leaflet posts integral to, and extending distally beyond, the annular cells in an outflow direction of the prosthetic valve;

a plurality of anchor receptacles;

wherein the prosthetic valve includes a variable wall thickness; and

wherein the inflow cells are malleable, the annular cells are more rigid than the inflow cells, the leaflet posts are more rigid than the annular cells, and each of the plurality of leaflet posts is associated with a corresponding one of the plurality of anchor receptacles situated between a proximal end of the associated leaflet post and the plurality of inflow cells.

19. The prosthetic valve of claim 18 , wherein the plurality of the inflow cells extends radially in a distal direction.

20. The prosthetic valve of claim 18 , further comprising valve leaflets connected between the leaflet posts.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 4, 2018
From: WHITMAN, MICHAEL P.
To: MICRO INTERVENTIONAL DEVICES, INC.
Reel/Frame 044539/0621 →
Continuity (4)
Continuation In Part 14737408 · Jun 11, 2015
Provisional Application 62088680 · Dec 7, 2014
Provisional Application 62010680 · Jun 11, 2014
Related Publication 20160095704A1 · Apr 7, 2016
Cited By (6)
US 1,117,764 US 12,220,314 US 12,376,962 US 12,440,324 US 12,478,470 US 12,485,007