IP Library Granted Patent US 10,617,512
Granted Patent B2
US 10,617,512 · App. 16/540,548 · Granted Apr 14, 2020

Biomedical patches with aligned fibers

Inventors: Matthew R. MacEwan (St. Louis, MO); Jingwei Xie (St. Louis, MO); Zack Ray (St. Louis, MO); Younan Xia (St. Louis, MO)
Assignee: Washington University
A61F2/02A61L15/22A61L15/42A61L27/14A61L27/50B29C48/05B29C48/142D01D5/0076D01D5/0092D04H1/728D04H3/016D04H3/073C12M25/14
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Quick Facts
Patent No.
US 10,617,512
App. No.
16/540,548
Granted
Apr 14, 2020
Kind
B2
Abstract

A multi-laminar electrospun nanofiber scaffold for use in repairing a defect in a tissue substrate is provided. The scaffold includes a first layer formed by a first plurality of electrospun polymeric fibers, and a second layer formed by a second plurality of electrospun polymeric fibers. The second layer is combined with the first layer. A first portion of the scaffold includes a higher density of fibers than a second portion of the scaffold, and the first portion has a higher tensile strength than the second portion. The scaffold is configured to degrade via hydrolysis after at least one of a predetermined time or an environmental condition. The scaffold is configured to be applied to the tissue substrate containing the defect, and is sufficiently flexible to facilitate application of the scaffold to uneven surfaces of the tissue substrate, and to enable movement of the scaffold by the tissue substrate.

Claims (42)

1. A multi-laminar electrospun nanofiber scaffold for use in repairing a defect in a tissue substrate, the multi-laminar electrospun nanofiber scaffold comprising:

a first layer formed by a first plurality of deposited electrospun polymeric fibers; and

a second layer formed by a second plurality of deposited electrospun polymeric fibers, wherein the second layer is combined with the first layer,

wherein at least a first portion of the multi-laminar electrospun nanofiber scaffold comprises a higher density of fibers than a second portion of the multi-laminar electrospun nanofiber scaffold, wherein the first portion comprises a higher tensile strength than the second portion,

wherein the multi-laminar electrospun nanofiber scaffold is configured to degrade via hydrolysis after at least one of a predetermined time or an environmental condition,

wherein the multi-laminar electrospun nanofiber scaffold is configured to be applied to the tissue substrate containing the defect,

wherein the multi-laminar electrospun nanofiber scaffold comprises varying density to be sufficiently flexible to facilitate application of the multi-laminar electrospun nanofiber scaffold to uneven surfaces of the tissue substrate, and

wherein the multi-laminar electrospun nanofiber scaffold comprises varying density to be sufficiently flexible to enable movement of the multi-laminar electrospun nanofiber scaffold by the tissue substrate.

2. The multi-laminar electrospun nanofiber scaffold of claim 1 , wherein the first plurality of deposited electrospun polymeric fibers comprises polyglycolic acid.

3. The multi-laminar electrospun nanofiber scaffold of claim 1 , wherein the second plurality of deposited electrospun polymeric fibers comprises caprolactone.

4. The multi-laminar electrospun nanofiber scaffold of claim 1 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are radially aligned.

5. The multi-laminar electrospun nanofiber scaffold of claim 1 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are non-radially aligned.

6. The multi-laminar electrospun nanofiber scaffold of claim 1 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are randomly oriented.

7. The multi-laminar electrospun nanofiber scaffold of claim 1 , wherein the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are non-radially aligned.

8. A multi-laminar electrospun nanofiber scaffold for use in repairing a defect in a tissue substrate, the multi-laminar electrospun nanofiber scaffold comprising:

a first layer formed by a first plurality of deposited electrospun polymeric fibers; and

a second layer formed by a second plurality of deposited electrospun polymeric fibers, wherein the second layer is combined with the first layer,

wherein at least a first portion of the multi-laminar electrospun nanofiber scaffold comprises a higher density of fibers than a second portion of the multi-laminar electrospun nanofiber scaffold, wherein the first portion comprises a higher tensile strength than the second portion,

wherein the first layer and the second layer are configured to separate via hydrolysis after at least one of a predetermined time or an environmental condition,

wherein the multi-laminar electrospun nanofiber scaffold is configured to be applied to the tissue substrate containing the defect,

wherein the multi-laminar electrospun nanofiber scaffold comprises varying density to be sufficiently flexible to facilitate application of the multi-laminar electrospun nanofiber scaffold to uneven surfaces of the tissue substrate, and

wherein the multi-laminar electrospun nanofiber scaffold comprises varying density to be sufficiently flexible to enable movement of the multi-laminar electrospun nanofiber scaffold by the tissue substrate.

9. The multi-laminar electrospun nanofiber scaffold of claim 8 , wherein the first plurality of deposited electrospun polymeric fibers comprises polyglycolic acid.

10. The multi-laminar electrospun nanofiber scaffold of claim 8 , wherein the second plurality of deposited electrospun polymeric fibers comprises caprolactone.

11. The multi-laminar electrospun nanofiber scaffold of claim 8 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are radially aligned.

12. The multi-laminar electrospun nanofiber scaffold of claim 8 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are non-radially aligned.

13. The multi-laminar electrospun nanofiber scaffold of claim 8 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are randomly oriented.

14. The multi-laminar electrospun nanofiber scaffold of claim 8 , wherein the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are non-radially aligned.

15. A three-dimensional electrospun nanofiber scaffold for use in repairing a defect in a tissue substrate, the three-dimensional electrospun nanofiber scaffold comprising:

a first layer formed by a first plurality of deposited electrospun polymeric fibers; and

a second layer formed by a second plurality of deposited electrospun polymeric fibers, wherein the second layer is combined with the first layer,

wherein at least a first portion of the three-dimensional electrospun nanofiber scaffold comprises a higher density of fibers than a second portion of the three-dimensional electrospun nanofiber scaffold,

wherein the first portion comprises a higher tensile strength than the second portion,

wherein the three-dimensional electrospun nanofiber scaffold is configured to degrade via hydrolysis after at least one of a predetermined time or an environmental condition,

wherein the three-dimensional electrospun nanofiber scaffold is configured to be applied to the tissue substrate containing the defect,

wherein the three-dimensional electrospun nanofiber scaffold comprises varying density to be sufficiently flexible to facilitate application of the three-dimensional electrospun nanofiber scaffold to uneven surfaces of the tissue substrate, and

wherein the three-dimensional electrospun nanofiber scaffold comprises varying density to be sufficiently flexible to enable movement of the three-dimensional electrospun nanofiber scaffold by the tissue substrate.

16. The three-dimensional electrospun nanofiber scaffold of claim 15 , wherein the first plurality of deposited electrospun polymeric fibers comprises polyglycolic acid.

17. The three-dimensional electrospun nanofiber scaffold of claim 15 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are radially aligned.

18. The three-dimensional electrospun nanofiber scaffold of claim 15 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are non-radially aligned.

19. The three-dimensional electrospun nanofiber scaffold of claim 15 , wherein at least one of the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are randomly oriented.

20. The three-dimensional electrospun nanofiber scaffold of claim 15 , wherein the first plurality of deposited electrospun polymeric fibers and the second plurality of deposited electrospun polymeric fibers are non-radially aligned.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 21, 2019
From: MACEWAN, MATTHEW R.; XIA, YOUNAN; XIE, JINGWEI; RAY, ZACK
To: WASHINGTON UNIVERSITY
Reel/Frame 050116/0104 →
Continuity (4)
Continuation 15497691 · Apr 26, 2017
Continuation 13703210
Provisional Application 61355712 · Jun 17, 2010
Related Publication 20190365520A1 · Dec 5, 2019
Cited By (6)
US 12,201,648 US 12,201,749 US 12,246,114 US 12,263,269 US 12,491,061 US 12,564,658