IP Library Granted Patent US 10,064,736
Granted Patent B2
US 10,064,736 · App. 15/188,654 · Granted Sep 4, 2018

Engineered intervertebral disc (IVD) for degenerated disc disease

Inventors: Morshed Khandaker (Edmond, OK); Shahram Riahinezhad (Edmond, OK)
Assignee: University of Central Oklahoma
A61F2/441A61L27/18A61L27/34A61L27/3817A61L27/3856A61L27/52A61F2002/4495A61L27/26A61L2400/12A61L2430/38
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Quick Facts
Patent No.
US 10,064,736
App. No.
15/188,654
Granted
Sep 4, 2018
Kind
B2
Abstract

The present invention provides a process by which both non-tissue engineered and tissue engineered cartilaginous-like structures can be fabricated. The process of the present invention provides a method to produce electrospun nanofiber-anchored NP gels. The present invention provides a functional design for novel engineered IVD. The present invention provides a method for fabrication of both non-tissue and tissue engineered IVDs. These cartilaginous-like structures can be used to produce replacements for degenerated natural IVD. The method of the present invention uses electrospun PCL nanofiber mesh to anchor the NP. The method of the present invention can create angle-ply AF structure around the circumference of NP to mimic the architecture of native IVD. The method of the present invention anchors the top and bottom sides of NP by using non-woven aligned or random nanofiber mesh to create scaffold for the generation of endplate (EP) tissue.

Claims (36)

1. An engineered intervertebral disc (IVD) comprising:

a solid compressible disc consisting of one of swelled or unswelled nucleus pulposus (NP) gel, said disc further comprising a first surface, a second surface, and a circumferential surface;

at least one layer of nanofibers being one of aligned or randomly oriented and adjoining said first surface, said second surface, and overlapping on said circumferential surface;

a nanofiber scaffold structure encompassing said at least one layer of nanofibers overlapping on said circumferential surface, said nanofiber scaffold structure consisting of multiple layers of nanofibers, said nanofibers in each layer being applied as single strips of aligned substantially parallel nanofibers arranged concentrically around said circumferential surface and directionally alternating relative to fibers in an adjacent layer, and

wherein said nanofiber scaffold structure comprises an angle-ply mesh structure,

wherein said engineered IVD mimics the architecture of natural IVD, and

wherein nanofibers encompass all surfaces of said engineered IVD.

2. The engineered IVD of claim 1 , wherein said engineered IVD is adapted to exhibit structural characteristics similar to native annulus fibrous (AF) and end plate (EP) in a natural IVD, substantially replicating at least biomechanical behavior of the annulus fibrous (AF).

3. The engineered IVD of claim 2 , wherein said NP gel comprises one of silicone, PEGDA, or composite layers of PCL nanofiber and PEGDA.

4. The engineered IVD of claim 3 , wherein said composite layers of PCL nanofiber and PEGDA comprise a three-dimensional NP scaffold.

5. The engineered IVD of claim 4 , wherein at least one of natural NP, AF, and cartilage cells are seeded into said NP scaffold.

6. The engineered IVD of claim 1 , further comprising a composite scaffold made with multiple layers of randomly oriented or aligned nanofibers and multiple layers of PEGDA hydrogel discs.

7. The engineered IVD of claim 1 , further comprising NP cell hydrogel.

8. The engineered IVD of claim 7 , wherein said NP cell hydrogel is seeded by cell injection.

9. The engineered IVD of claim 1 , wherein said mesh structure is adapted to support osteoblast cell adhesion and proliferation.

10. The engineered IVD of claim 1 , further comprising a non-tissue or a tissue engineered IVD.

11. An engineered intervertebral disc (IVD), comprising:

nucleus pulposus (NP) gel in a solid compressible shape, said shape comprising a first surface, a second surface, and a circumferential surface;

at least one layer of aligned or randomly oriented nanofibers adjoined to said first surface and said second surface and forming an end plate on each said surface, said end plates interconnected one to the other by nanofibers overlapping on to said circumferential surface;

a nanofiber scaffold structure adjoining said circumferential surface, said nanofiber scaffold structure consisting of multiple layers of nanofibers, said nanofibers in each layer being applied as single strips of aligned substantially parallel nanofibers arranged concentrically around said circumferential surface and directionally alternating relative to fibers in an adjacent layer,

wherein said NP gel comprises at least silicone,

wherein said single strips of aligned substantially parallel nanofibers are applied to said circumferential surface by intercepting electrospun nanofibers extended between opposing collectors comprising any one of charged wires, plates or rotating discs,

wherein said engineered IVD mimics the architecture of natural IVD, and

wherein nanofibers encompass all surfaces of said engineered IVD.

12. The engineered intervertebral disc (IVD) of claim 11 , wherein said fibers in one layer of said nanofiber structure are angled at an oblique angle in the range of 40 to 80 degrees and preferably 60 degrees with respect to fibers in adjacent layers to mimic natural IVD annual fibrous (AF).

13. An engineered intervertebral disc (IVD), comprising:

multiple composite layers of nucleus pulposus (NP) gel and PCL nanofibers collectively forming a solid compressible shape, said shape comprising a first surface, a second surface, and a circumferential surface;

at least one layer of aligned or randomly oriented nanofibers adjoined to said first surface, said second surface, and overlapping on to said circumferential surface, and forming an end plate on each said first and second surface, said end plates interconnected one to the other by said nanofibers overlapping on to said circumferential surface;

a nanofiber scaffold structure encompassing said at least one layer of aligned or randomly oriented nanofiber overlapping on said circumferential surface, said nanofiber scaffold structure consisting of multiple layers of nanofibers, said nanofibers in each layer being applied as single strips of aligned substantially parallel nanofibers arranged concentrically around said circumferential surface and directionally alternating relative to fibers in an adjacent layer,

wherein said NP gel comprises one of PEGDA, or layers of composite of PCL nanofiber and PEGDA,

wherein said single strips of aligned substantially parallel nanofibers are applied to said circumferential surface by intercepting electrospun nanofibers extended between opposing collectors comprising any one of charged wires, plates or rotating discs,

wherein said engineered IVD mimics the architecture of natural IVD, and

wherein nanofibers encompass all surfaces of said engineered IVD.

14. The engineered IVD of claim 13 , wherein said composite of PCL nanofiber and PEGDA layers form a three-dimensional NP scaffold.

15. The engineered IVD of claim 14 , wherein said three-dimensional NP scaffold is stable absent PEGDA when said PEGDA is disintegrated.

16. The engineered IVD of claim 15 , wherein any of natural NP, AF and cartilage cells are seeded into said NP scaffold absent PEGDA.

Assignments (2)
CONFIRMATORY LICENSE Recorded May 15, 2017
From: UNIVERSITY OF CENTRAL OKLAHOMA
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 042464/0020 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 8, 2016
From: KHANDAKER, MORSHED; RIAHINEZHAD, SHAHRAM
To: UNIVERSITY OF CENTRAL OKLAHOMA
Reel/Frame 039108/0301 →
Continuity (3)
Provisional Application 62279136 · Jan 15, 2016
Provisional Application 62184298 · Jun 25, 2015
Related Publication 20160374820A1 · Dec 29, 2016