IP Library Granted Patent US 9,839,724
Granted Patent B2
US 9,839,724 · App. 15/464,298 · Granted Dec 12, 2017

System and stent for repairing endovascular defects and methods of use

Inventors: Jean Paul Allain (West Lafayette, IN); Lisa Reece (Lafayette, IN); Zhangcan Yang (West Lafayette, IN); Rocco Armonda (Bethesda, MD); Ravindra Kempaiah (West Lafayette, IN); Teodoro Tigno (Gaithersburg, MD)
Assignees: Purdue Research Foundation; The Henry M. Jackson Foundation for the Advancement of Military Medicine, Inc.
A61L31/082A61F2/07A61F2/86A61L31/16A61F2/95A61F2210/009A61L2300/64A61L2400/18A61L2420/08
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Quick Facts
Patent No.
US 9,839,724
App. No.
15/464,298
Granted
Dec 12, 2017
Kind
B2
Abstract

Disclosed are endovascular stents in which a portion of the stents have a bioactive coating for promoting repair of damaged vessels, systems comprising the stents, and methods of using the stents to promote occlusion of aneurysms and/or repair damaged vessels.

Claims (22)

1. A coating for improving cellular adhesion, differentiation, and proliferation for use with stents, the coating comprising:

a layer of a magnetic material deposited on a portion of an outer surface of the stent, wherein the magnetic material comprises a bacterial nanocellulose polymer impregnated with a magnetic metal material; and

an ion-beam nanostructured biocompatible layer deposited on the layer of magnetic material.

2. The coating of claim 1 , wherein the ion-beam nanostructured biocompatible layer comprises gold.

3. The coating of claim 1 , wherein the ion-beam nanostructured biocompatible layer is produced during irradiation by ion sputtering.

4. The coating of claim 1 , wherein the magnetic metal material is nickel.

5. The coating of claim 1 , wherein the magnetic material comprises endothelial cells.

6. The coating of claim 1 further comprising a plurality of nanoscale particles embedded in the coating to provide radiation-enhanced tomography for visualization of a stent surface.

7. The coating of claim 1 further comprising a chromium layer positioned between the layer of magnetic material and the outer surface of the stent.

8. The coating of claim 1 further comprising a bioactive layer formed on the ion-beam nanostructured biocompatible layer.

9. The coating of claim 8 , wherein the bioactive layer comprises porcine coronary smooth muscle (PCSM).

10. A coating for improving cellular adhesion, differentiation, and proliferation for use with a stent, the coating comprising:

a chromium layer deposited on an outer surface of the stent;

a layer of a magnetic material deposited on a portion of the chromium layer, wherein the magnetic material comprises a polymer impregnated with a magnetic metal material;

an ion-beam nanostructured biocompatible layer deposited on the layer of magnetic material; and

a bioactive layer formed on the ion-beam nanostructured biocompatible layer.

11. The coating of claim 10 , wherein the ion-beam nanostructured biocompatible layer is produced during irradiation by ion sputtering.

12. The coating of claim 10 , wherein the magnetic metal material is nickel.

13. The coating of claim 10 , wherein the polymer is bacterial nanocellulose.

14. The coating of claim 10 , wherein the magnetic material comprises endothelial cells.

15. The coating of claim 10 further comprising a plurality of nanoscale particles embedded in the coating to provide radiation-enhanced tomography for visualization of a stent surface.

16. The coating of claim 10 , wherein the bioactive layer comprises porcine coronary smooth muscle (PCSM).

Assignments (1)
CONFIRMATORY LICENSE Recorded Oct 31, 2022
From: PURDUE UNIVERSITY
To: UNITED STATES GOVERNMENT
Reel/Frame 061806/0814 →
Continuity (3)
Continuation 14349865
Provisional Application 61544104 · Oct 6, 2011
Related Publication 20170189584A1 · Jul 6, 2017