IP Library Granted Patent US 11,684,695
Granted Patent B2
US 11,684,695 · App. 16/089,243 · Granted Jun 27, 2023

Silk fibroin biocompatible polyurethane membranes

Inventors: Marcus Atlas (Subiaco, AU); Benjamin Allardyce (Ocean Grove, AU); Rodney Dilley (City Beach, AU); Rangam Rajkhowa (Grovedale, AU)
Assignees: Ear Science Institute Australia; Deakin University
A61L27/3604A61F2/18A61L27/225A61L27/26A61L27/44A61L27/54C08L75/04C08L89/04A61F2002/183A61L2300/40A61L2430/14
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 11,684,695
App. No.
16/089,243
Granted
Jun 27, 2023
Kind
B2
Abstract

The present invention relates to the preparation of a membrane for use in the repair of the middle ear including perforations and damage to the tympanic membrane. More particularly, the invention provides for compositions and methods for preparing silk fibroin biocompatible polyurethane membranes using a solvent, which have improved biodegradation, mechanical and vibroacoustic properties.

Claims (24)

1. A silk fibroin biocompatible polyurethane membrane matrix for use as a tympanic membrane, or as a scaffold for the regeneration of a tympanic membrane, wherein the membrane matrix:

(a) includes a blend of silk fibroin and at least 90% w/w biocompatible polyurethane;

(b) transmits sound waves between 20 Hz and 20 KHz to the middle ear in vivo; and

(c) has a tensile strength between 5 MPa to 100 MPa.

2. The silk fibroin biocompatible polyurethane membrane matrix according to claim further comprising a plurality of membrane matrices.

3. A method of fabricating a silk fibroin biocompatible polyurethane membrane matrix according to claim 1 comprising the steps of:

(a) preparing silk protein or a silk protein complex solution after removal of sericin from a cocoon or fibre;

(b) dissolving biocompatible polyurethane and silk protein using a solvent; and

(c) drying the prepared solution to fabricate a silk protein biocompatible polyurethane membrane matrix having at least 90% w/w biocompatible polyurethane.

4. A silk fibroin biocompatible polyurethane membrane matrix prepared according to the method of claim 3 .

5. A silk fibroin biocompatible polyurethane membrane matrix according to claim 1 , comprising at least one active agent.

6. A silk fibroin biocompatible polyurethane membrane matrix according to claim 5 , wherein the active agent is selected from the group consisting of: cells, proteins, peptides, nucleic acid analogues, nucleotides or oligonucleotides, peptide nucleic acids, aptamers, antibodies or fragments or portions thereof, hormones, hormone antagonists, growth factors or recombinant, growth factors and fragments and variants thereof, cytokines, enzymes, antibiotics or antimicrobial compounds, viruses, antivirals, toxins, prodrugs, chemotherapeutic agents, small molecules, drugs, and combinations thereof.

7. The silk fibroin biocompatible polyurethane membrane matrix according to claim 5 , wherein the membrane supports growth of keratinocytes, fibroblasts, mucosal epithelium, endothelial cells, chondrocytes, induced pluripotent stem cells, adult stem cells and embryonic stem cells, and combinations thereof.

8. The silk fibroin biocompatible polyurethane membrane matrix according to claim 5 , wherein the membrane matrix is resistant to degradation and/or provides long term structural support to resist retraction, atelectasis and cholesteatoma.

9. A device comprising the silk fibroin biocompatible polyurethane membrane matrix according to claim 1 .

10. The device according to claim 9 , further comprising a plurality of silk fibroin biocompatible polyurethane membrane matrices.

11. A silk fibroin biocompatible polyurethane membrane matrix according to claim 4 , comprising at least one active agent.

12. The silk fibroin biocompatible polyurethane membrane matrix according to claim 11 , wherein the membrane supports growth of keratinocytes, fibroblasts, mucosal epithelium, endothelial cells, chondrocytes, induced pluripotent stem cells, adult stem cells and embryonic stem cells, and combinations thereof.

13. The silk fibroin biocompatible polyurethane membrane matrix according to claim 11 , wherein the membrane matrix is resistant to degradation and/or provides long term structural support to resist retraction, atelectasis and cholesteatoma.

14. The device according to claim 9 and further comprising at least one active agent.

15. The silk fibroin biocompatible polyurethane membrane matrix of claim 1 wherein the biocompatible polyurethane comprises a dihydroxypropyl poly(dimethylsiloxane) moiety.

16. A silk fibroin biocompatible polyurethane membrane matrix comprising a blend of silk fibroin and

at least 90% w/w of a biocompatible polyurethane comprising a dihydroxypropyl poly(dimethylsiloxane) moiety,

wherein the membrane matrix transmits sound waves between 20 Hz and 20 KHz to the middle ear in vivo and has a tensile strength between 5 MPa and 100 MPa.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 13, 2025
From: DEAKIN UNIVERSITY
To: EAR SCIENCE INSTITUTE AUSTRALIA INCORPORATED
Reel/Frame 071405/0189 →
CHANGE OF NAME Recorded Jun 11, 2025
From: EAR SCIENCE INSTITUTE AUSTRALIA
To: EAR SCIENCE INSTITUTE AUSTRALIA INCORPORATED
Reel/Frame 071543/0056 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2018
From: ATLAS, MARCUS; ALLARDYCE, BENJAMIN; DILLEY, RODNEY; RAJKHOWA, RANGAM
To: EAR SCIENCE INSTITUTE AUSTRALIA; DEAKIN UNIVERSITY
Reel/Frame 046998/0705 →
Priority Claims (1)
AU 2016901399 · Apr 14, 2016 · national
Continuity (1)
Related Publication 20200306411A1 · Oct 1, 2020