IP Library Granted Patent US 9,211,256
Granted Patent B2
US 9,211,256 · App. 13/295,515 · Granted Dec 15, 2015

Wound healing compositions comprising biocompatible cellulose hydrogel membranes and methods of use thereof

Inventors: Morgana M. Trexler (Baltimore, MD); Jenna L. Graham (Columbia, MD); Jennifer L. Breidenich (Atlanta, GA); Jeffrey P. Maranchi (Clarksburg, MD); Julia B. Patrone (Laurel, MD); Marcia W. Patchan (Columbia, MD); Jennifer H. Elisseeff (Baltimore, MD); Xiomara Calderon-Colon (Laurel, MD); Daniel Mulreany (Baltimore, MD); Qiongyu Guo (Baltimore, MD)
Assignee: The Johns Hopkins University
A61K9/0051A61K31/00A61K38/39A61L15/42A61L15/44A61L15/60A61K35/12A61L2300/62A61L2300/64A61L2430/16
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Quick Facts
Patent No.
US 9,211,256
App. No.
13/295,515
Granted
Dec 15, 2015
Kind
B2
Abstract

The present invention provides a wound healing composition comprising a biocompatible hydrogel membrane wherein the hydrogel membrane has one or more of the following properties: high water content, high transparency, high permeability, high biocompatibility, high tensile strength and an optimal thickness. The invention further provides methods of treating a wound in a subject in need thereof, comprising contacting the wound with a biocompatible cellulose hydrogel membrane of the invention.

Claims (27)

1. A method of treating a wound in a subject in need thereof, comprising contacting the wound with an effective amount of a re-wet biocompatible cellulose hydrogel membrane, wherein the re-wet biocompatible cellulose hydrogel membrane comprises one or more properties selected from the group consisting of: a cellulose content of from about 40% to about 65% by weight; a tensile strength of from about 1000 kPa to about 5000 kPa; a tear strength of from about 3.0 N/mm to about 12 N/mm; a strain to failure of from about 20% to about 40%; a suture retention strength of from about 1.0 N/mm to about 7.0 N/mm; a transparency that exceeds 85% at 550 nm (at 100 microns thickness); Young's modulus of from about 4000 kPa to about 15000 kPa; and a puncture resistance of from about 3 MPa to about 5 Mpa;

wherein said re-wet biocompatible cellulose hydrogel membrane comprises a composite comprising microcrystalline cellulose and bacterial cellulose, said re-wet biocompatible cellulose hydrogel membrane further comprises one or more microcrystalline cellulose layers and one or more bacterial cellulose layers, wherein the one or more bacterial cellulose layers are oriented closer to the wound than the one or more microcrystalline cellulose layers, and

wherein the hydrogel membrane is in the shape of a contact lens.

2. The method of claim 1 , wherein the hydrogel membrane further comprises a bioactive agent located on or within the membrane.

3. The method of claim 2 , wherein the bioactive agent is selected from the group consisting of proteins, peptides, carbohydrates, lipids, nucleic acids and fragments thereof, anti-viral compounds, anti-inflammatory compounds, antibiotic compounds such as antifungal and antibacterial compounds, cell differentiating agents, analgesics, contrast agents for medical diagnostic imaging, enzymes, cytokines, anaesthetics, antihistamines, agents that act on the immune system, hemostatic agents, hormones, angiogenic or anti-angiogenic agents, neurotransmitters, therapeutic oligonucleotides, viral particles, vectors, growth factors, retinoids, cell adhesion factors, extracellular matrix glycoproteins (such as laminin), osteogenic factors, antibodies and antigens.

4. The method of claim 1 , wherein the hydrogel membrane has a thickness of about 50 to about 200 microns.

5. The method of claim 2 , wherein the bioactive agent is encapsulated in the hydrogel membrane with an encapsulating agent.

6. The method of claim 5 , wherein the bioactive agent exhibits controlled release from the hydrogel membrane.

7. The method of claim 5 , wherein the bioactive agent is contained within nano- or microparticles within the hydrogel membrane.

8. The method of claim 1 , wherein the hydrogel membrane supports the growth of cells on or within the membrane.

9. The method of claim 8 , wherein the cells are selected from the group consisting of stem cells, progenitor cells, precursor cells, connective tissue cells, epithelial cells, muscle cells, neuronal cells, endothelial cells, fibroblasts, keratinocytes, smooth muscle cells, stromal cells, mesenchymal cells, immune system cells, hematopoietic cells, dendritic cells, hair follicle cells and combinations thereof.

10. The method of claim 9 , wherein the cells are able to grow on top of the hydrogel membrane in a layered fashion or migrate within the hydrogel membrane.

11. The method of claim 1 , wherein the hydrogel membrane comprises one or more cellulose fiber layers.

12. The method of claim 1 , wherein the transparency of the hydrogel membrane exceeds 90% at 550 nm for a 100 micron thick gel.

13. The method of claim 12 , wherein the transparency of the hydrogel membrane exceeds 95% at 550 nm for a 100 micron thick gel.

14. The method of claim 1 , wherein the cellulose is functionalized with one or more amine groups.

15. A wound healing composition comprising a re-wet biocompatible cellulose hydrogel membrane, wherein the re-wet cellulose hydrogel membrane comprises one or more properties selected from the group consisting of: a cellulose content of from about 40% to about 65% by weight; a tensile strength of from about 1000 kPa to about 5000 kPa; a tear strength of from about 3.0 N/mm to about 12 N/mm; a strain to failure of from about 20% to about 40%; a suture retention strength of from about 1.0 N/mm to about 7.0 N/mm; a transparency that exceeds 85% at 550 nm at 100 microns thickness; Young's modulus of from about 4000 kPa to about 15000 kPa; and a puncture resistance of from about 3 MPa to about 5 Mpa;

wherein said re-wet biocompatible cellulose hydrogel membrane comprises a composite comprising microcrystalline cellulose and bacterial cellulose, said re-wet biocompatible cellulose hydrogel membrane further comprises one or more microcrystalline cellulose layers and one or more bacterial cellulose layers, wherein the one or more microcrystalline cellulose layers are positioned on top of the one or more bacterial cellulose layers, and

wherein the hydrogel membrane is in the shape of a contact lens.

16. The wound healing composition of claim 15 , wherein the membrane is configured for implantation in an eye.

17. The wound healing composition of claim 15 , wherein the membrane is configured to replace all or a portion of a cornea of an eye.

18. The wound healing composition of claim 15 , wherein the cellulose hydrogel membrane further comprises a bioactive agent located on or within the membrane.

19. The wound healing composition of claim 18 , wherein the bioactive agent is selected from the group consisting of proteins, peptides, carbohydrates, lipids, nucleic acids and fragments thereof, anti-viral compounds, anti-inflammatory compounds, antibiotic compounds such as antifungal and antibacterial compounds, cell differentiating agents, analgesics, contrast agents for medical diagnostic imaging, enzymes, cytokines, anaesthetics, antihistamines, agents that act on the immune system, hemostatic agents, hormones, angiogenic or anti-angiogenic agents, neurotransmitters, therapeutic oligonucleotides, viral particles, vectors, growth factors, retinoids, cell adhesion factors, extracellular matrix glycoproteins (such as laminin), osteogenic factors, antibodies and antigens.

20. The wound healing composition of claim 15 , wherein the hydrogel membrane has a thickness of about 100 microns.

21. The wound healing composition of claim 19 , wherein the bioactive agent is contained within nano- or microparticles dispersed within the cellulose hydrogel membrane.

22. The wound healing composition of claim 15 , wherein the transparency of the hydrogel exceeds 95% at 550 nm.

23. The wound healing composition of claim 15 , wherein the hydrogel is a composite comprising microcrystalline cellulose and bacterial cellulose.

Assignments (3)
CONFIRMATORY LICENSE Recorded Nov 5, 2020
From: JOHNS HOPKINS UNIVERSITY APPLIED PHYSICS LAB
To: THE GOVERNMENT OF THE UNITED STATES, AS REPRESENTED BY THE SECRETARY OF THE ARMY
Reel/Frame 054314/0220 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 1, 2014
From: MULREANY, DANIEL; GUO, QIONGYU
To: THE JOHNS HOPKINS UNIVERSITY
Reel/Frame 034283/0796 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 15, 2011
From: TREXLER, MORGANA M.; GRAHAM, JENNA L.; BREIDENICH, JENNIFER L.; MARANCHI, JEFFREY P.; PATRONE, JULIA B.; PATCHAN, MARCIA W.; ELISSEEFF, JENNIFER H.; CALDERON-COLON, XIOMARA
To: THE JOHNS HOPKINS UNIVERSITY
Reel/Frame 027225/0793 →
Continuity (2)
Provisional Application 61450251 · Mar 8, 2011
Related Publication 20120231038A1 · Sep 13, 2012