IP Library Granted Patent US 11,925,725
Granted Patent B2
US 11,925,725 · App. 15/739,946 · Granted Mar 12, 2024

Extracellular matrix (ECM) mixture and ECM scaffolds made with same

Inventors: Warren Grayson (Baltimore, MD); Jennifer Elisseeff (Baltimore, MD); Ben Hung (Baltimore, MD); Ethan Nyberg (Sterling, VA); Tram Nguyen (Baltimore, MD)
Assignee: JOHNS HOPKINS UNIVERSITY
A61L27/3633A61L27/16A61L27/18A61L27/3608A61L27/56B33Y10/00C08L29/04
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Quick Facts
Patent No.
US 11,925,725
App. No.
15/739,946
Granted
Mar 12, 2024
Kind
B2
Abstract

An extracellular matrix (ECM) mixture and ECM scaffolds made with same are disclosed. The ECM mixture can comprise from about 5% to about 85% by weight of ECM material and from about 15% to about 95% by weight of a polymer material, such as, but not limited to, a biodegradable polyester. The presently disclosed anatomically-shaped porous ECM scaffolds can be formed, for example, using a three-dimensional (3D) printing process, an injection molding process, or any other process.

Claims (22)

1. A three-dimensional ( 3 D) printed porous extracellular matrix (ECM) scaffold comprising:

a 3D printable ECM mixture comprising 30% by weight of ECM material having a particle size less than 40 pm and 70% by weight of a biocompatible synthetic polymer material, wherein the biocompatible synthetic polymer material comprises poly(ε-caprolactone) (PCL), and wherein the ECM material comprises a mineral phase and a collagen phase of decellularized bone; and

wherein the 3D printed porous ECM scaffold has a plurality of human adipose-derived stem cells (hASCs) seeded thereto.

2. The 3D printed porous ECM scaffold of claim 1 , wherein the ECM material comprises a material selected from the group consisting of trabecular bone, cortical bone, connective tissue, and combinations thereof.

3. The 3D printed porous ECM scaffold of claim 1 , wherein the mineral phase of the ECM material comprises a degree of mineralization selected from the group consisting of fully mineralized, partially mineralized, demineralized, and combinations thereof.

4. The three-dimensional (3D) printed porous ECM scaffold of claim 1 wherein the scaffold comprises a pore size of 800 μm.

5. The three-dimensional (3D) printed porous ECM scaffold of claim 1 , wherein the scaffold has a porosity of 60%.

6. The three-dimensional (3D) printed porous ECM scaffold of claim 1 , wherein the scaffold has a root-mean-square roughness value having a range from 40 nm to 60 nm.

7. The three-dimensional (3D) printed porous ECM scaffold of claim 6 , wherein the scaffold has a root-mean-square roughness value of 50 nm.

8. The three-dimensional (3D) printed porous ECM scaffold of claim 1 , wherein the scaffold comprises a three-dimensional printed lattice structure.

9. The 3D printed ECM scaffold of claim 1 , wherein the scaffold comprises an anatomical shape.

10. A method of making a porous extracellular matrix (ECM) scaffold, the method comprising:

(a) providing a 3D printable extracellular matrix (ECM) mixture comprising 30% by weight of ECM material having a particle size less than 40 pm and from 70% by weight of a biocompatible synthetic polymer material, wherein the biocompatible synthetic polymer material comprises poly(ε-caprolactone) (PCL), and wherein the ECM material comprises a mineral phase and a collagen phase of decellularized bone;

(b) printing the porous ECM scaffold with a 3D printing process; and

(c) seeding the 3D-printed porous ECM scaffold with a plurality of human adipose-derived stem cells (hASCs).

11. The method of claim 10 , wherein the ECM mixture is in a form selected from the group consisting of a pellet, a powder, a solution, and filament.

12. The method of claim 10 , wherein the 3D printing process is selected from the group consisting of vat photopolymerisation, material jetting, binder jetting, fused deposition modelling, powder bed fusion, sheet lamination, and directed energy deposition.

13. The method of claim 10 , further comprising:

(a) obtaining a tomography image of a subject's anatomical bone or organ; and

(b) using the tomography image of step (a) to inform the 3D printing process to form an anatomically-shaped porous ECM scaffold.

14. A three-dimensional (3D) printed porous ECM scaffold fabricated by the method of claim 10 .

15. The 3D printed porous ECM scaffold of claim 14 , wherein the scaffold has an anatomical shape.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 31, 2024
From: GRAYSON, WARREN; ELISSEEFF, JENNIFER; HUNG, BEN; NYBERG, ETHAN
To: THE JOHNS HOPKINS UNIVERSITY
Reel/Frame 066311/0493 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 18, 2024
From: NGUYEN, TRAM
To: THE JOHNS HOPKINS UNIVERSITY
Reel/Frame 066169/0501 →
CONFIRMATORY LICENSE Recorded Oct 31, 2022
From: JOHNS HOPKINS UNIVERSITY
To: UNITED STATES GOVERNMENT
Reel/Frame 061806/0733 →
Continuity (2)
Provisional Application 62183948 · Jun 24, 2015
Related Publication 20180185547A1 · Jul 5, 2018