IP Library Granted Patent US 10,953,133
Granted Patent B2
US 10,953,133 · App. 15/439,650 · Granted Mar 23, 2021

Process to create 3D tissue scaffold using electrospun nanofiber matrix and photosensitive hydrogel

Inventors: Morshed Khandaker (Edmond, OK); Shahram Riahinezhad (Edmond, OK)
Assignee: University of Central Oklahoma
A61L27/26A61L27/3804A61L27/3813A61L27/3817A61L27/48A61L27/52A61L27/54A61L27/56B29C64/165B33Y10/00B33Y70/00B33Y80/00C12N5/0012C12N5/0062C12N5/04C12N5/0625C12N5/0655D01D5/003D04H1/728D06M15/27D06M23/14A61L2300/412A61L2400/12A61L2430/02B29K2105/0058B29L2031/753C12N2513/00C12N2533/30C12N2533/52C12N2533/54D01F6/625D06M2101/32D10B2509/00
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Quick Facts
Patent No.
US 10,953,133
App. No.
15/439,650
Granted
Mar 23, 2021
Kind
B2
Abstract

A process providing a method to create 3D scaffolds using nano-scale fibers, comprising: deposition and alignment of a plurality of electrospun fiber layers on a substrate; application of a photosensitive biomedical polymer liquid to each fiber layer deposited on said substrate; deposition and cross-alignment of a plurality of electrospun fiber layers on said substrate; retaining said polymer liquid in place using said cross-aligned fiber layers; curing said polymer liquid on top of each fiber layer using UV light.

Claims (6)

1. A process for producing cell-encapsulated hydrogels exhibiting complex three-dimensional (3D) structures consisting of:

creating a porous fiber membrane sequencing cross-directional electrospun PCL nanofibers and PEGDA hydrogel in alternating layers;

controlling porosity of said porous fiber membrane by completing steps selected from the group consisting of increasing or decreasing the number of said nanofibers in a layer, varying the number of PCL nanofiber layers and PEGDA hydrogel layers, mixing PEGDA hydrogel with osteo-conductive nanoparticles including any of chitin, chitosan, and hydroxyapatite, and changing the architecture of said PCL nanofibers by altering any of fiber material, diameter, and distribution;

flowing biological cells at least once in a medium through said porous fiber membrane, said biological cell types being selected from a group consisting of cartilage cells, bone cells, skin cells, organ cells, and plant cells,

wherein said porous fiber membrane is created by completing at least the steps of depositing and aligning a plurality of electrospun PCL nanofiber in a first layer of PCL nanofibers, depositing on to said first layer of PCL nanofibers a plurality of electrospun PCL nanofiber in a second layer of PCL nanofibers, said plurality of PCL nanofibers in said second layer being cross-aligned relative to said plurality of PCL nanofibers in said first layer to present a first PCL-ENF matrix, applying photosensitive PEGDA hydrogel as a coating on to and substantially covering said first PCL-ENF matrix to create a first PEGDA hydrogel layer, and curing said first PEGDA hydrogel layer using ultra violet (UV) light to achieve a desired stiffness, constructing a second PCL-ENF matrix applied to said first PEGDA hydrogel layer, coating said second PCL-ENF matrix with photosensitive PEGDA hydrogel to create a second PEGDA hydrogel layer, and curing said second PEGDA hydrogel layer to achieve a desired stiffness, constructing a third PCL-ENF matrix applied to said second PEGDA layer; and

wherein said cell-encapsulated hydrogels exhibiting complex three-dimensional (3D) structures are fabricated in any custom size and shape of tissue engineering scaffold selected from the group consisting of ear, nose, lip, skin, organ, bone, and cartilage.

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 042463/0874 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2017
From: KHANDAKER, MORSHED; RIAHINEZHAD, SHAHRAM
To: UNIVERSITY OF CENTRAL OKLAHOMA
Reel/Frame 041345/0757 →
Continuity (2)
Provisional Application 62298627 · Feb 23, 2016
Related Publication 20170239388A1 · Aug 24, 2017