Developing biomimetic cartilaginous tissues that support locomotion while maintaining chondrogenic behavior is a major challenge in the tissue engineering field. Specifically, while locomotive forces demand tissues with strong mechanical properties, chondrogenesis requires a soft microenvironment. To address this challenge, 3D cartilage-like tissue is fabricated using two biomaterials with different mechanical properties: a hard biomaterial to reflect the macromechanical properties of native cartilage, and a soft biomaterial to create a chondrogenic microenvironment. To this end, a bath composed of an interpenetrating polymer network (IPN) of polyethylene glycol (PEG) and alginate hydrogel (MPa order compressive modulus) is developed as an ...
Tissue engineering (TE) aims to regenerate damaged tissues by the combined use of biomaterials and c...
Abstract Articular cartilage lines the ends of bones, provides low friction and load bear...
Current cartilage tissue engineering strategies cannot as yet fabricate new tissue that is indisting...
Developing biomimetic cartilaginous tissues that support locomotion while maintaining chondrogenic b...
Developing biomimetic cartilaginous tissues that support locomotion while maintaining chondrogenic b...
A major challenge in the field of tissue engineering and regenerative medicine is the development of...
Successful tissue engineering requires the generation of human scale implants that mimic the structu...
Cartilage tissue presents low self-repair capability and lesions often undergo irreversible progress...
Osteochondral tissue is a biphasic material comprised of articular cartilage integrated atop subchon...
The replacement of damaged, diseased, or non-functional organs and tissues through tissue engineerin...
To date, the treatment of articular cartilage lesions remains challenging. A promising strategy for ...
Despite intensive research, hydrogels currently available for tissue repair in the musculoskeletal s...
In this work we demonstrate how to print 3D biomimetic hydrogel scaffolds for cartilage tissue engin...
The limited self-healing ability of cartilage necessitates the application of alternative tissue eng...
The application of hydrogels coupled with 3-dimensional (3D) printing technologies represents a mode...
Tissue engineering (TE) aims to regenerate damaged tissues by the combined use of biomaterials and c...
Abstract Articular cartilage lines the ends of bones, provides low friction and load bear...
Current cartilage tissue engineering strategies cannot as yet fabricate new tissue that is indisting...
Developing biomimetic cartilaginous tissues that support locomotion while maintaining chondrogenic b...
Developing biomimetic cartilaginous tissues that support locomotion while maintaining chondrogenic b...
A major challenge in the field of tissue engineering and regenerative medicine is the development of...
Successful tissue engineering requires the generation of human scale implants that mimic the structu...
Cartilage tissue presents low self-repair capability and lesions often undergo irreversible progress...
Osteochondral tissue is a biphasic material comprised of articular cartilage integrated atop subchon...
The replacement of damaged, diseased, or non-functional organs and tissues through tissue engineerin...
To date, the treatment of articular cartilage lesions remains challenging. A promising strategy for ...
Despite intensive research, hydrogels currently available for tissue repair in the musculoskeletal s...
In this work we demonstrate how to print 3D biomimetic hydrogel scaffolds for cartilage tissue engin...
The limited self-healing ability of cartilage necessitates the application of alternative tissue eng...
The application of hydrogels coupled with 3-dimensional (3D) printing technologies represents a mode...
Tissue engineering (TE) aims to regenerate damaged tissues by the combined use of biomaterials and c...
Abstract Articular cartilage lines the ends of bones, provides low friction and load bear...
Current cartilage tissue engineering strategies cannot as yet fabricate new tissue that is indisting...