The use of cell-rich hydrogels for three-dimensional (3D) cell culture has shown great potential for a variety of biomedical applications. However, the fabrication of appropriate constructs has been challenging. In this study, we describe a 3D printing process for the preparation of a multilayered 3D construct containing human mesenchymal stromal cells with a hydrogel comprised of atelocollagen and supramolecular hyaluronic acid (HA). This construct showed outstanding regenerative ability for the reconstruction of an osteochondral tissue in the knee joints of rabbits. We found that the use of a mechanically stable, host-guest chemistry-based hydrogel was essential and allowed two different types of extracellular matrix (ECM) hydrogels to be...
In bone regenerative medicine there is a need for suitable bone substitutes. Hydrogels have excellen...
The lack of tissue regeneration after trauma, degenerative diseases and other pathologies is a highl...
Three-dimensional (3D) bioprinting techniques can be used for the fabrication of personalized, regen...
The use of cell-rich hydrogels for three-dimensional (3D) cell culture has shown great potential for...
Osteochondral tissue is a biphasic material comprised of articular cartilage integrated atop subchon...
Development of biomaterial-based bioinks is critical for replacement and/or regeneration of tissues ...
The aim of this study was to build a mechanically enhanced three-dimensional (3D) bioprinted constru...
Hydrogels are three-dimensional polymer networks with hydrophilic properties. The modifiable propert...
Osteochondral defects are prone to induce osteoarthritic degenerative changes. Many tissue-engineeri...
Recent advancements in tissue engineering have demonstrated a great potential for the fabrication of...
The application of hydrogels coupled with 3-dimensional (3D) printing technologies represents a mode...
The limited self-healing ability of cartilage necessitates the application of alternative tissue eng...
Background: The three-dimensional (3D) bioprinting technology allows creation of 3D constructs in a ...
The past a few decades have seen exponential growth in the field of regenerative medicine. What bega...
Bioprinting allows the fabrication of living constructs with custom-made architectures by spatially ...
In bone regenerative medicine there is a need for suitable bone substitutes. Hydrogels have excellen...
The lack of tissue regeneration after trauma, degenerative diseases and other pathologies is a highl...
Three-dimensional (3D) bioprinting techniques can be used for the fabrication of personalized, regen...
The use of cell-rich hydrogels for three-dimensional (3D) cell culture has shown great potential for...
Osteochondral tissue is a biphasic material comprised of articular cartilage integrated atop subchon...
Development of biomaterial-based bioinks is critical for replacement and/or regeneration of tissues ...
The aim of this study was to build a mechanically enhanced three-dimensional (3D) bioprinted constru...
Hydrogels are three-dimensional polymer networks with hydrophilic properties. The modifiable propert...
Osteochondral defects are prone to induce osteoarthritic degenerative changes. Many tissue-engineeri...
Recent advancements in tissue engineering have demonstrated a great potential for the fabrication of...
The application of hydrogels coupled with 3-dimensional (3D) printing technologies represents a mode...
The limited self-healing ability of cartilage necessitates the application of alternative tissue eng...
Background: The three-dimensional (3D) bioprinting technology allows creation of 3D constructs in a ...
The past a few decades have seen exponential growth in the field of regenerative medicine. What bega...
Bioprinting allows the fabrication of living constructs with custom-made architectures by spatially ...
In bone regenerative medicine there is a need for suitable bone substitutes. Hydrogels have excellen...
The lack of tissue regeneration after trauma, degenerative diseases and other pathologies is a highl...
Three-dimensional (3D) bioprinting techniques can be used for the fabrication of personalized, regen...