In this study we demonstrated an application of 3D Bioprinting using different commercially available hydrogels (CELLINK AB, Sweden) with the aim to identify the most suitable biomaterial for the proliferation and differentiation of murine muscle cells (C2C12)
Tissue engineered scaffolds, reconstructive surgery, and bracing remain inadequate for the treatment...
The past a few decades have seen exponential growth in the field of regenerative medicine. What bega...
Hydrogels are three-dimensional polymer networks with hydrophilic properties. The modifiable propert...
Skeletal muscle regeneration is one of the major areas of interest in sport medicine as well as trau...
Skeletal muscles own a remarkable self-repair and regenerative capacity in response to acute injurie...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
[eng] In vitro engineered three-dimensional tissue models are attracting an increasing interest due ...
The number of skeletal muscle injuries derived from myopathies, exercise, and trauma, is growing due...
Two-dimensional (2D) cell cultures do not reflect the in vivo situation, and thus it is important to...
Advancements in additive manufacturing have made it possible to fabricate biologically relevant arch...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
The bioprinting technology allows the creation of three-dimensional (3D) tissues in an additive manu...
The need for heart muscle suitable for transplant has never been greater as the disparity between th...
The fabrication of 3D constructs using 3D bioprinting techniques aims ...
International audienceThree-dimensional (3D) bioprinting is an emerging technology, which turned out...
Tissue engineered scaffolds, reconstructive surgery, and bracing remain inadequate for the treatment...
The past a few decades have seen exponential growth in the field of regenerative medicine. What bega...
Hydrogels are three-dimensional polymer networks with hydrophilic properties. The modifiable propert...
Skeletal muscle regeneration is one of the major areas of interest in sport medicine as well as trau...
Skeletal muscles own a remarkable self-repair and regenerative capacity in response to acute injurie...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
[eng] In vitro engineered three-dimensional tissue models are attracting an increasing interest due ...
The number of skeletal muscle injuries derived from myopathies, exercise, and trauma, is growing due...
Two-dimensional (2D) cell cultures do not reflect the in vivo situation, and thus it is important to...
Advancements in additive manufacturing have made it possible to fabricate biologically relevant arch...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
The bioprinting technology allows the creation of three-dimensional (3D) tissues in an additive manu...
The need for heart muscle suitable for transplant has never been greater as the disparity between th...
The fabrication of 3D constructs using 3D bioprinting techniques aims ...
International audienceThree-dimensional (3D) bioprinting is an emerging technology, which turned out...
Tissue engineered scaffolds, reconstructive surgery, and bracing remain inadequate for the treatment...
The past a few decades have seen exponential growth in the field of regenerative medicine. What bega...
Hydrogels are three-dimensional polymer networks with hydrophilic properties. The modifiable propert...