It has been widely perceived that three-dimensional bioprinted synthetic tissues and organ can be a clinical treatment option for damaged or diseased tissue repair and replacement. Conventional tissue engineering approaches have limited control over the regeneration of scaffold geometries and cell distribution. With the advancement of new biomaterials and additive manufacturing techniques, it is possible to develop physiologically relevant functional tissues or organs with living cells, bioactive molecules and growth factors within predefined complex 3D geometries. In this perspective, this review discusses how hydrogel-based bioinks can be used to mimic native tissue-like extracellular matrix environment, with optimal mechanical and struct...
Three-dimensional (3D) bioprinting has been applied to fabricate constructs that facilitate cartilag...
The fabrication of 3D constructs using 3D bioprinting techniques aims ...
Hydrogels are three-dimensional polymer networks with hydrophilic properties. The modifiable propert...
Bioprinting offers tremendous potential in the fabrication of functional tissue constructs for repla...
Bioprinting is an emerging technology with various applications in making functional tissue construc...
Bioprinting is an emerging technology with various applications in making functional tissue construc...
Bioprinting has emerged as a versatile biofabrication approach for creating tissue engineered organ ...
Abstract Background The worldwide demand for the organ replacement or tissue regeneration is increas...
The past a few decades have seen exponential growth in the field of regenerative medicine. What bega...
In regenerative medicine and tissue engineering, the possibility to: (I) customize the shape and siz...
Three dimensional (3D) bioprinting technologies with appropriate bioinks are potentially able to fab...
Three-dimensional (3D)-printed in vitro tissue models have been used in various biomedical fields ow...
In recent years, tissue engineering has achieved significant advancements towards the repair of dama...
In recent years, tissue engineering has achieved significant advancements towards the repair of dama...
Organ transplantation would be the first option for those whose tissues/organs have been extremely i...
Three-dimensional (3D) bioprinting has been applied to fabricate constructs that facilitate cartilag...
The fabrication of 3D constructs using 3D bioprinting techniques aims ...
Hydrogels are three-dimensional polymer networks with hydrophilic properties. The modifiable propert...
Bioprinting offers tremendous potential in the fabrication of functional tissue constructs for repla...
Bioprinting is an emerging technology with various applications in making functional tissue construc...
Bioprinting is an emerging technology with various applications in making functional tissue construc...
Bioprinting has emerged as a versatile biofabrication approach for creating tissue engineered organ ...
Abstract Background The worldwide demand for the organ replacement or tissue regeneration is increas...
The past a few decades have seen exponential growth in the field of regenerative medicine. What bega...
In regenerative medicine and tissue engineering, the possibility to: (I) customize the shape and siz...
Three dimensional (3D) bioprinting technologies with appropriate bioinks are potentially able to fab...
Three-dimensional (3D)-printed in vitro tissue models have been used in various biomedical fields ow...
In recent years, tissue engineering has achieved significant advancements towards the repair of dama...
In recent years, tissue engineering has achieved significant advancements towards the repair of dama...
Organ transplantation would be the first option for those whose tissues/organs have been extremely i...
Three-dimensional (3D) bioprinting has been applied to fabricate constructs that facilitate cartilag...
The fabrication of 3D constructs using 3D bioprinting techniques aims ...
Hydrogels are three-dimensional polymer networks with hydrophilic properties. The modifiable propert...