Despite their outstanding potential and the success that has already been achieved with three-dimensional (3D) printed hydrogel scaffolds, there has been little investigation into their application in the regeneration of damaged or missing adipose tissue (AT). Due to their macroscopic shape, microarchitecture, extracellular matrix-mimicking structure, degradability and soft tissue biomimetic mechanical properties, 3D printed hydrogel scaffolds have great potential for use in aesthetic, structural and functional restoration of AT. Here, we propose a simple and cost-effective 3D printing strategy using gelatin-based ink to fabricate scaffolds suitable for AT engineering. The ink, successfully printed here for the first time, was prepared by m...
Gelatin-methacryloyl (GelMA) is a semi-synthetic hydrogel which consists of gelatin derivatized with...
We present a solution to regenerate adipose tissue using degradable, soft, pliable 3D-printed scaffo...
When adipose tissue (AT) is impaired by trauma or disease, AT engineering could provide a shelf-read...
Despite their outstanding potential and the success that has already been achieved with three-dimens...
The design of scaffolding materials that mimic the properties of the target tissue to be regenerated...
Three-dimensional (3D) bioprinting is a family of enabling technologies that can be used to manufact...
There exists a clear clinical need for adipose tissue reconstruction strategies to repair soft tissu...
[[abstract]]Three-dimensional (3D) bioprinting is a technology to print materials (bioink) with cell...
Hydrogel materials are being investigated for application as scaffolds in tissue engineering owing t...
Bioink-formulations based on gelatin methacrylate combined with oxidized cellulose nanofibrils are e...
Adipose tissue is related to the development and manifestation of multiple diseases, demonstrating t...
The advancement of tissue engineering has allowed the regeneration of damaged tissues or failing org...
Adipose tissue is related to the development and manifestation of multiple diseases, demonstrating t...
Biomimetic constructs imitating the functions, structures, and compositions of normal tissues are of...
Gelatin-methacryloyl (GelMA) is a semi-synthetic hydrogel which consists of gelatin derivatized with...
We present a solution to regenerate adipose tissue using degradable, soft, pliable 3D-printed scaffo...
When adipose tissue (AT) is impaired by trauma or disease, AT engineering could provide a shelf-read...
Despite their outstanding potential and the success that has already been achieved with three-dimens...
The design of scaffolding materials that mimic the properties of the target tissue to be regenerated...
Three-dimensional (3D) bioprinting is a family of enabling technologies that can be used to manufact...
There exists a clear clinical need for adipose tissue reconstruction strategies to repair soft tissu...
[[abstract]]Three-dimensional (3D) bioprinting is a technology to print materials (bioink) with cell...
Hydrogel materials are being investigated for application as scaffolds in tissue engineering owing t...
Bioink-formulations based on gelatin methacrylate combined with oxidized cellulose nanofibrils are e...
Adipose tissue is related to the development and manifestation of multiple diseases, demonstrating t...
The advancement of tissue engineering has allowed the regeneration of damaged tissues or failing org...
Adipose tissue is related to the development and manifestation of multiple diseases, demonstrating t...
Biomimetic constructs imitating the functions, structures, and compositions of normal tissues are of...
Gelatin-methacryloyl (GelMA) is a semi-synthetic hydrogel which consists of gelatin derivatized with...
We present a solution to regenerate adipose tissue using degradable, soft, pliable 3D-printed scaffo...
When adipose tissue (AT) is impaired by trauma or disease, AT engineering could provide a shelf-read...