The porous microstructure of scaffolds is an essential consideration for tissue engineering, which plays an important role for cell adhesion, migration, and proliferation. It is crucial to choose optimum pore sizes of scaffolds for the treatment of various damaged tissues. Therefore, the proper porosity is the significant factor that should be considered when designing tissue scaffolds. Herein, we develop an improved emulsion template method to fabricate gelatin-based scaffolds with controllable pore structure. Gelatin droplets were first prepared by emulsification and then solidified by genipin to prepare gelatin microspheres. The microspheres were used as a template for the fabrication of porous scaffolds, which were gathered and tightene...
The present work describes for the first time the production of self-supporting low gelatin density ...
The current study presents an effective and simple strategy to obtain stable porous scaffolds from g...
Scaffold morphology plays a key role in the development of tissue engineering constructs. The contro...
Gelatin is a natural protein with many desirable properties for application as a biomaterial, includ...
Gelatin is considered as a partially degraded product of collagen and it is a biodegradable polymer ...
Doble titulacióThe objective of this work was to fabricate gelatin and alpha-tricalcium phosphate (α...
Tissue engineering, or the development of three-dimensional (3D) macroscopic biological tissues in v...
We report on the feasibility of applying porous gelatin hydrogels, prepared by a novel and controlle...
One of the key issues in fabricating tissue engineering scaffold is to have control over the structu...
Gelatin-based nanofibrous scaffolds with a mean fiber diameter of 300 nm were prepared with and with...
3D constructs are fundamental in tissue engineering and cancer modeling, generating a demand for tai...
This thesis presents the development of entropy-elastic gelatin based networks in the form of films ...
A gelatin-based hydrogel scaffold with highly uniform pore size and biocompatibility was fabricated ...
Recently, three-dimensional (3D) scaffolds produced using poly-Pickering high internal phase emulsio...
All original data for the manuscript "A porous gelatin methacrylate-based material for 3D cell-laden...
The present work describes for the first time the production of self-supporting low gelatin density ...
The current study presents an effective and simple strategy to obtain stable porous scaffolds from g...
Scaffold morphology plays a key role in the development of tissue engineering constructs. The contro...
Gelatin is a natural protein with many desirable properties for application as a biomaterial, includ...
Gelatin is considered as a partially degraded product of collagen and it is a biodegradable polymer ...
Doble titulacióThe objective of this work was to fabricate gelatin and alpha-tricalcium phosphate (α...
Tissue engineering, or the development of three-dimensional (3D) macroscopic biological tissues in v...
We report on the feasibility of applying porous gelatin hydrogels, prepared by a novel and controlle...
One of the key issues in fabricating tissue engineering scaffold is to have control over the structu...
Gelatin-based nanofibrous scaffolds with a mean fiber diameter of 300 nm were prepared with and with...
3D constructs are fundamental in tissue engineering and cancer modeling, generating a demand for tai...
This thesis presents the development of entropy-elastic gelatin based networks in the form of films ...
A gelatin-based hydrogel scaffold with highly uniform pore size and biocompatibility was fabricated ...
Recently, three-dimensional (3D) scaffolds produced using poly-Pickering high internal phase emulsio...
All original data for the manuscript "A porous gelatin methacrylate-based material for 3D cell-laden...
The present work describes for the first time the production of self-supporting low gelatin density ...
The current study presents an effective and simple strategy to obtain stable porous scaffolds from g...
Scaffold morphology plays a key role in the development of tissue engineering constructs. The contro...