Electrospun nanofibers have been extensively explored as a class of scaffolding materials for tissue regeneration, because of their unique capability to mimic some features and functions of the extracellular matrix, including the fibrous morphology and mechanical properties, and to a certain extent the chemical/biological cues. This work reviews recent progress in applying electrospun nanofibers to direct the migration of stem cells and control their differentiation into specific phenotypes. First, the physicochemical properties that make electrospun nanofibers well-suited as a supporting material to expand stem cells by controlling their migration and differentiation are introduced. Then various systems are analyzed in conjunction with mes...
Electrospinning is a popular technique used to mimic the natural sub-micron features of the native t...
Objective: Three-dimensional (3D) biomimetic nanofiber scaffolds have widespread applications in bi...
none9Electrospinning is a very versatile technology that enables production of nanofibrous structure...
Electrospun nanofibers have been extensively explored as a class of scaffolding materials for tissue...
Tissue engineering is a promising strategy with great therapeutic potential intended to assist the n...
The design of new bioactive materials, provided with "instructive properties" and able to regulate s...
Electrospun nanofibers represent a class of versatile scaffolds for tissue engineering applications ...
Cell migration plays an important role in a wide variety of biological processes, including embryoge...
Electrospinning is a versatile technique that enables the development of nanofiber-based scaffolds, ...
Electrospun techniques are promising and flexible technologies to fabricate ultrafine fiber/nanofibe...
The ultimate goal of tissue engineering is to replace damaged tissues by applying engineering techno...
The fact that in vivo the extracellular matrix or substratum with which cells interact often include...
Scaffolds produced by electrospinning possess great potential for tissue engineering owing to their ...
Electrospinning has been employed extensively in tissue engineering to generate nanofibrous scaffold...
Electrospinning technology is currently the only technology capable of directly and continuously pre...
Electrospinning is a popular technique used to mimic the natural sub-micron features of the native t...
Objective: Three-dimensional (3D) biomimetic nanofiber scaffolds have widespread applications in bi...
none9Electrospinning is a very versatile technology that enables production of nanofibrous structure...
Electrospun nanofibers have been extensively explored as a class of scaffolding materials for tissue...
Tissue engineering is a promising strategy with great therapeutic potential intended to assist the n...
The design of new bioactive materials, provided with "instructive properties" and able to regulate s...
Electrospun nanofibers represent a class of versatile scaffolds for tissue engineering applications ...
Cell migration plays an important role in a wide variety of biological processes, including embryoge...
Electrospinning is a versatile technique that enables the development of nanofiber-based scaffolds, ...
Electrospun techniques are promising and flexible technologies to fabricate ultrafine fiber/nanofibe...
The ultimate goal of tissue engineering is to replace damaged tissues by applying engineering techno...
The fact that in vivo the extracellular matrix or substratum with which cells interact often include...
Scaffolds produced by electrospinning possess great potential for tissue engineering owing to their ...
Electrospinning has been employed extensively in tissue engineering to generate nanofibrous scaffold...
Electrospinning technology is currently the only technology capable of directly and continuously pre...
Electrospinning is a popular technique used to mimic the natural sub-micron features of the native t...
Objective: Three-dimensional (3D) biomimetic nanofiber scaffolds have widespread applications in bi...
none9Electrospinning is a very versatile technology that enables production of nanofibrous structure...