Fibrous hydrogel scaffolds have recently attracted increasing attention for tissue engineering applications. While a number of approaches have been proposed for fabricating microfibers, it remains difficult for current methods to produce materials that meet the essential requirements of being simple, flexible and bio-friendly. It is especially challenging to prepare cell-laden microfibers which have different structures to meet the needs of various applications using a simple device. In this study, we developed a facile two-flow microfluidic system, through which cell-laden hydrogel microfibers with various structures could be easily prepared in one step. Aiming to meet different tissue engineering needs, several types of microfibers with d...
This paper describes a method for the production of alginate microfibres using glass-based microflui...
A novel approach to produce artificial bone composites (microfibers) with distinctive features mimic...
Microfabrication technology provides a highly versatile platform for engineering hydrogels used in b...
Fibrous hydrogel scaffolds have recently attracted increasing attention for tissue engineering appli...
Microfluidic technologies are emerging as an enabling tool for various applications in tissue engine...
The development of three-dimensional (3D) fibrous networks as platforms for tissue engineering appli...
Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown g...
To fully exploit the potential of hydrogel micro-fibers in the design of regenerative medicinal mate...
Tissue engineering is focusing on processing tissue micro-structures for a variety of applications i...
Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown g...
Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown g...
Microfabrication technology provides a versatile platform for engineering hydrogels used in biomedic...
Hydrogel-based artificial scaffolds play a vital role in shifting in vitro models from two-dimension...
This paper describes a method for the production of alginate microfibres using glass-based microflui...
This paper describes a method for the production of alginate microfibres using glass-based microflui...
A novel approach to produce artificial bone composites (microfibers) with distinctive features mimic...
Microfabrication technology provides a highly versatile platform for engineering hydrogels used in b...
Fibrous hydrogel scaffolds have recently attracted increasing attention for tissue engineering appli...
Microfluidic technologies are emerging as an enabling tool for various applications in tissue engine...
The development of three-dimensional (3D) fibrous networks as platforms for tissue engineering appli...
Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown g...
To fully exploit the potential of hydrogel micro-fibers in the design of regenerative medicinal mate...
Tissue engineering is focusing on processing tissue micro-structures for a variety of applications i...
Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown g...
Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown g...
Microfabrication technology provides a versatile platform for engineering hydrogels used in biomedic...
Hydrogel-based artificial scaffolds play a vital role in shifting in vitro models from two-dimension...
This paper describes a method for the production of alginate microfibres using glass-based microflui...
This paper describes a method for the production of alginate microfibres using glass-based microflui...
A novel approach to produce artificial bone composites (microfibers) with distinctive features mimic...
Microfabrication technology provides a highly versatile platform for engineering hydrogels used in b...