To fully exploit the potential of hydrogel micro-fibers in the design of regenerative medicinal materials, we designed a simple, easy to replicate system for cell embedding in degradable fibrous scaffolds, and validated its effectiveness using alginate-based materials. For scaffold fabrication, cells are suspended in a hydrogel-precursor and injected in a closed-loop circuit, where a pump circulates the ionic cross-linking solution. The flow of the cross-linking solution stretches and solidifies a continuous micro-scaled, cell-loaded hydrogel fiber that whips, bends, and spontaneously assembles in a self-standing, spaghetti-like patch. After investigation and tuning of process- and solution-related parameters, homogeneous microfibers with c...
In this work, three-dimensional (3D) self-sustaining, spiral-shaped constructs were produced through...
Cell encapsulation has been widely employed in cell therapy, characterization, and analysis, as well...
We present here a microfluidic device that generates sub-millimetric hollow hydrogel spheres, encaps...
To fully exploit the potential of hydrogel micro-fibers in the design of regenerative medicinal mate...
The development of three-dimensional (3D) fibrous networks as platforms for tissue engineering appli...
Fibrous hydrogel scaffolds have recently attracted increasing attention for tissue engineering appli...
Cell-laden hydrogel fibers are widely used as the fundamental building blocks to fabricate more comp...
AbstractDevelopment of the technique for constructing an internal perfusable vascular network is a c...
Development of the technique for constructing an internal perfusable vascular network is a challengi...
Opportunely arranged microscaled fibers offer an attractive 3D architecture for tissue regeneration ...
Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown g...
Tissue engineering is focusing on processing tissue micro-structures for a variety of applications i...
PACRIM Symposium 32: Nanostructured Bioceramics and Ceramics for Biomedical Applications: Nanostruct...
Fiber-based techniques hold great potential toward the development of structures that mimic the arch...
In this work, three-dimensional (3D) self-sustaining, spiral-shaped constructs were produced through...
Cell encapsulation has been widely employed in cell therapy, characterization, and analysis, as well...
We present here a microfluidic device that generates sub-millimetric hollow hydrogel spheres, encaps...
To fully exploit the potential of hydrogel micro-fibers in the design of regenerative medicinal mate...
The development of three-dimensional (3D) fibrous networks as platforms for tissue engineering appli...
Fibrous hydrogel scaffolds have recently attracted increasing attention for tissue engineering appli...
Cell-laden hydrogel fibers are widely used as the fundamental building blocks to fabricate more comp...
AbstractDevelopment of the technique for constructing an internal perfusable vascular network is a c...
Development of the technique for constructing an internal perfusable vascular network is a challengi...
Opportunely arranged microscaled fibers offer an attractive 3D architecture for tissue regeneration ...
Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown g...
Tissue engineering is focusing on processing tissue micro-structures for a variety of applications i...
PACRIM Symposium 32: Nanostructured Bioceramics and Ceramics for Biomedical Applications: Nanostruct...
Fiber-based techniques hold great potential toward the development of structures that mimic the arch...
In this work, three-dimensional (3D) self-sustaining, spiral-shaped constructs were produced through...
Cell encapsulation has been widely employed in cell therapy, characterization, and analysis, as well...
We present here a microfluidic device that generates sub-millimetric hollow hydrogel spheres, encaps...