Implementing patterned fibrous matrices can offer a highly valuable platform for spatially orchestrating hierarchical cellular constructs, specifically for neural engineering approaches, in which striated alignment or directional growth of axons are key elements for the functional recovery of damaged nervous systems. Thus, understanding the structural parameters of patterned fibrous matrices that can effectively promote neural growth can provide crucial clues for designing state-of-the-art tissue engineering scaffolds. To this end, salt-induced electrospun patterned fiber bundles (SiEP bundles) comprising longitudinally stacked multiple fibers were fabricated, and their capabilities of spatially stimulating the responses of neural cells, in...
Repair of spinal cord injury will require enhanced recruitment of endogenous neural stem cells (NSCs...
Spatially controlled proliferation, migration and differentiation of neural stem cells on novel 3D c...
Electrospun fibrous substrates mimicking extracellular matrices can be prepared by electrospinning, ...
To test a 3D approach for neural network formation, alignment, and patterning that is reproducible a...
Over the past 5 decades, there has been a drive to apply technology to enhance neural regeneration i...
Over the past 5 decades, there has been a drive to apply technology to enhance\ud neural regeneratio...
Three aligned, electrospun fiber scaffolds with unique surface features were created from poly-L-lac...
Electrospun nanofibers with uniaxial alignment have recently gained its popularity as scaffolds for ...
Electrospun nanofibers with uniaxial alignment have recently gained its popularity as scaffolds for ...
Aligned, electrospun fibers have shown great promise in facilitating directed neurite outgrowth with...
As scaffolds for neuron cell guiding in vitro, gel fibers with a bundle structure, comprising multip...
Producing gradients of biological cues into nerve conduits is crucial for nerve guidance and regener...
Polymer nanofibers and microfibers are an invaluable tool to biomedical research. Due to their vers...
BACKGROUND: Three-dimensional (3D) in vitro models have been developed into more in vivo resembling ...
Tissue engineering is a promising strategy with great therapeutic potential intended to assist the n...
Repair of spinal cord injury will require enhanced recruitment of endogenous neural stem cells (NSCs...
Spatially controlled proliferation, migration and differentiation of neural stem cells on novel 3D c...
Electrospun fibrous substrates mimicking extracellular matrices can be prepared by electrospinning, ...
To test a 3D approach for neural network formation, alignment, and patterning that is reproducible a...
Over the past 5 decades, there has been a drive to apply technology to enhance neural regeneration i...
Over the past 5 decades, there has been a drive to apply technology to enhance\ud neural regeneratio...
Three aligned, electrospun fiber scaffolds with unique surface features were created from poly-L-lac...
Electrospun nanofibers with uniaxial alignment have recently gained its popularity as scaffolds for ...
Electrospun nanofibers with uniaxial alignment have recently gained its popularity as scaffolds for ...
Aligned, electrospun fibers have shown great promise in facilitating directed neurite outgrowth with...
As scaffolds for neuron cell guiding in vitro, gel fibers with a bundle structure, comprising multip...
Producing gradients of biological cues into nerve conduits is crucial for nerve guidance and regener...
Polymer nanofibers and microfibers are an invaluable tool to biomedical research. Due to their vers...
BACKGROUND: Three-dimensional (3D) in vitro models have been developed into more in vivo resembling ...
Tissue engineering is a promising strategy with great therapeutic potential intended to assist the n...
Repair of spinal cord injury will require enhanced recruitment of endogenous neural stem cells (NSCs...
Spatially controlled proliferation, migration and differentiation of neural stem cells on novel 3D c...
Electrospun fibrous substrates mimicking extracellular matrices can be prepared by electrospinning, ...