Herein, a robust method to fabricate expanded nanofiber scaffolds with controlled size and thickness using a customized mold during the modified gas-foaming process is reported. The expansion of nanofiber membranes is also simulated using a computational fluid model. Expanded nanofiber scaffolds implanted subcutaneously in rats show cellular infiltration, whereas non-expanded scaffolds only have surface cellular attachment. Compared to unexpanded nanofiber scaffolds, more CD68+ and CD163+ cells are observed within expanded scaffolds at all tested time points post-implantation. More CCR7+ cells appear within expanded scaffolds at week 8 post-implantation. In addition, new blood vessels are present within the expanded scaffolds at week 2. The...
Electrospun scaffolds provide a dense framework of nanofibers with pore sizes and fiber diameters th...
Assembling electrospun nanofibers with controlled alignment into three-dimensional (3D), complex, an...
The biofabrication of biomimetic scaffolds for tissue engineering applications is a field in continu...
Herein, a robust method to fabricate expanded nanofiber scaffolds with controlled size and thickness...
Electrospun nanofibers have shown great potential as scaffolds for regenerative medicine because of ...
Electrospun nanofibers emulate extracellular matrix (ECM) morphology and architecture; however, smal...
Nanofibrous scaffolds can mimic the mechanical and structural properties of the natural extracellula...
Scaffolds produced by electrospinning possess great potential for tissue engineering owing to their ...
Nanofibrous scaffolds that offer proper microenvironmental cues to promote the healing process are h...
Objective: Three-dimensional (3D) biomimetic nanofiber scaffolds have widespread applications in bi...
Stem cell and tissue engineering offer us with a unique opportunity to research and develop new ther...
Electrospun scaffolds provide a dense framework of nanofibers with pore sizes and fiber diameters th...
Assembling electrospun nanofibers with controlled alignment into three-dimensional (3D), complex, an...
The biofabrication of biomimetic scaffolds for tissue engineering applications is a field in continu...
Herein, a robust method to fabricate expanded nanofiber scaffolds with controlled size and thickness...
Electrospun nanofibers have shown great potential as scaffolds for regenerative medicine because of ...
Electrospun nanofibers emulate extracellular matrix (ECM) morphology and architecture; however, smal...
Nanofibrous scaffolds can mimic the mechanical and structural properties of the natural extracellula...
Scaffolds produced by electrospinning possess great potential for tissue engineering owing to their ...
Nanofibrous scaffolds that offer proper microenvironmental cues to promote the healing process are h...
Objective: Three-dimensional (3D) biomimetic nanofiber scaffolds have widespread applications in bi...
Stem cell and tissue engineering offer us with a unique opportunity to research and develop new ther...
Electrospun scaffolds provide a dense framework of nanofibers with pore sizes and fiber diameters th...
Assembling electrospun nanofibers with controlled alignment into three-dimensional (3D), complex, an...
The biofabrication of biomimetic scaffolds for tissue engineering applications is a field in continu...