Electrospinning is considered the most versatile micro‐/nanofiber fabrication technology. The electrospun fibers hold high surface area, desired mechanical properties, controlled topography, as well as the ease of biochemical functionalization. The 3D electrospun fibrous structures closely mimic the hierarchical architecture and fibrous features of the extracellular matrices (ECM), which greatly contribute to biomaterials design to stimulate tissue regeneration. Herein, the recent advances in electrospinning technology for 3D production of ECM‐mimicking biomaterial scaffolds are systematically summarized and the applications in neural, cardiac, bone, skin, and vascularized tissue regeneration are thoroughly discussed. Challenges and future ...
Electrospun nanofibers have been frequently used for tissue engineering due to their morphological s...
Worldwide research on electrospinning enabled it as a versatile technique for producing nanofibers w...
Electrospinning is a versatile technique that enables the development of nanofiber-based scaffolds, ...
Tissue engineering is an interdisciplinary field that integrates medical, biological, and engineerin...
While electrospinning had seen intermittent use in the textile industry from the early twentieth cen...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
While electrospinning had seen intermittent use in the textile industry from the early twentieth cen...
While electrospinning had seen intermittent use in the textile industry from the early twentieth cen...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
Electrospinning has been used for the fabrication of extracellular matrix (ECM)-mimicking fibrous sc...
The ultimate goal of tissue engineering is to replace damaged tissues by applying engineering techno...
Electrospinning has been used for the fabrication of extracellular matrix (ECM)-mimicking fibrous sc...
Electrospinning has been used for the fabrication of extracellular matrix (ECM)-mimicking fibrous sc...
Electrospun techniques are promising and flexible technologies to fabricate ultrafine fiber/nanofibe...
Electrospun nanofibers have been frequently used for tissue engineering due to their morphological s...
Worldwide research on electrospinning enabled it as a versatile technique for producing nanofibers w...
Electrospinning is a versatile technique that enables the development of nanofiber-based scaffolds, ...
Tissue engineering is an interdisciplinary field that integrates medical, biological, and engineerin...
While electrospinning had seen intermittent use in the textile industry from the early twentieth cen...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
While electrospinning had seen intermittent use in the textile industry from the early twentieth cen...
While electrospinning had seen intermittent use in the textile industry from the early twentieth cen...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
Electrospinning has been used for the fabrication of extracellular matrix (ECM)-mimicking fibrous sc...
The ultimate goal of tissue engineering is to replace damaged tissues by applying engineering techno...
Electrospinning has been used for the fabrication of extracellular matrix (ECM)-mimicking fibrous sc...
Electrospinning has been used for the fabrication of extracellular matrix (ECM)-mimicking fibrous sc...
Electrospun techniques are promising and flexible technologies to fabricate ultrafine fiber/nanofibe...
Electrospun nanofibers have been frequently used for tissue engineering due to their morphological s...
Worldwide research on electrospinning enabled it as a versatile technique for producing nanofibers w...
Electrospinning is a versatile technique that enables the development of nanofiber-based scaffolds, ...