Biomimetic scaffolds mimicking the natural hierarchical structure of tissues have recently attracted the interest of researchers and provide a promising strategy to resemble the non-homogeneous property of tissues. This review provides an overview of the various hierarchical length scales in the native tissues of the musculoskeletal system. It further focuses on electrospinning as a technique to mimic the tissue structures with specific emphasis on bone. The effect of cellular alignment, infiltration, vascularisation, and differentiation in these nanostructures has also been discussed. An outline of the various additive manufacturing techniques in combination with electrospinning has been elaborated. The review concludes with the challenges...
As a versatile nanofiber manufacturing technique, electrospinning has been widely employed for the f...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
Electrospinning is considered the most versatile micro‐/nanofiber fabrication technology. The electr...
Tissue engineering is an interdisciplinary field that integrates medical, biological, and engineerin...
Electrospinning, an electrostatic fiber fabrication technique, has attracted significant interest in...
The ultimate goal of tissue engineering is to replace damaged tissues by applying engineering techno...
Electrospinning is a popular technique used to mimic the natural sub-micron features of the native t...
As the population gets older, the demands for new medical treatments increase since many of our most...
Electrospinning is a versatile technique that enables the development of nanofiber-based scaffolds, ...
Considering the complex hierarchical structure of bone, biomimicking the micro and nano level featur...
Electrospun nanofibers represent a class of versatile scaffolds for tissue engineering applications ...
While electrospinning had seen intermittent use in the textile industry from the early twentieth cen...
The composition (i.e. biomaterials of synthetic or natural origin) and structure (or design) of a bi...
Despite being known for decades (since 1934), electrospinning has emerged recently as a very widespr...
Considering the complex hierarchical structure of bone, biomimicking the micro and nano level featur...
As a versatile nanofiber manufacturing technique, electrospinning has been widely employed for the f...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
Electrospinning is considered the most versatile micro‐/nanofiber fabrication technology. The electr...
Tissue engineering is an interdisciplinary field that integrates medical, biological, and engineerin...
Electrospinning, an electrostatic fiber fabrication technique, has attracted significant interest in...
The ultimate goal of tissue engineering is to replace damaged tissues by applying engineering techno...
Electrospinning is a popular technique used to mimic the natural sub-micron features of the native t...
As the population gets older, the demands for new medical treatments increase since many of our most...
Electrospinning is a versatile technique that enables the development of nanofiber-based scaffolds, ...
Considering the complex hierarchical structure of bone, biomimicking the micro and nano level featur...
Electrospun nanofibers represent a class of versatile scaffolds for tissue engineering applications ...
While electrospinning had seen intermittent use in the textile industry from the early twentieth cen...
The composition (i.e. biomaterials of synthetic or natural origin) and structure (or design) of a bi...
Despite being known for decades (since 1934), electrospinning has emerged recently as a very widespr...
Considering the complex hierarchical structure of bone, biomimicking the micro and nano level featur...
As a versatile nanofiber manufacturing technique, electrospinning has been widely employed for the f...
Tissue engineering makes use of the principles of medicine, biology and engineering and integrates t...
Electrospinning is considered the most versatile micro‐/nanofiber fabrication technology. The electr...