Tissue engineering combines a scaffold, cells and regulatory signals, reproducing a biomimetic extracellular matrix capable of supporting cell attachment and proliferation. We examined the role of an electrospun scaffold made of a biocompatible polymer during the myogenesis of skeletal muscle (SKM) as an alternative approach to tissue regeneration. The engineered nanostructure was obtained by electrospinning poly(L-lactide-co-epsilon-caprolactone) (PLCL) in the form of a 3D porous nanofibrous scaffold further coated with collagen. C2C12 were cultured on the PLCL scaffold, and cell morphology and differentiation pathways were thoroughly investigated. The functionalized PLCL scaffold recreated the SKM nanostructure and performed its biologica...
AbstractElectrospinning technology is used to fabricate sub-micrometric fiber mats made of a random ...
Electrospinning provides a simple robust method to manufacture scaffolds for tissue engineering appl...
peer-reviewedSynthetic polymeric materials have demonstrated great promise for bone tissue engineeri...
Tissue engineering combines a scaffold, cells and regulatory signals, reproducing a biomimetic extra...
Skeletal muscles can self-repair minor strains, lacerations, and contusions; however, in cases of vo...
The creation of skeletal muscle tissue in vitro is a major topic of interest today in the field of ...
Skeletal muscle regeneration is increasingly necessary, which is reflected in the increasing number ...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
Tissue engineering represents a possible approach to replace the lost or defective muscle. The purp...
Tissue engineering is a promising strategy with great therapeutic potential intended to assist the n...
Tissue engineering represents a possible approach to replace the lost or defective muscle. The purp...
Objective: Three-dimensional (3D) biomimetic nanofiber scaffolds have widespread applications in bi...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
AbstractElectrospinning technology is used to fabricate sub-micrometric fiber mats made of a random ...
Electrospinning provides a simple robust method to manufacture scaffolds for tissue engineering appl...
peer-reviewedSynthetic polymeric materials have demonstrated great promise for bone tissue engineeri...
Tissue engineering combines a scaffold, cells and regulatory signals, reproducing a biomimetic extra...
Skeletal muscles can self-repair minor strains, lacerations, and contusions; however, in cases of vo...
The creation of skeletal muscle tissue in vitro is a major topic of interest today in the field of ...
Skeletal muscle regeneration is increasingly necessary, which is reflected in the increasing number ...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
Tissue engineering represents a possible approach to replace the lost or defective muscle. The purp...
Tissue engineering is a promising strategy with great therapeutic potential intended to assist the n...
Tissue engineering represents a possible approach to replace the lost or defective muscle. The purp...
Objective: Three-dimensional (3D) biomimetic nanofiber scaffolds have widespread applications in bi...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
AbstractElectrospinning technology is used to fabricate sub-micrometric fiber mats made of a random ...
Electrospinning provides a simple robust method to manufacture scaffolds for tissue engineering appl...
peer-reviewedSynthetic polymeric materials have demonstrated great promise for bone tissue engineeri...