Skeletal muscle regeneration is increasingly necessary, which is reflected in the increasing number of studies that are focused on improving the scaffolds used for such regeneration, as well as the incubation protocol. The main objective of this work was to improve the characteristics of polycaprolactone (PCL) scaffolds by incorporating elastin to achieve better cell proliferation and biocompatibility. In addition, two cell incubation protocols (with and without dynamic mechanical stimulation) were evaluated to improve the activity and functionality yields of the regenerated cells. The results indicate that the incorporation of elastin generates aligned and more hydrophilic scaffolds with smaller fiber size. In addition, the mechanical prop...
Tissue engineering represents a possible approach to replace the lost or defective muscle. The purp...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
This article belongs to the Special Issue Polymeric Scaffolds for Tissue Engineering.Skeletal muscle...
Skeletal muscle regeneration is increasingly necessary, which is reflected in the increasing number ...
The creation of skeletal muscle tissue in vitro is a major topic of interest today in the field of ...
Tissue engineering combines a scaffold, cells and regulatory signals, reproducing a biomimetic extra...
The creation of skeletal muscle tissue in vitro is a major topic of interest today in the field of b...
Skeletal muscles can self-repair minor strains, lacerations, and contusions; however, in cases of vo...
Tissue engineering represents a possible approach to replace the lost or defective muscle. The purp...
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...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
This article belongs to the Special Issue Polymeric Scaffolds for Tissue Engineering.Skeletal muscle...
Skeletal muscle regeneration is increasingly necessary, which is reflected in the increasing number ...
The creation of skeletal muscle tissue in vitro is a major topic of interest today in the field of ...
Tissue engineering combines a scaffold, cells and regulatory signals, reproducing a biomimetic extra...
The creation of skeletal muscle tissue in vitro is a major topic of interest today in the field of b...
Skeletal muscles can self-repair minor strains, lacerations, and contusions; however, in cases of vo...
Tissue engineering represents a possible approach to replace the lost or defective muscle. The purp...
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...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...
We report the study of novel biodegradable electrospun scaffolds from poly(butylene 1,4-cyclohexandi...