Abstract Background The creation of functional skeletal muscle via tissue engineering holds great promise without sacrificing healthy donor tissue. Different cell types have been investigated regarding their myogenic differentiation potential under the influence of various media supplemented with growth factors. Yet, most cell cultures include the use of animal sera, which raises safety concerns and might lead to variances in results. Electrospun nanoscaffolds represent suitable matrices for tissue engineering of skeletal muscle, combining both biocompatibility and stability. We therefore aimed to develop a serum-free myogenic differentiation medium for the co-culture of primary myoblasts (Mb) and mesenchymal stromal cells derived from the ...
Microenvironmental cues, such as surface topography and substrate stiffness, may affect stem cells a...
Background/Aims\ud \ud Biological and synthetic scaffolds play important roles in tissue engineering...
Skeletal muscles represent 40% of body mass and its native regenerative capacity can be permanently ...
Background The creation of functional skeletal muscle via tissue engineering holds great promise ...
Background Volumetric muscle loss caused by trauma or after tumour surgery exceeds the natural re...
Abstract Background Tissue engineering of vascularised skeletal muscle is a promising method for the...
Tissue engineering combines a scaffold, cells and regulatory signals, reproducing a biomimetic extra...
Myogenic progenitor cells derived from human embryonic stem cells (hESCs) can provide unlimited sour...
Mesenchymal stem cells (MSCs) have been recognized for their ability to differentiate into cells of ...
The influence of differentiation medium (DM) components on C2C12 murine myoblast differentiation has...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
Myoblasts, the contractile cells of skeletal muscle, have been invaluable for fundamental studies of...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
Skeletal muscles can self-repair minor strains, lacerations, and contusions; however, in cases of vo...
Kroehne V, Heschel I, Schuegner F, Lasrich D, Bartsch JW, Jockusch H. Use of a novel collagen matrix...
Microenvironmental cues, such as surface topography and substrate stiffness, may affect stem cells a...
Background/Aims\ud \ud Biological and synthetic scaffolds play important roles in tissue engineering...
Skeletal muscles represent 40% of body mass and its native regenerative capacity can be permanently ...
Background The creation of functional skeletal muscle via tissue engineering holds great promise ...
Background Volumetric muscle loss caused by trauma or after tumour surgery exceeds the natural re...
Abstract Background Tissue engineering of vascularised skeletal muscle is a promising method for the...
Tissue engineering combines a scaffold, cells and regulatory signals, reproducing a biomimetic extra...
Myogenic progenitor cells derived from human embryonic stem cells (hESCs) can provide unlimited sour...
Mesenchymal stem cells (MSCs) have been recognized for their ability to differentiate into cells of ...
The influence of differentiation medium (DM) components on C2C12 murine myoblast differentiation has...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
Myoblasts, the contractile cells of skeletal muscle, have been invaluable for fundamental studies of...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
Skeletal muscles can self-repair minor strains, lacerations, and contusions; however, in cases of vo...
Kroehne V, Heschel I, Schuegner F, Lasrich D, Bartsch JW, Jockusch H. Use of a novel collagen matrix...
Microenvironmental cues, such as surface topography and substrate stiffness, may affect stem cells a...
Background/Aims\ud \ud Biological and synthetic scaffolds play important roles in tissue engineering...
Skeletal muscles represent 40% of body mass and its native regenerative capacity can be permanently ...