Abstract. Severe muscle injury is still a challenging clinical problem. Exosomes derived from adipose stem cells (ASC-exos) may be a potential therapeutic tool, but their mechanism is not completely clear. This review aims to elaborate the possible mechanism of ASC-exos in muscle regeneration from the perspective of signal pathways and provide guidance for further study. Literature cited in this review was acquired through PubMed using keywords or medical subject headings, including adipose stem cells, exosomes, muscle regeneration, myogenic differentiation, myogenesis, wingless/integrated (Wnt), mitogen-activated protein kinases, phosphatidylinositol-4,5-bisphosphate 3-kinase/protein kinase B (PI3K/Akt), Janus kinase/signal transducers and...
Introduction: Skeletal muscle functions as an endocrine organ, and a key way to accomplish that is t...
The mesenchymal stem cells have multidirectional differentiation potential and can differentiate int...
Formation of skeletal muscle fibers (myogenesis) during development and after tissue injury in the a...
Exosomes released from skeletal muscle cells play important roles in myogenesis and muscle developme...
AbstractMesenchymal stem cell (MSC) transplantation is used for treatment of many diseases. The para...
Repeated mechanical stress causes injuries in the adult skeletal muscle that need to be repaired. Al...
BackgroundL: The mechanisms underpinning the regenerative capabilities of mesenchymal stem cells (MS...
Homeostatic and regenerative replacement of skeletal muscle fibers requires the activity of a dedica...
Functional interactions between muscle (satellite) stem cells—MuSCs—and other cellular components of...
Skeletal muscle regeneration is mediated by a complex crosstalk between several resident mononuclear...
Muscular dystrophies are genetic neuromuscular disorders characterized by skeletal muscle degenerati...
Exosomes are extracellular membranous nanovesicles that mediate local and systemic cell-to-cell comm...
Skeletal muscle is a highly specialized tissue composed of non-dividing, multi-nucleated muscle fibr...
Abstract Background Skeletal muscle has a remarkable regenerative capacity. However, extensive damag...
Introduction: Skeletal muscle functions as an endocrine organ, and a key way to accomplish that is t...
The mesenchymal stem cells have multidirectional differentiation potential and can differentiate int...
Formation of skeletal muscle fibers (myogenesis) during development and after tissue injury in the a...
Exosomes released from skeletal muscle cells play important roles in myogenesis and muscle developme...
AbstractMesenchymal stem cell (MSC) transplantation is used for treatment of many diseases. The para...
Repeated mechanical stress causes injuries in the adult skeletal muscle that need to be repaired. Al...
BackgroundL: The mechanisms underpinning the regenerative capabilities of mesenchymal stem cells (MS...
Homeostatic and regenerative replacement of skeletal muscle fibers requires the activity of a dedica...
Functional interactions between muscle (satellite) stem cells—MuSCs—and other cellular components of...
Skeletal muscle regeneration is mediated by a complex crosstalk between several resident mononuclear...
Muscular dystrophies are genetic neuromuscular disorders characterized by skeletal muscle degenerati...
Exosomes are extracellular membranous nanovesicles that mediate local and systemic cell-to-cell comm...
Skeletal muscle is a highly specialized tissue composed of non-dividing, multi-nucleated muscle fibr...
Abstract Background Skeletal muscle has a remarkable regenerative capacity. However, extensive damag...
Introduction: Skeletal muscle functions as an endocrine organ, and a key way to accomplish that is t...
The mesenchymal stem cells have multidirectional differentiation potential and can differentiate int...
Formation of skeletal muscle fibers (myogenesis) during development and after tissue injury in the a...