A central question in development is to define how the equilibrium between cell proliferation and differentiation is temporally and spatially regulated during tissue formation. Here, we address how interactions between cyclin-dependent kinase inhibitors essential for myogenic growth arrest (p21(cip1) and p57(kip2)), the Notch pathway and myogenic regulatory factors (MRFs) orchestrate the proliferation, specification and differentiation of muscle progenitor cells. We first show that cell cycle exit and myogenic differentiation can be uncoupled. In addition, we establish that skeletal muscle progenitor cells require Notch signaling to maintain their cycling status. Using several mouse models combined with ex vivo studies, we demonstrate that ...
Vertebrate skeletal muscle development is characterized by tight coupling of muscle differentiation ...
International audiencePostnatal skeletal muscle growth results from the activation of satellite cell...
Vertebrate skeletal muscle development is characterized by tight coupling of muscle differentiation ...
International audienceA central question in development is to define how the equilibrium between cel...
International audienceA central question in development is to define how the equilibrium between cel...
This thesis focuses on the coordination of proliferation and differentiation in embryonic and adult ...
This thesis focuses on the coordination of proliferation and differentiation in embryonic and adult ...
This thesis focuses on the coordination of proliferation and differentiation in embryonic and adult ...
Satellite cells (SCs) are myogenic stem cells found in skeletal muscle that function to repair tissu...
The regenerative potential ofadult skeletal muscle is primarily attributed to satellite cells. Norma...
SummaryThe temporal switch from progenitor cell proliferation to differentiation is essential for ef...
Notch signaling is a conserved cell fate regulator during development and postnatal tissue regenerat...
The Notch pathway is an evolutionarily conserved signaling cascade that regulates many cell fate dec...
The balance between proliferation and differentiation of muscle stem cells is tightly controlled, en...
Vertebrate skeletal muscle development is characterized by tight coupling of muscle differentiation ...
Vertebrate skeletal muscle development is characterized by tight coupling of muscle differentiation ...
International audiencePostnatal skeletal muscle growth results from the activation of satellite cell...
Vertebrate skeletal muscle development is characterized by tight coupling of muscle differentiation ...
International audienceA central question in development is to define how the equilibrium between cel...
International audienceA central question in development is to define how the equilibrium between cel...
This thesis focuses on the coordination of proliferation and differentiation in embryonic and adult ...
This thesis focuses on the coordination of proliferation and differentiation in embryonic and adult ...
This thesis focuses on the coordination of proliferation and differentiation in embryonic and adult ...
Satellite cells (SCs) are myogenic stem cells found in skeletal muscle that function to repair tissu...
The regenerative potential ofadult skeletal muscle is primarily attributed to satellite cells. Norma...
SummaryThe temporal switch from progenitor cell proliferation to differentiation is essential for ef...
Notch signaling is a conserved cell fate regulator during development and postnatal tissue regenerat...
The Notch pathway is an evolutionarily conserved signaling cascade that regulates many cell fate dec...
The balance between proliferation and differentiation of muscle stem cells is tightly controlled, en...
Vertebrate skeletal muscle development is characterized by tight coupling of muscle differentiation ...
Vertebrate skeletal muscle development is characterized by tight coupling of muscle differentiation ...
International audiencePostnatal skeletal muscle growth results from the activation of satellite cell...
Vertebrate skeletal muscle development is characterized by tight coupling of muscle differentiation ...