Mammalian SWI/SNF complexes are ATP-dependent chromatin remodeling enzymes that have been implicated in the regulation of gene expression, cell-cycle control and oncogenesis. MyoD is a muscle-specific regulator able to induce myogenesis in numerous cell types. To ascertain the requirement for chromatin remodeling enzymes in cellular differentiation processes, we examined MyoD-mediated induction of muscle differentiation in fibroblasts expressing dominant-negative versions of the human brahma-related gene-1 (BRG1) or human brahma (BRM), the ATPase subunits of two distinct SWI/SNF enzymes. We find that induction of the myogenic phenotype is completely abrogated in the presence of the mutant enzymes. We further demonstrate that failure to indu...
During skeletal myogenesis, genomic reprogramming toward terminal differentiation is achieved by rec...
Although the two catalytic subunits of the SWI/SNF chromatin-remodeling complex—Brahma (Brm) and Brg...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
Cell cycle arrest is critical for muscle differentiation, and the two processes are closely coordina...
The myogenic basic helix-loop-helix family of transcription factors, MyoD, Myf5, myogenin, and MRF4,...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
Myogenin is required not for the initiation of myogenesis but instead for skeletal muscle formation ...
Skeletal muscle differentiation relies on the coordinated activation and repression of specific subs...
Myogenesis is the biological process by which skeletal muscle tissue forms. Regulation of myogenesis...
Skeletal muscle regeneration is mediated by myoblasts that undergo epigenomic changes to establish t...
Many studies have examined transcriptional regulation during the initiation of skeletal muscle diffe...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
Skeletal muscle differentiation induces changes in the epigenome of myoblasts as they proceed toward...
Although the two catalytic subunits of the SWI/SNF chromatin-remodeling complex—Brahma (Brm) and Brg...
During skeletal myogenesis, genomic reprogramming toward terminal differentiation is achieved by rec...
During skeletal myogenesis, genomic reprogramming toward terminal differentiation is achieved by rec...
Although the two catalytic subunits of the SWI/SNF chromatin-remodeling complex—Brahma (Brm) and Brg...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
Cell cycle arrest is critical for muscle differentiation, and the two processes are closely coordina...
The myogenic basic helix-loop-helix family of transcription factors, MyoD, Myf5, myogenin, and MRF4,...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
Myogenin is required not for the initiation of myogenesis but instead for skeletal muscle formation ...
Skeletal muscle differentiation relies on the coordinated activation and repression of specific subs...
Myogenesis is the biological process by which skeletal muscle tissue forms. Regulation of myogenesis...
Skeletal muscle regeneration is mediated by myoblasts that undergo epigenomic changes to establish t...
Many studies have examined transcriptional regulation during the initiation of skeletal muscle diffe...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
Skeletal muscle differentiation induces changes in the epigenome of myoblasts as they proceed toward...
Although the two catalytic subunits of the SWI/SNF chromatin-remodeling complex—Brahma (Brm) and Brg...
During skeletal myogenesis, genomic reprogramming toward terminal differentiation is achieved by rec...
During skeletal myogenesis, genomic reprogramming toward terminal differentiation is achieved by rec...
Although the two catalytic subunits of the SWI/SNF chromatin-remodeling complex—Brahma (Brm) and Brg...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...