During skeletal muscle differentiation, the activation of some tissue-specific genes occurs immediately while others are delayed. The molecular basis controlling temporal gene regulation is poorly understood. We show that the regulatory sequences, but not other regions of genes expressed at late times of myogenesis, are in close physical proximity in differentiating embryonic tissue and in differentiating culture cells, despite these genes being located on different chromosomes. Formation of these inter-chromosomal interactions requires the lineage-determinant MyoD and functional Brg1, the ATPase subunit of SWI/SNF chromatin remodeling enzymes. Ectopic expression of myogenin and a specific Mef2 isoform induced myogenic differentiation witho...
The formation of skeletal muscle during vertebrate development involves the induction of mesoderm an...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
SummaryDissecting components of key transcriptional networks is essential for understanding complex ...
During skeletal muscle differentiation, the activa-tion of some tissue-specific genes occurs immedi-...
BACKGROUND: Among the complexities of skeletal muscle differentiation is a temporal distinction in t...
We discuss the upstream regulators of myogenesis that lead to the activation of myogenic determinati...
The formation of skeletal muscle during vertebrate development involves the induction of mesoderm an...
Myogenesis in skeletal muscle is a cascade of developmental events whose initiation involves the Myo...
It is known that the MyoD family members (MyoD, Myf5, myogenin, and MRF4) play a pivotal role in the...
It is known that the MyoD family members (MyoD, Myf5, myogenin, and MRF4) play a pivotal role in the...
Myogenin is required not for the initiation of myogenesis but instead for skeletal muscle formation ...
It is known that the MyoD family members (MyoD, Myf5, myogenin, and MRF4) play a pivotal role in the...
It is known that the MyoD family members (MyoD, Myf5, myogenin, and MRF4) play a pivotal role in the...
Myogenesis in skeletal muscle is a cascade of developmental events whose initiation involves the Myo...
AbstractThe myogenic regulatory factors MyoD and myogenin are crucial for skeletal muscle developmen...
The formation of skeletal muscle during vertebrate development involves the induction of mesoderm an...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
SummaryDissecting components of key transcriptional networks is essential for understanding complex ...
During skeletal muscle differentiation, the activa-tion of some tissue-specific genes occurs immedi-...
BACKGROUND: Among the complexities of skeletal muscle differentiation is a temporal distinction in t...
We discuss the upstream regulators of myogenesis that lead to the activation of myogenic determinati...
The formation of skeletal muscle during vertebrate development involves the induction of mesoderm an...
Myogenesis in skeletal muscle is a cascade of developmental events whose initiation involves the Myo...
It is known that the MyoD family members (MyoD, Myf5, myogenin, and MRF4) play a pivotal role in the...
It is known that the MyoD family members (MyoD, Myf5, myogenin, and MRF4) play a pivotal role in the...
Myogenin is required not for the initiation of myogenesis but instead for skeletal muscle formation ...
It is known that the MyoD family members (MyoD, Myf5, myogenin, and MRF4) play a pivotal role in the...
It is known that the MyoD family members (MyoD, Myf5, myogenin, and MRF4) play a pivotal role in the...
Myogenesis in skeletal muscle is a cascade of developmental events whose initiation involves the Myo...
AbstractThe myogenic regulatory factors MyoD and myogenin are crucial for skeletal muscle developmen...
The formation of skeletal muscle during vertebrate development involves the induction of mesoderm an...
The activation of muscle-specific gene expression requires the coordinated action of muscle regulato...
SummaryDissecting components of key transcriptional networks is essential for understanding complex ...