Histone modifications and chromatin remodeling represent universal mechanisms by which cells adapt their transcriptional response to rapidly changing environmental conditions. Extensive chromatin remodeling takes place during neuronal development, allowing the transition of pluripotent cells into differentiated neurons. Here, we report that the NuRD complex, which couples ATP-dependent chromatin remodeling with histone deacetylase activity, regulates mouse brain development. Subunit exchange of CHDs, the core ATPase subunits of the NuRD complex, is required for distinct aspects of cortical development. Whereas CHD4 promotes the early proliferation of progenitors, CHD5 facilitates neuronal migration and CHD3 ensures proper layer specificatio...
SummaryPrecise control of gene expression plays fundamental roles in brain development, but the role...
AbstractThe nucleosome remodeling deacetylase (NuRD) complex is a highly conserved regulator of chro...
The nucleosome remodeling deacetylase (NuRD) complex is a highly conserved regulator of chromatin st...
SummaryHistone modifications and chromatin remodeling represent universal mechanisms by which cells ...
Histone modifications and chromatin remodeling represent universal mechanisms by which cells adapt t...
SummaryHistone modifications and chromatin remodeling represent universal mechanisms by which cells ...
The nucleosome remodeling and deacetylase (NuRD) complex presents one of the major chromatin remodel...
The nucleosome remodeling and deacetylase (NuRD) complex presents one of the major chromatin remodel...
BACKGROUND: Chromatin-modifying complexes have key roles in regulating various aspects of neural ste...
Abstract Background Chromatin-modifying complexes hav...
Precise control of gene expression plays fundamental roles in brain development, but the roles of ch...
Precise control of gene expression plays fundamental roles in brain development, but the roles of ch...
Precise control of gene expression plays fundamental roles in brain development, but the roles of ch...
BACKGROUND: Chromatin-modifying complexes have key roles in regulating various aspects of neural ste...
Differentiation of mammalian pluripotent cells involves large-scale changes in transcription and, am...
SummaryPrecise control of gene expression plays fundamental roles in brain development, but the role...
AbstractThe nucleosome remodeling deacetylase (NuRD) complex is a highly conserved regulator of chro...
The nucleosome remodeling deacetylase (NuRD) complex is a highly conserved regulator of chromatin st...
SummaryHistone modifications and chromatin remodeling represent universal mechanisms by which cells ...
Histone modifications and chromatin remodeling represent universal mechanisms by which cells adapt t...
SummaryHistone modifications and chromatin remodeling represent universal mechanisms by which cells ...
The nucleosome remodeling and deacetylase (NuRD) complex presents one of the major chromatin remodel...
The nucleosome remodeling and deacetylase (NuRD) complex presents one of the major chromatin remodel...
BACKGROUND: Chromatin-modifying complexes have key roles in regulating various aspects of neural ste...
Abstract Background Chromatin-modifying complexes hav...
Precise control of gene expression plays fundamental roles in brain development, but the roles of ch...
Precise control of gene expression plays fundamental roles in brain development, but the roles of ch...
Precise control of gene expression plays fundamental roles in brain development, but the roles of ch...
BACKGROUND: Chromatin-modifying complexes have key roles in regulating various aspects of neural ste...
Differentiation of mammalian pluripotent cells involves large-scale changes in transcription and, am...
SummaryPrecise control of gene expression plays fundamental roles in brain development, but the role...
AbstractThe nucleosome remodeling deacetylase (NuRD) complex is a highly conserved regulator of chro...
The nucleosome remodeling deacetylase (NuRD) complex is a highly conserved regulator of chromatin st...