The SOX2 transcription factor is critical for neural stem cell (NSC) maintenance and brain development. Through chromatin immunoprecipitation (ChIP) and chromatin interaction analysis (ChIA-PET), we determined genome-wide SOX2-bound regions and Pol II-mediated long-range chromatin interactions in brain-derived NSCs. SOX2-bound DNA was highly enriched in distal chromatin regions interacting with promoters and carrying epigenetic enhancer marks. Sox2 deletion caused widespread reduction of Pol II-mediated long-range interactions and decreased gene expression. Genes showing reduced expression in Sox2-deleted cells were significantly enriched in interactions between promoters and SOX2-bound distal enhancers. Expression of one such gene, Suppres...
The SOX genes show properties of both classical transcription factors and architectural components ...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
Summary: Organ formation and maintenance depends on slowly self-renewing stem cells that supply an i...
The SOX2 transcription factor is critical for neural stem cell (NSC) maintenance and brain developme...
In our article, we asked whether Sox2, a transcription factor important in brain development and dis...
The Sox2 gene encodes a HMG box transcription factor that plays a critical role in maintaining the s...
Cellular differentiation requires dramatic changes in chromatin organization, transcriptional regula...
The Sox2 transcription factor is necessary for the long-term self-renewal of neural stem cells (NSCs...
The transcription factor SOX3 is expressed within most neural progenitor (NP) cells of the vertebrat...
The transcription factor SOX3 is expressed within most neural progenitor (NP) cells of the vertebrat...
The HMG-box transcription factor Sox2 plays a role throughout neurogenesis and also acts at other st...
The transcription factor SOX2 is important for brain development and for neural stem cells (NSC) mai...
Sox2 is known to be important for neuron formation, but the precise mechanism through which it activ...
The transcription factor Sox2 controls the fate of pluripotent stem cells and neural stem cells. Thi...
Fundamental questions concern the transcriptional networks that control the identity and self-renewa...
The SOX genes show properties of both classical transcription factors and architectural components ...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
Summary: Organ formation and maintenance depends on slowly self-renewing stem cells that supply an i...
The SOX2 transcription factor is critical for neural stem cell (NSC) maintenance and brain developme...
In our article, we asked whether Sox2, a transcription factor important in brain development and dis...
The Sox2 gene encodes a HMG box transcription factor that plays a critical role in maintaining the s...
Cellular differentiation requires dramatic changes in chromatin organization, transcriptional regula...
The Sox2 transcription factor is necessary for the long-term self-renewal of neural stem cells (NSCs...
The transcription factor SOX3 is expressed within most neural progenitor (NP) cells of the vertebrat...
The transcription factor SOX3 is expressed within most neural progenitor (NP) cells of the vertebrat...
The HMG-box transcription factor Sox2 plays a role throughout neurogenesis and also acts at other st...
The transcription factor SOX2 is important for brain development and for neural stem cells (NSC) mai...
Sox2 is known to be important for neuron formation, but the precise mechanism through which it activ...
The transcription factor Sox2 controls the fate of pluripotent stem cells and neural stem cells. Thi...
Fundamental questions concern the transcriptional networks that control the identity and self-renewa...
The SOX genes show properties of both classical transcription factors and architectural components ...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
Summary: Organ formation and maintenance depends on slowly self-renewing stem cells that supply an i...