Background The transcription factor OCT4 is highly expressed in pluripotent embryonic stem cells which are derived from the inner cell mass of mammalian blastocysts. Pluripotency and self renewal are controlled by a transcription regulatory network governed by the transcription factors OCT4, SOX2 and NANOG. Recent studies on reprogramming somatic cells to induced pluripotent stem cells highlight OCT4 as a key regulator of pluripotency. Results We have carried out an integrated analysis of high-throughput data (ChIP-on-chip and RNAi experiments along with promoter sequence analysis of putative target genes) and identified a core OCT4 regulatory network in human embryonic stem cells consisting of 33 target genes. Enrichment analysis with thes...
The transcription factor Oct4 plays a central role in controlling the undifferentiated state of embr...
Coordinated transcription factor networks have emerged as the master regulatory mechanisms of stem c...
2011-07-01Human embryonic stem cells (hESC) derived from the inner cell mass of pre-implantation hum...
The POU domain transcription factor OCT4 is a key regulator of pluripotency in the early mammalian e...
It is essential to understand the network of transcription factors controlling self-renewal of human...
Pluripotency factors Oct4, Sox2, and Nanog orchestrate an elaborate hierarchy of gene regulation gov...
The transcription factor (TF) Oct4 is essential for maintaining pluripotency in vitro as well as in ...
Stem cells are characterized by two defining features, the ability to self-renew and to differentiat...
SummaryThe transcription factor Oct4 is key in embryonic stem cell identity and reprogramming. Insig...
SummaryThe transcription factors OCT4, SOX2, and NANOG have essential roles in early development and...
SummaryMuch attention has focused on a small set of transcription factors that maintain human or mou...
BACKGROUND: Oct4 is a key factor of an expanded transcriptional network (Oct4-TN) that governs pluri...
Background: Genome-wide approaches have begun to reveal the transcriptional networks responsible for...
SummaryWe combine a genome-scale RNAi screen in mouse epiblast stem cells (EpiSCs) with genetic inte...
BACKGROUND: Oct4 is a key factor of an expanded transcriptional network (Oct4-TN) that governs pluri...
The transcription factor Oct4 plays a central role in controlling the undifferentiated state of embr...
Coordinated transcription factor networks have emerged as the master regulatory mechanisms of stem c...
2011-07-01Human embryonic stem cells (hESC) derived from the inner cell mass of pre-implantation hum...
The POU domain transcription factor OCT4 is a key regulator of pluripotency in the early mammalian e...
It is essential to understand the network of transcription factors controlling self-renewal of human...
Pluripotency factors Oct4, Sox2, and Nanog orchestrate an elaborate hierarchy of gene regulation gov...
The transcription factor (TF) Oct4 is essential for maintaining pluripotency in vitro as well as in ...
Stem cells are characterized by two defining features, the ability to self-renew and to differentiat...
SummaryThe transcription factor Oct4 is key in embryonic stem cell identity and reprogramming. Insig...
SummaryThe transcription factors OCT4, SOX2, and NANOG have essential roles in early development and...
SummaryMuch attention has focused on a small set of transcription factors that maintain human or mou...
BACKGROUND: Oct4 is a key factor of an expanded transcriptional network (Oct4-TN) that governs pluri...
Background: Genome-wide approaches have begun to reveal the transcriptional networks responsible for...
SummaryWe combine a genome-scale RNAi screen in mouse epiblast stem cells (EpiSCs) with genetic inte...
BACKGROUND: Oct4 is a key factor of an expanded transcriptional network (Oct4-TN) that governs pluri...
The transcription factor Oct4 plays a central role in controlling the undifferentiated state of embr...
Coordinated transcription factor networks have emerged as the master regulatory mechanisms of stem c...
2011-07-01Human embryonic stem cells (hESC) derived from the inner cell mass of pre-implantation hum...