It has been known that three core transcription factors (TFs), NANOG, OCT4, and SOX2, collaborate to form a transcriptional circuitry to regulate pluripotency and self-renewal of human embryonic stem (ES) cells. Similarly, MYC also plays an important role in regulating pluripotency and self-renewal of human ES cells. However, the precise mechanism by which the transcriptional regulatory networks control the activity of ES cells remains unclear. In this study, we reanalyzed an extended core network, which includes the set of genes that are cobound by the three core TFs and additional TFs that also bind to these cobound genes. Our results show that beyond the core transcriptional network, additional transcriptional networks are potentially im...
Embryonic stem cells (ESCs) are pluripotent and have unlimited self-renewal capacity. Although pluri...
The molecular mechanism that maintains the pluripotency of embryonic stem cells (ESCs) is not well u...
Embryonic stem (ES) cells are of great interest as a model system for studying early developmental p...
It has been known that three core transcription factors (TFs), NANOG, OCT4, and SOX2, collaborate to...
SummaryMuch attention has focused on a small set of transcription factors that maintain human or mou...
SummaryThe transcription factors OCT4, SOX2, and NANOG have essential roles in early development and...
SummaryTranscription factors (TFs) and their specific interactions with targets are crucial for spec...
SummaryStem cell fate is governed by the integration of intrinsic and extrinsic positive and negativ...
Summaryc-Myc (Myc) is an important transcriptional regulator in embryonic stem (ES) cells, somatic c...
Abstract Background Recent work has revealed that a core group of transcription factors (TFs) regula...
Critical transcription factors, notably OCT4, SOX2, and NANOG, are necessary to maintain self-renewa...
Embryonic stem (ES) cells are derived from the inner cell mass of blastocyst stage embryos and when ...
Understanding the molecular mechanisms controlling pluripotency in embryonic stem cells (ESCs) is of...
Pluripotency factors Oct4, Sox2, and Nanog orchestrate an elaborate hierarchy of gene regulation gov...
Since the successful isolation of mouse and human embryonic stem cells (ESCs) in the past decades, m...
Embryonic stem cells (ESCs) are pluripotent and have unlimited self-renewal capacity. Although pluri...
The molecular mechanism that maintains the pluripotency of embryonic stem cells (ESCs) is not well u...
Embryonic stem (ES) cells are of great interest as a model system for studying early developmental p...
It has been known that three core transcription factors (TFs), NANOG, OCT4, and SOX2, collaborate to...
SummaryMuch attention has focused on a small set of transcription factors that maintain human or mou...
SummaryThe transcription factors OCT4, SOX2, and NANOG have essential roles in early development and...
SummaryTranscription factors (TFs) and their specific interactions with targets are crucial for spec...
SummaryStem cell fate is governed by the integration of intrinsic and extrinsic positive and negativ...
Summaryc-Myc (Myc) is an important transcriptional regulator in embryonic stem (ES) cells, somatic c...
Abstract Background Recent work has revealed that a core group of transcription factors (TFs) regula...
Critical transcription factors, notably OCT4, SOX2, and NANOG, are necessary to maintain self-renewa...
Embryonic stem (ES) cells are derived from the inner cell mass of blastocyst stage embryos and when ...
Understanding the molecular mechanisms controlling pluripotency in embryonic stem cells (ESCs) is of...
Pluripotency factors Oct4, Sox2, and Nanog orchestrate an elaborate hierarchy of gene regulation gov...
Since the successful isolation of mouse and human embryonic stem cells (ESCs) in the past decades, m...
Embryonic stem cells (ESCs) are pluripotent and have unlimited self-renewal capacity. Although pluri...
The molecular mechanism that maintains the pluripotency of embryonic stem cells (ESCs) is not well u...
Embryonic stem (ES) cells are of great interest as a model system for studying early developmental p...