Sex determining region Y-box 2 (Sox2), a member of the SoxB1 transcription factor family, is an important transcriptional regulator in pluripotent stem cells (PSCs). Together with octamer-binding transcription factor 4 and Nanog, they co-operatively control gene expression in PSCs and maintain their pluripotency. Furthermore, Sox2 plays an essential role in somatic cell reprogramming, reversing the epigenetic configuration of differentiated cells back to a pluripotent embryonic state. In addition to its role in regulation of pluripotency, Sox2 is also a critical factor for directing the differentiation of PSCs to neural progenitors and for maintaining the properties of neural progenitor stem cells. Here, we review recent findings concerning...
Pluripotency factors Oct4, Sox2, and Nanog orchestrate an elaborate hierarchy of gene regulation gov...
The transcription factor Sox2 (SRY-related HMG box gene 2) plays a pivotal role in maintaining self-...
Summary: Organ formation and maintenance depends on slowly self-renewing stem cells that supply an i...
Summary. The SOX (Sry-related HMG box) proteins comprise a group of transcription factors that act a...
Abstract Background Sox2 is a well-established pluripotent transcription factor that plays an essent...
Sox2 is well known for its functions in embryonic stem (ES) cell pluripotency, maintenance, and self...
Neural differentiation from human embryonic stem cells (hESCs) provides a promising source for cell ...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
SummarySox2 is an important transcriptional regulator in embryonic and adult stem cells [1–4]. Recen...
AbstractNeural progenitors of the vertebrate CNS are defined by generic cellular characteristics, in...
SOX2 is one of the key transcription factors involved in maintenance of neural progenitor identity. ...
<div><p>Stem cells are defined by their capacities to self-renew and generate progeny of multiple li...
Stem cells are defined by their capacities to self-renew and generate progeny of multiple lineages. ...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
AbstractInduced pluripotent stem cells (iPSCs) are generated by directly reprogramming somatic cells...
Pluripotency factors Oct4, Sox2, and Nanog orchestrate an elaborate hierarchy of gene regulation gov...
The transcription factor Sox2 (SRY-related HMG box gene 2) plays a pivotal role in maintaining self-...
Summary: Organ formation and maintenance depends on slowly self-renewing stem cells that supply an i...
Summary. The SOX (Sry-related HMG box) proteins comprise a group of transcription factors that act a...
Abstract Background Sox2 is a well-established pluripotent transcription factor that plays an essent...
Sox2 is well known for its functions in embryonic stem (ES) cell pluripotency, maintenance, and self...
Neural differentiation from human embryonic stem cells (hESCs) provides a promising source for cell ...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
SummarySox2 is an important transcriptional regulator in embryonic and adult stem cells [1–4]. Recen...
AbstractNeural progenitors of the vertebrate CNS are defined by generic cellular characteristics, in...
SOX2 is one of the key transcription factors involved in maintenance of neural progenitor identity. ...
<div><p>Stem cells are defined by their capacities to self-renew and generate progeny of multiple li...
Stem cells are defined by their capacities to self-renew and generate progeny of multiple lineages. ...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
AbstractInduced pluripotent stem cells (iPSCs) are generated by directly reprogramming somatic cells...
Pluripotency factors Oct4, Sox2, and Nanog orchestrate an elaborate hierarchy of gene regulation gov...
The transcription factor Sox2 (SRY-related HMG box gene 2) plays a pivotal role in maintaining self-...
Summary: Organ formation and maintenance depends on slowly self-renewing stem cells that supply an i...