Recent studies have associated the transcription factors, Oct4, Sox2 and Nanog as parts of a self-regulating network which is responsible for maintaining embryonic stem cell properties: self renewal and pluripotency. In addition, mutual antagonism between two of these and other master regulators have been shown to regulate lineage determination. In particular, an excess of Cdx2 over Oct4 determines the trophectoderm lineage whereas an excess of Gata-6 over Nanog determines differentiation into the endoderm lineage. Also, under/over-expression studies of the master regulator Oct4 have revealed that some self-renewal/pluripotency as well as differentiation genes are expressed in a biphasic manner with respect to the concentration of Oct4.We c...
Mouse embryonic stem cells (mESCs) can be maintained in a proliferative and undifferentiated state o...
Human embryonic stem cells (hESC) have been a major cell source for research in regenerative medicin...
<div><p>A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse...
Background. Recent studies have associated the transcription factors, Oct4, Sox2 and Nanog as parts ...
lineage. Also, under/over-expression studies of the master regulator Oct4 have revealed that some s...
Background: Embryonic stem cells (ESC) have the capacity to self-renew and remain pluripotent, while...
Recent ChIP experiments of human and mouse embryonic stem cells have elucidated the architecture of ...
Multiple experimental data demonstrated that the core gene network orchestrating self-renewal and di...
<div><p>Multiple experimental data demonstrated that the core gene network orchestrating self-renewa...
The expression of the transcription factors Oct4, Sox2, and Nanog is commonly associated with plurip...
BackgroundHeterogeneous gene expressions of cells are widely observed in self-renewing pluripotent s...
The principal barrier to gaining understanding of embryonic stem (ES) cell regulatory networks is th...
Background: Embryonic stem cells (ESC) have the capacity to self-renew and remain pluripotent, while...
<div><p>Embryonic stem cells exhibit pluripotency: they can differentiate into all types of somatic ...
Pluripotency in embryonic stem cells is maintained through the activity of a small set of transcript...
Mouse embryonic stem cells (mESCs) can be maintained in a proliferative and undifferentiated state o...
Human embryonic stem cells (hESC) have been a major cell source for research in regenerative medicin...
<div><p>A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse...
Background. Recent studies have associated the transcription factors, Oct4, Sox2 and Nanog as parts ...
lineage. Also, under/over-expression studies of the master regulator Oct4 have revealed that some s...
Background: Embryonic stem cells (ESC) have the capacity to self-renew and remain pluripotent, while...
Recent ChIP experiments of human and mouse embryonic stem cells have elucidated the architecture of ...
Multiple experimental data demonstrated that the core gene network orchestrating self-renewal and di...
<div><p>Multiple experimental data demonstrated that the core gene network orchestrating self-renewa...
The expression of the transcription factors Oct4, Sox2, and Nanog is commonly associated with plurip...
BackgroundHeterogeneous gene expressions of cells are widely observed in self-renewing pluripotent s...
The principal barrier to gaining understanding of embryonic stem (ES) cell regulatory networks is th...
Background: Embryonic stem cells (ESC) have the capacity to self-renew and remain pluripotent, while...
<div><p>Embryonic stem cells exhibit pluripotency: they can differentiate into all types of somatic ...
Pluripotency in embryonic stem cells is maintained through the activity of a small set of transcript...
Mouse embryonic stem cells (mESCs) can be maintained in a proliferative and undifferentiated state o...
Human embryonic stem cells (hESC) have been a major cell source for research in regenerative medicin...
<div><p>A 30-node signed and directed network responsible for self-renewal and pluripotency of mouse...