The classical cell cycle regulatory pathway is well appreciated as a key regulator of cell fate determination during neurogenesis; however, the extent of pRB/E2F function in neural stem and progenitor cells is not fully understood, and insight into the mechanisms underlying its connection with cell fate regulation are lacking. The E2F3 transcription factor has emerged as an important regulator of neural precursor cell (NPC) proliferation in the embryonic and adult forebrain, and we demonstrate here that it also influences the self-renewal potential of NPCs. Using knockout mouse models of individual E2F3 isoforms, we demonstrate the surprising result that the classical transcriptional activator E2F3a represses NPC self-renewal and promotes n...
The E2f3 locus encodes two Rb-binding gene products, E2F3a and E2F3b, which are differentially regul...
MicroRNAs have emerged as key posttranscriptional regulators of gene expression during vertebrate de...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
SummaryThe mechanisms through which cell-cycle control and cell-fate decisions are coordinated in pr...
Neural precursors persist throughout life in the rodent forebrain subventricular zone (SVZ) and hipp...
Summary: Organ formation and maintenance depends on slowly self-renewing stem cells that supply an i...
While the role of the cell cycle regulatory Rb/E2F pathway is well appreciated as a key regulator of...
The Sox2 transcription factor is necessary for the long-term self-renewal of neural stem cells (NSCs...
peer reviewedStem cell fate decisions are controlled by a molecular network in which transcription f...
The neural fate commitment of pluripotent stem cells requires the repression of extrinsic inhibitory...
E2Fs play a central role in cell proliferation and growth arrest through their ability to regulate g...
AbstractNeural progenitors of the vertebrate CNS are defined by generic cellular characteristics, in...
AbstractAppropriate neural initiation of the pluripotent stem cells in the early embryos is critical...
SummaryOrgan formation and maintenance depends on slowly self-renewing stem cells that supply an int...
E2F transcription factors play a critical role in cell cycle progression through the regulation of g...
The E2f3 locus encodes two Rb-binding gene products, E2F3a and E2F3b, which are differentially regul...
MicroRNAs have emerged as key posttranscriptional regulators of gene expression during vertebrate de...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...
SummaryThe mechanisms through which cell-cycle control and cell-fate decisions are coordinated in pr...
Neural precursors persist throughout life in the rodent forebrain subventricular zone (SVZ) and hipp...
Summary: Organ formation and maintenance depends on slowly self-renewing stem cells that supply an i...
While the role of the cell cycle regulatory Rb/E2F pathway is well appreciated as a key regulator of...
The Sox2 transcription factor is necessary for the long-term self-renewal of neural stem cells (NSCs...
peer reviewedStem cell fate decisions are controlled by a molecular network in which transcription f...
The neural fate commitment of pluripotent stem cells requires the repression of extrinsic inhibitory...
E2Fs play a central role in cell proliferation and growth arrest through their ability to regulate g...
AbstractNeural progenitors of the vertebrate CNS are defined by generic cellular characteristics, in...
AbstractAppropriate neural initiation of the pluripotent stem cells in the early embryos is critical...
SummaryOrgan formation and maintenance depends on slowly self-renewing stem cells that supply an int...
E2F transcription factors play a critical role in cell cycle progression through the regulation of g...
The E2f3 locus encodes two Rb-binding gene products, E2F3a and E2F3b, which are differentially regul...
MicroRNAs have emerged as key posttranscriptional regulators of gene expression during vertebrate de...
SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural pr...