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SMAD7 directly converts human embryonic stem cells to telencephalic fate by a default mechanism.


ABSTRACT: Human embryonic stem cells (hESCs) provide a valuable window into the dissection of the molecular circuitry underlying the early formation of the human forebrain. However, dissection of signaling events in forebrain development using current protocols is complicated by non-neural contamination and fluctuation of extrinsic influences. Here, we show that SMAD7, a cell-intrinsic inhibitor of transforming growth factor-? (TGF?) signaling, is sufficient to directly convert pluripotent hESCs to an anterior neural fate. Time course gene expression revealed downregulation of MAPK components, and combining MEK1/2 inhibition with SMAD7-mediated TGF? inhibition promoted telencephalic conversion. Fibroblast growth factor-MEK and TGF?-SMAD signaling maintain hESCs by promoting pluripotency genes and repressing neural genes. Our findings suggest that in the absence of these cues, pluripotent cells simply revert to a program of neural conversion. Hence, the "primed" state of hESCs requires inhibition of the "default" state of neural fate acquisition. This has parallels in amphibians, suggesting an evolutionarily conserved mechanism.

SUBMITTER: Ozair MZ 

PROVIDER: S-EPMC4103884 | biostudies-literature | 2013 Jan

REPOSITORIES: biostudies-literature

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SMAD7 directly converts human embryonic stem cells to telencephalic fate by a default mechanism.

Ozair Mohammad Zeeshan MZ   Noggle Scott S   Warmflash Aryeh A   Krzyspiak Joanna Ela JE   Brivanlou Ali H AH  

Stem cells (Dayton, Ohio) 20130101 1


Human embryonic stem cells (hESCs) provide a valuable window into the dissection of the molecular circuitry underlying the early formation of the human forebrain. However, dissection of signaling events in forebrain development using current protocols is complicated by non-neural contamination and fluctuation of extrinsic influences. Here, we show that SMAD7, a cell-intrinsic inhibitor of transforming growth factor-β (TGFβ) signaling, is sufficient to directly convert pluripotent hESCs to an ant  ...[more]

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