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Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human

Current human pluripotent stem cells lack the transcription factor circuitry that governs the ground state of mouse embryonic stem cells (ESC). Here, we report that short-term expression of two components, NANOG and KLF2, is sufficient to ignite other elements of the network and reset the human plur...

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Autores principales: Takashima, Yasuhiro, Guo, Ge, Loos, Remco, Nichols, Jennifer, Ficz, Gabriella, Krueger, Felix, Oxley, David, Santos, Fatima, Clarke, James, Mansfield, William, Reik, Wolf, Bertone, Paul, Smith, Austin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4162745/
https://www.ncbi.nlm.nih.gov/pubmed/25215486
http://dx.doi.org/10.1016/j.cell.2014.08.029
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author Takashima, Yasuhiro
Guo, Ge
Loos, Remco
Nichols, Jennifer
Ficz, Gabriella
Krueger, Felix
Oxley, David
Santos, Fatima
Clarke, James
Mansfield, William
Reik, Wolf
Bertone, Paul
Smith, Austin
author_facet Takashima, Yasuhiro
Guo, Ge
Loos, Remco
Nichols, Jennifer
Ficz, Gabriella
Krueger, Felix
Oxley, David
Santos, Fatima
Clarke, James
Mansfield, William
Reik, Wolf
Bertone, Paul
Smith, Austin
author_sort Takashima, Yasuhiro
collection PubMed
description Current human pluripotent stem cells lack the transcription factor circuitry that governs the ground state of mouse embryonic stem cells (ESC). Here, we report that short-term expression of two components, NANOG and KLF2, is sufficient to ignite other elements of the network and reset the human pluripotent state. Inhibition of ERK and protein kinase C sustains a transgene-independent rewired state. Reset cells self-renew continuously without ERK signaling, are phenotypically stable, and are karyotypically intact. They differentiate in vitro and form teratomas in vivo. Metabolism is reprogrammed with activation of mitochondrial respiration as in ESC. DNA methylation is dramatically reduced and transcriptome state is globally realigned across multiple cell lines. Depletion of ground-state transcription factors, TFCP2L1 or KLF4, has marginal impact on conventional human pluripotent stem cells but collapses the reset state. These findings demonstrate feasibility of installing and propagating functional control circuitry for ground-state pluripotency in human cells.
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spelling pubmed-41627452014-09-15 Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human Takashima, Yasuhiro Guo, Ge Loos, Remco Nichols, Jennifer Ficz, Gabriella Krueger, Felix Oxley, David Santos, Fatima Clarke, James Mansfield, William Reik, Wolf Bertone, Paul Smith, Austin Cell Article Current human pluripotent stem cells lack the transcription factor circuitry that governs the ground state of mouse embryonic stem cells (ESC). Here, we report that short-term expression of two components, NANOG and KLF2, is sufficient to ignite other elements of the network and reset the human pluripotent state. Inhibition of ERK and protein kinase C sustains a transgene-independent rewired state. Reset cells self-renew continuously without ERK signaling, are phenotypically stable, and are karyotypically intact. They differentiate in vitro and form teratomas in vivo. Metabolism is reprogrammed with activation of mitochondrial respiration as in ESC. DNA methylation is dramatically reduced and transcriptome state is globally realigned across multiple cell lines. Depletion of ground-state transcription factors, TFCP2L1 or KLF4, has marginal impact on conventional human pluripotent stem cells but collapses the reset state. These findings demonstrate feasibility of installing and propagating functional control circuitry for ground-state pluripotency in human cells. Cell Press 2014-09-11 /pmc/articles/PMC4162745/ /pubmed/25215486 http://dx.doi.org/10.1016/j.cell.2014.08.029 Text en © 2014 The Authors https://creativecommons.org/licenses/by/3.0/This work is licensed under a Creative Commons Attribution 3.0 Unported License (https://creativecommons.org/licenses/by/3.0/) .
spellingShingle Article
Takashima, Yasuhiro
Guo, Ge
Loos, Remco
Nichols, Jennifer
Ficz, Gabriella
Krueger, Felix
Oxley, David
Santos, Fatima
Clarke, James
Mansfield, William
Reik, Wolf
Bertone, Paul
Smith, Austin
Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human
title Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human
title_full Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human
title_fullStr Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human
title_full_unstemmed Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human
title_short Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human
title_sort resetting transcription factor control circuitry toward ground-state pluripotency in human
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4162745/
https://www.ncbi.nlm.nih.gov/pubmed/25215486
http://dx.doi.org/10.1016/j.cell.2014.08.029
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