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SOX2 Co-Occupies Distal Enhancer Elements with Distinct POU Factors in ESCs and NPCs to Specify Cell State

SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural progenitor cells (NPCs); however, we currently lack a detailed understanding of how SOX2 controls these distinct stem cell populations. Here we show by genome-wide analysis that, while SOX2 bound to a d...

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Autores principales: Lodato, Michael A., Ng, Christopher W., Wamstad, Joseph A., Cheng, Albert W., Thai, Kevin K., Fraenkel, Ernest, Jaenisch, Rudolf, Boyer, Laurie A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3578749/
https://www.ncbi.nlm.nih.gov/pubmed/23437007
http://dx.doi.org/10.1371/journal.pgen.1003288
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author Lodato, Michael A.
Ng, Christopher W.
Wamstad, Joseph A.
Cheng, Albert W.
Thai, Kevin K.
Fraenkel, Ernest
Jaenisch, Rudolf
Boyer, Laurie A.
author_facet Lodato, Michael A.
Ng, Christopher W.
Wamstad, Joseph A.
Cheng, Albert W.
Thai, Kevin K.
Fraenkel, Ernest
Jaenisch, Rudolf
Boyer, Laurie A.
author_sort Lodato, Michael A.
collection PubMed
description SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural progenitor cells (NPCs); however, we currently lack a detailed understanding of how SOX2 controls these distinct stem cell populations. Here we show by genome-wide analysis that, while SOX2 bound to a distinct set of gene promoters in ESCs and NPCs, the majority of regions coincided with unique distal enhancer elements, important cis-acting regulators of tissue-specific gene expression programs. Notably, SOX2 bound the same consensus DNA motif in both cell types, suggesting that additional factors contribute to target specificity. We found that, similar to its association with OCT4 (Pou5f1) in ESCs, the related POU family member BRN2 (Pou3f2) co-occupied a large set of putative distal enhancers with SOX2 in NPCs. Forced expression of BRN2 in ESCs led to functional recruitment of SOX2 to a subset of NPC-specific targets and to precocious differentiation toward a neural-like state. Further analysis of the bound sequences revealed differences in the distances of SOX and POU peaks in the two cell types and identified motifs for additional transcription factors. Together, these data suggest that SOX2 controls a larger network of genes than previously anticipated through binding of distal enhancers and that transitions in POU partner factors may control tissue-specific transcriptional programs. Our findings have important implications for understanding lineage specification and somatic cell reprogramming, where SOX2, OCT4, and BRN2 have been shown to be key factors.
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spelling pubmed-35787492013-02-22 SOX2 Co-Occupies Distal Enhancer Elements with Distinct POU Factors in ESCs and NPCs to Specify Cell State Lodato, Michael A. Ng, Christopher W. Wamstad, Joseph A. Cheng, Albert W. Thai, Kevin K. Fraenkel, Ernest Jaenisch, Rudolf Boyer, Laurie A. PLoS Genet Research Article SOX2 is a master regulator of both pluripotent embryonic stem cells (ESCs) and multipotent neural progenitor cells (NPCs); however, we currently lack a detailed understanding of how SOX2 controls these distinct stem cell populations. Here we show by genome-wide analysis that, while SOX2 bound to a distinct set of gene promoters in ESCs and NPCs, the majority of regions coincided with unique distal enhancer elements, important cis-acting regulators of tissue-specific gene expression programs. Notably, SOX2 bound the same consensus DNA motif in both cell types, suggesting that additional factors contribute to target specificity. We found that, similar to its association with OCT4 (Pou5f1) in ESCs, the related POU family member BRN2 (Pou3f2) co-occupied a large set of putative distal enhancers with SOX2 in NPCs. Forced expression of BRN2 in ESCs led to functional recruitment of SOX2 to a subset of NPC-specific targets and to precocious differentiation toward a neural-like state. Further analysis of the bound sequences revealed differences in the distances of SOX and POU peaks in the two cell types and identified motifs for additional transcription factors. Together, these data suggest that SOX2 controls a larger network of genes than previously anticipated through binding of distal enhancers and that transitions in POU partner factors may control tissue-specific transcriptional programs. Our findings have important implications for understanding lineage specification and somatic cell reprogramming, where SOX2, OCT4, and BRN2 have been shown to be key factors. Public Library of Science 2013-02-21 /pmc/articles/PMC3578749/ /pubmed/23437007 http://dx.doi.org/10.1371/journal.pgen.1003288 Text en © 2013 Lodato et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Lodato, Michael A.
Ng, Christopher W.
Wamstad, Joseph A.
Cheng, Albert W.
Thai, Kevin K.
Fraenkel, Ernest
Jaenisch, Rudolf
Boyer, Laurie A.
SOX2 Co-Occupies Distal Enhancer Elements with Distinct POU Factors in ESCs and NPCs to Specify Cell State
title SOX2 Co-Occupies Distal Enhancer Elements with Distinct POU Factors in ESCs and NPCs to Specify Cell State
title_full SOX2 Co-Occupies Distal Enhancer Elements with Distinct POU Factors in ESCs and NPCs to Specify Cell State
title_fullStr SOX2 Co-Occupies Distal Enhancer Elements with Distinct POU Factors in ESCs and NPCs to Specify Cell State
title_full_unstemmed SOX2 Co-Occupies Distal Enhancer Elements with Distinct POU Factors in ESCs and NPCs to Specify Cell State
title_short SOX2 Co-Occupies Distal Enhancer Elements with Distinct POU Factors in ESCs and NPCs to Specify Cell State
title_sort sox2 co-occupies distal enhancer elements with distinct pou factors in escs and npcs to specify cell state
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3578749/
https://www.ncbi.nlm.nih.gov/pubmed/23437007
http://dx.doi.org/10.1371/journal.pgen.1003288
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