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H3K9 tri-methylation at Nanog times differentiation commitment and enables the acquisition of primitive endoderm fate

Mouse embryonic stem cells have an inherent propensity to explore gene regulatory states associated with either self-renewal or differentiation. This property depends on ERK, which downregulates pluripotency genes such as Nanog. Here, we aimed at identifying repressive histone modifications that wou...

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Autores principales: Dubois, Agnès, Vincenti, Loris, Chervova, Almira, Greenberg, Maxim V. C., Vandormael-Pournin, Sandrine, Bourc'his, Déborah, Cohen-Tannoudji, Michel, Navarro, Pablo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9482333/
https://www.ncbi.nlm.nih.gov/pubmed/35976266
http://dx.doi.org/10.1242/dev.201074
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author Dubois, Agnès
Vincenti, Loris
Chervova, Almira
Greenberg, Maxim V. C.
Vandormael-Pournin, Sandrine
Bourc'his, Déborah
Cohen-Tannoudji, Michel
Navarro, Pablo
author_facet Dubois, Agnès
Vincenti, Loris
Chervova, Almira
Greenberg, Maxim V. C.
Vandormael-Pournin, Sandrine
Bourc'his, Déborah
Cohen-Tannoudji, Michel
Navarro, Pablo
author_sort Dubois, Agnès
collection PubMed
description Mouse embryonic stem cells have an inherent propensity to explore gene regulatory states associated with either self-renewal or differentiation. This property depends on ERK, which downregulates pluripotency genes such as Nanog. Here, we aimed at identifying repressive histone modifications that would mark Nanog for inactivation in response to ERK activity. We found that the transcription factor ZFP57, which binds methylated DNA to nucleate heterochromatin, is recruited upstream of Nanog, within a region enriched for histone H3 lysine 9 tri-methylation (H3K9me3). Whereas before differentiation H3K9me3 at Nanog depends on ERK, in somatic cells it becomes independent of ERK. Moreover, the loss of H3K9me3 at Nanog, induced by deleting the region or by knocking out DNA methyltransferases or Zfp57, is associated with reduced heterogeneity of NANOG, delayed commitment into differentiation and impaired ability to acquire a primitive endoderm fate. Hence, a network axis centred on DNA methylation, ZFP57 and H3K9me3 links Nanog regulation to ERK activity for the timely establishment of new cell identities. We suggest that establishment of irreversible H3K9me3 at specific master regulators allows the acquisition of particular cell fates during differentiation.
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spelling pubmed-94823332022-10-25 H3K9 tri-methylation at Nanog times differentiation commitment and enables the acquisition of primitive endoderm fate Dubois, Agnès Vincenti, Loris Chervova, Almira Greenberg, Maxim V. C. Vandormael-Pournin, Sandrine Bourc'his, Déborah Cohen-Tannoudji, Michel Navarro, Pablo Development Stem Cells and Regeneration Mouse embryonic stem cells have an inherent propensity to explore gene regulatory states associated with either self-renewal or differentiation. This property depends on ERK, which downregulates pluripotency genes such as Nanog. Here, we aimed at identifying repressive histone modifications that would mark Nanog for inactivation in response to ERK activity. We found that the transcription factor ZFP57, which binds methylated DNA to nucleate heterochromatin, is recruited upstream of Nanog, within a region enriched for histone H3 lysine 9 tri-methylation (H3K9me3). Whereas before differentiation H3K9me3 at Nanog depends on ERK, in somatic cells it becomes independent of ERK. Moreover, the loss of H3K9me3 at Nanog, induced by deleting the region or by knocking out DNA methyltransferases or Zfp57, is associated with reduced heterogeneity of NANOG, delayed commitment into differentiation and impaired ability to acquire a primitive endoderm fate. Hence, a network axis centred on DNA methylation, ZFP57 and H3K9me3 links Nanog regulation to ERK activity for the timely establishment of new cell identities. We suggest that establishment of irreversible H3K9me3 at specific master regulators allows the acquisition of particular cell fates during differentiation. The Company of Biologists Ltd 2022-09-09 /pmc/articles/PMC9482333/ /pubmed/35976266 http://dx.doi.org/10.1242/dev.201074 Text en © 2022. Published by The Company of Biologists Ltd https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Stem Cells and Regeneration
Dubois, Agnès
Vincenti, Loris
Chervova, Almira
Greenberg, Maxim V. C.
Vandormael-Pournin, Sandrine
Bourc'his, Déborah
Cohen-Tannoudji, Michel
Navarro, Pablo
H3K9 tri-methylation at Nanog times differentiation commitment and enables the acquisition of primitive endoderm fate
title H3K9 tri-methylation at Nanog times differentiation commitment and enables the acquisition of primitive endoderm fate
title_full H3K9 tri-methylation at Nanog times differentiation commitment and enables the acquisition of primitive endoderm fate
title_fullStr H3K9 tri-methylation at Nanog times differentiation commitment and enables the acquisition of primitive endoderm fate
title_full_unstemmed H3K9 tri-methylation at Nanog times differentiation commitment and enables the acquisition of primitive endoderm fate
title_short H3K9 tri-methylation at Nanog times differentiation commitment and enables the acquisition of primitive endoderm fate
title_sort h3k9 tri-methylation at nanog times differentiation commitment and enables the acquisition of primitive endoderm fate
topic Stem Cells and Regeneration
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9482333/
https://www.ncbi.nlm.nih.gov/pubmed/35976266
http://dx.doi.org/10.1242/dev.201074
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