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Single-cell analyses of X Chromosome inactivation dynamics and pluripotency during differentiation

Pluripotency, differentiation, and X Chromosome inactivation (XCI) are key aspects of embryonic development. However, the underlying relationship and mechanisms among these processes remain unclear. Here, we systematically dissected these features along developmental progression using mouse embryoni...

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Autores principales: Chen, Geng, Schell, John Paul, Benitez, Julio Aguila, Petropoulos, Sophie, Yilmaz, Marlene, Reinius, Björn, Alekseenko, Zhanna, Shi, Leming, Hedlund, Eva, Lanner, Fredrik, Sandberg, Rickard, Deng, Qiaolin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5052059/
https://www.ncbi.nlm.nih.gov/pubmed/27486082
http://dx.doi.org/10.1101/gr.201954.115
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author Chen, Geng
Schell, John Paul
Benitez, Julio Aguila
Petropoulos, Sophie
Yilmaz, Marlene
Reinius, Björn
Alekseenko, Zhanna
Shi, Leming
Hedlund, Eva
Lanner, Fredrik
Sandberg, Rickard
Deng, Qiaolin
author_facet Chen, Geng
Schell, John Paul
Benitez, Julio Aguila
Petropoulos, Sophie
Yilmaz, Marlene
Reinius, Björn
Alekseenko, Zhanna
Shi, Leming
Hedlund, Eva
Lanner, Fredrik
Sandberg, Rickard
Deng, Qiaolin
author_sort Chen, Geng
collection PubMed
description Pluripotency, differentiation, and X Chromosome inactivation (XCI) are key aspects of embryonic development. However, the underlying relationship and mechanisms among these processes remain unclear. Here, we systematically dissected these features along developmental progression using mouse embryonic stem cells (mESCs) and single-cell RNA sequencing with allelic resolution. We found that mESCs grown in a ground state 2i condition displayed transcriptomic profiles diffused from preimplantation mouse embryonic cells, whereas EpiStem cells closely resembled the post-implantation epiblast. Sex-related gene expression varied greatly across distinct developmental states. We also identified novel markers that were highly enriched in each developmental state. Moreover, we revealed that several novel pathways, including PluriNetWork and Focal Adhesion, were responsible for the delayed progression of female EpiStem cells. Importantly, we “digitalized” XCI progression using allelic expression of active and inactive X Chromosomes and surprisingly found that XCI states exhibited profound variability in each developmental state, including the 2i condition. XCI progression was not tightly synchronized with loss of pluripotency and increase of differentiation at the single-cell level, although these processes were globally correlated. In addition, highly expressed genes, including core pluripotency factors, were in general biallelically expressed. Taken together, our study sheds light on the dynamics of XCI progression and the asynchronicity between pluripotency, differentiation, and XCI.
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spelling pubmed-50520592016-10-19 Single-cell analyses of X Chromosome inactivation dynamics and pluripotency during differentiation Chen, Geng Schell, John Paul Benitez, Julio Aguila Petropoulos, Sophie Yilmaz, Marlene Reinius, Björn Alekseenko, Zhanna Shi, Leming Hedlund, Eva Lanner, Fredrik Sandberg, Rickard Deng, Qiaolin Genome Res Research Pluripotency, differentiation, and X Chromosome inactivation (XCI) are key aspects of embryonic development. However, the underlying relationship and mechanisms among these processes remain unclear. Here, we systematically dissected these features along developmental progression using mouse embryonic stem cells (mESCs) and single-cell RNA sequencing with allelic resolution. We found that mESCs grown in a ground state 2i condition displayed transcriptomic profiles diffused from preimplantation mouse embryonic cells, whereas EpiStem cells closely resembled the post-implantation epiblast. Sex-related gene expression varied greatly across distinct developmental states. We also identified novel markers that were highly enriched in each developmental state. Moreover, we revealed that several novel pathways, including PluriNetWork and Focal Adhesion, were responsible for the delayed progression of female EpiStem cells. Importantly, we “digitalized” XCI progression using allelic expression of active and inactive X Chromosomes and surprisingly found that XCI states exhibited profound variability in each developmental state, including the 2i condition. XCI progression was not tightly synchronized with loss of pluripotency and increase of differentiation at the single-cell level, although these processes were globally correlated. In addition, highly expressed genes, including core pluripotency factors, were in general biallelically expressed. Taken together, our study sheds light on the dynamics of XCI progression and the asynchronicity between pluripotency, differentiation, and XCI. Cold Spring Harbor Laboratory Press 2016-10 /pmc/articles/PMC5052059/ /pubmed/27486082 http://dx.doi.org/10.1101/gr.201954.115 Text en © 2016 Chen et al.; Published by Cold Spring Harbor Laboratory Press http://creativecommons.org/licenses/by/4.0/ This article, published in Genome Research, is available under a Creative Commons License (Attribution 4.0 International), as described at http://creativecommons.org/licenses/by/4.0/.
spellingShingle Research
Chen, Geng
Schell, John Paul
Benitez, Julio Aguila
Petropoulos, Sophie
Yilmaz, Marlene
Reinius, Björn
Alekseenko, Zhanna
Shi, Leming
Hedlund, Eva
Lanner, Fredrik
Sandberg, Rickard
Deng, Qiaolin
Single-cell analyses of X Chromosome inactivation dynamics and pluripotency during differentiation
title Single-cell analyses of X Chromosome inactivation dynamics and pluripotency during differentiation
title_full Single-cell analyses of X Chromosome inactivation dynamics and pluripotency during differentiation
title_fullStr Single-cell analyses of X Chromosome inactivation dynamics and pluripotency during differentiation
title_full_unstemmed Single-cell analyses of X Chromosome inactivation dynamics and pluripotency during differentiation
title_short Single-cell analyses of X Chromosome inactivation dynamics and pluripotency during differentiation
title_sort single-cell analyses of x chromosome inactivation dynamics and pluripotency during differentiation
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5052059/
https://www.ncbi.nlm.nih.gov/pubmed/27486082
http://dx.doi.org/10.1101/gr.201954.115
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