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Maintenance of Xist Imprinting Depends on Chromatin Condensation State and Rnf12 Dosage in Mice

In female mammals, activation of Xist (X-inactive specific transcript) is essential for establishment of X chromosome inactivation. During early embryonic development in mice, paternal Xist is preferentially expressed whereas maternal Xist (Xm-Xist) is silenced. Unlike autosomal imprinted genes, Xis...

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Autores principales: Fukuda, Atsushi, Mitani, Atsushi, Miyashita, Toshiyuki, Sado, Takashi, Umezawa, Akihiro, Akutsu, Hidenori
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5082930/
https://www.ncbi.nlm.nih.gov/pubmed/27788132
http://dx.doi.org/10.1371/journal.pgen.1006375
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author Fukuda, Atsushi
Mitani, Atsushi
Miyashita, Toshiyuki
Sado, Takashi
Umezawa, Akihiro
Akutsu, Hidenori
author_facet Fukuda, Atsushi
Mitani, Atsushi
Miyashita, Toshiyuki
Sado, Takashi
Umezawa, Akihiro
Akutsu, Hidenori
author_sort Fukuda, Atsushi
collection PubMed
description In female mammals, activation of Xist (X-inactive specific transcript) is essential for establishment of X chromosome inactivation. During early embryonic development in mice, paternal Xist is preferentially expressed whereas maternal Xist (Xm-Xist) is silenced. Unlike autosomal imprinted genes, Xist imprinting for Xm-Xist silencing was erased in cloned or parthenogenetic but not fertilized embryos. However, the molecular mechanism underlying the variable nature of Xm-Xist imprinting is poorly understood. Here, we revealed that Xm-Xist silencing depends on chromatin condensation states at the Xist/Tsix genomic region and on Rnf12 expression levels. In early preimplantation, chromatin decondensation via H3K9me3 loss and histone acetylation gain caused Xm-Xist derepression irrespective of embryo type. Although the presence of the paternal genome during pronuclear formation impeded Xm-Xist derepression, Xm-Xist was robustly derepressed when the maternal genome was decondensed before fertilization. Once Xm-Xist was derepressed by chromatin alterations, the derepression was stably maintained and rescued XmXp(Δ) lethality, indicating that loss of Xm-Xist imprinting was irreversible. In late preimplantation, Oct4 served as a chromatin opener to create transcriptional permissive states at Xm-Xist/Tsix genomic loci. In parthenogenetic embryos, Rnf12 overdose caused Xm-Xist derepression via Xm-Tsix repression; physiological Rnf12 levels were essential for Xm-Xist silencing maintenance in fertilized embryos. Thus, chromatin condensation and fine-tuning of Rnf12 dosage were crucial for Xist imprint maintenance by silencing Xm-Xist.
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spelling pubmed-50829302016-11-04 Maintenance of Xist Imprinting Depends on Chromatin Condensation State and Rnf12 Dosage in Mice Fukuda, Atsushi Mitani, Atsushi Miyashita, Toshiyuki Sado, Takashi Umezawa, Akihiro Akutsu, Hidenori PLoS Genet Research Article In female mammals, activation of Xist (X-inactive specific transcript) is essential for establishment of X chromosome inactivation. During early embryonic development in mice, paternal Xist is preferentially expressed whereas maternal Xist (Xm-Xist) is silenced. Unlike autosomal imprinted genes, Xist imprinting for Xm-Xist silencing was erased in cloned or parthenogenetic but not fertilized embryos. However, the molecular mechanism underlying the variable nature of Xm-Xist imprinting is poorly understood. Here, we revealed that Xm-Xist silencing depends on chromatin condensation states at the Xist/Tsix genomic region and on Rnf12 expression levels. In early preimplantation, chromatin decondensation via H3K9me3 loss and histone acetylation gain caused Xm-Xist derepression irrespective of embryo type. Although the presence of the paternal genome during pronuclear formation impeded Xm-Xist derepression, Xm-Xist was robustly derepressed when the maternal genome was decondensed before fertilization. Once Xm-Xist was derepressed by chromatin alterations, the derepression was stably maintained and rescued XmXp(Δ) lethality, indicating that loss of Xm-Xist imprinting was irreversible. In late preimplantation, Oct4 served as a chromatin opener to create transcriptional permissive states at Xm-Xist/Tsix genomic loci. In parthenogenetic embryos, Rnf12 overdose caused Xm-Xist derepression via Xm-Tsix repression; physiological Rnf12 levels were essential for Xm-Xist silencing maintenance in fertilized embryos. Thus, chromatin condensation and fine-tuning of Rnf12 dosage were crucial for Xist imprint maintenance by silencing Xm-Xist. Public Library of Science 2016-10-27 /pmc/articles/PMC5082930/ /pubmed/27788132 http://dx.doi.org/10.1371/journal.pgen.1006375 Text en © 2016 Fukuda 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Fukuda, Atsushi
Mitani, Atsushi
Miyashita, Toshiyuki
Sado, Takashi
Umezawa, Akihiro
Akutsu, Hidenori
Maintenance of Xist Imprinting Depends on Chromatin Condensation State and Rnf12 Dosage in Mice
title Maintenance of Xist Imprinting Depends on Chromatin Condensation State and Rnf12 Dosage in Mice
title_full Maintenance of Xist Imprinting Depends on Chromatin Condensation State and Rnf12 Dosage in Mice
title_fullStr Maintenance of Xist Imprinting Depends on Chromatin Condensation State and Rnf12 Dosage in Mice
title_full_unstemmed Maintenance of Xist Imprinting Depends on Chromatin Condensation State and Rnf12 Dosage in Mice
title_short Maintenance of Xist Imprinting Depends on Chromatin Condensation State and Rnf12 Dosage in Mice
title_sort maintenance of xist imprinting depends on chromatin condensation state and rnf12 dosage in mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5082930/
https://www.ncbi.nlm.nih.gov/pubmed/27788132
http://dx.doi.org/10.1371/journal.pgen.1006375
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