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Highly rigid H3.1/H3.2–H3K9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells

The placenta is a highly evolved, specialized organ in mammals. It differs from other organs in that it functions only for fetal maintenance during gestation. Therefore, there must be intrinsic mechanisms that guarantee its unique functions. To address this question, we comprehensively analyzed epig...

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Autores principales: Hada, Masashi, Miura, Hisashi, Tanigawa, Akie, Matoba, Shogo, Inoue, Kimiko, Ogonuki, Narumi, Hirose, Michiko, Watanabe, Naomi, Nakato, Ryuichiro, Fujiki, Katsunori, Hasegawa, Ayumi, Sakashita, Akihiko, Okae, Hiroaki, Miura, Kento, Shikata, Daiki, Arima, Takahiro, Shirahige, Katsuhiko, Hiratani, Ichiro, Ogura, Atsuo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8763053/
https://www.ncbi.nlm.nih.gov/pubmed/34992147
http://dx.doi.org/10.1101/gad.348782.121
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author Hada, Masashi
Miura, Hisashi
Tanigawa, Akie
Matoba, Shogo
Inoue, Kimiko
Ogonuki, Narumi
Hirose, Michiko
Watanabe, Naomi
Nakato, Ryuichiro
Fujiki, Katsunori
Hasegawa, Ayumi
Sakashita, Akihiko
Okae, Hiroaki
Miura, Kento
Shikata, Daiki
Arima, Takahiro
Shirahige, Katsuhiko
Hiratani, Ichiro
Ogura, Atsuo
author_facet Hada, Masashi
Miura, Hisashi
Tanigawa, Akie
Matoba, Shogo
Inoue, Kimiko
Ogonuki, Narumi
Hirose, Michiko
Watanabe, Naomi
Nakato, Ryuichiro
Fujiki, Katsunori
Hasegawa, Ayumi
Sakashita, Akihiko
Okae, Hiroaki
Miura, Kento
Shikata, Daiki
Arima, Takahiro
Shirahige, Katsuhiko
Hiratani, Ichiro
Ogura, Atsuo
author_sort Hada, Masashi
collection PubMed
description The placenta is a highly evolved, specialized organ in mammals. It differs from other organs in that it functions only for fetal maintenance during gestation. Therefore, there must be intrinsic mechanisms that guarantee its unique functions. To address this question, we comprehensively analyzed epigenomic features of mouse trophoblast stem cells (TSCs). Our genome-wide, high-throughput analyses revealed that the TSC genome contains large-scale (>1-Mb) rigid heterochromatin architectures with a high degree of histone H3.1/3.2–H3K9me3 accumulation, which we termed TSC-defined highly heterochromatinized domains (THDs). Importantly, depletion of THDs by knockdown of CAF1, an H3.1/3.2 chaperone, resulted in down-regulation of TSC markers, such as Cdx2 and Elf5, and up-regulation of the pluripotent marker Oct3/4, indicating that THDs maintain the trophoblastic nature of TSCs. Furthermore, our nuclear transfer technique revealed that THDs are highly resistant to genomic reprogramming. However, when H3K9me3 was removed, the TSC genome was fully reprogrammed, giving rise to the first TSC cloned offspring. Interestingly, THD-like domains are also present in mouse and human placental cells in vivo, but not in other cell types. Thus, THDs are genomic architectures uniquely developed in placental lineage cells, which serve to protect them from fate reprogramming to stably maintain placental function.
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spelling pubmed-87630532022-07-01 Highly rigid H3.1/H3.2–H3K9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells Hada, Masashi Miura, Hisashi Tanigawa, Akie Matoba, Shogo Inoue, Kimiko Ogonuki, Narumi Hirose, Michiko Watanabe, Naomi Nakato, Ryuichiro Fujiki, Katsunori Hasegawa, Ayumi Sakashita, Akihiko Okae, Hiroaki Miura, Kento Shikata, Daiki Arima, Takahiro Shirahige, Katsuhiko Hiratani, Ichiro Ogura, Atsuo Genes Dev Research Paper The placenta is a highly evolved, specialized organ in mammals. It differs from other organs in that it functions only for fetal maintenance during gestation. Therefore, there must be intrinsic mechanisms that guarantee its unique functions. To address this question, we comprehensively analyzed epigenomic features of mouse trophoblast stem cells (TSCs). Our genome-wide, high-throughput analyses revealed that the TSC genome contains large-scale (>1-Mb) rigid heterochromatin architectures with a high degree of histone H3.1/3.2–H3K9me3 accumulation, which we termed TSC-defined highly heterochromatinized domains (THDs). Importantly, depletion of THDs by knockdown of CAF1, an H3.1/3.2 chaperone, resulted in down-regulation of TSC markers, such as Cdx2 and Elf5, and up-regulation of the pluripotent marker Oct3/4, indicating that THDs maintain the trophoblastic nature of TSCs. Furthermore, our nuclear transfer technique revealed that THDs are highly resistant to genomic reprogramming. However, when H3K9me3 was removed, the TSC genome was fully reprogrammed, giving rise to the first TSC cloned offspring. Interestingly, THD-like domains are also present in mouse and human placental cells in vivo, but not in other cell types. Thus, THDs are genomic architectures uniquely developed in placental lineage cells, which serve to protect them from fate reprogramming to stably maintain placental function. Cold Spring Harbor Laboratory Press 2022-01-01 /pmc/articles/PMC8763053/ /pubmed/34992147 http://dx.doi.org/10.1101/gad.348782.121 Text en © 2022 Hada et al.; Published by Cold Spring Harbor Laboratory Press https://creativecommons.org/licenses/by-nc/4.0/This article is distributed exclusively by Cold Spring Harbor Laboratory Press for the first six months after the full-issue publication date (see http://genesdev.cshlp.org/site/misc/terms.xhtml). After six months, it is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) .
spellingShingle Research Paper
Hada, Masashi
Miura, Hisashi
Tanigawa, Akie
Matoba, Shogo
Inoue, Kimiko
Ogonuki, Narumi
Hirose, Michiko
Watanabe, Naomi
Nakato, Ryuichiro
Fujiki, Katsunori
Hasegawa, Ayumi
Sakashita, Akihiko
Okae, Hiroaki
Miura, Kento
Shikata, Daiki
Arima, Takahiro
Shirahige, Katsuhiko
Hiratani, Ichiro
Ogura, Atsuo
Highly rigid H3.1/H3.2–H3K9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells
title Highly rigid H3.1/H3.2–H3K9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells
title_full Highly rigid H3.1/H3.2–H3K9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells
title_fullStr Highly rigid H3.1/H3.2–H3K9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells
title_full_unstemmed Highly rigid H3.1/H3.2–H3K9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells
title_short Highly rigid H3.1/H3.2–H3K9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells
title_sort highly rigid h3.1/h3.2–h3k9me3 domains set a barrier for cell fate reprogramming in trophoblast stem cells
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8763053/
https://www.ncbi.nlm.nih.gov/pubmed/34992147
http://dx.doi.org/10.1101/gad.348782.121
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