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Runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages

The transcriptional regulator Runx2 (runt-related transcription factor 2) has essential but distinct roles in osteoblasts and chondrocytes in skeletal development. However, Runx2-mediated regulatory mechanisms underlying the distinctive programming of osteoblasts and chondrocytes are not well unders...

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Autores principales: Hojo, Hironori, Saito, Taku, He, Xinjun, Guo, Qiuyu, Onodera, Shoko, Azuma, Toshifumi, Koebis, Michinori, Nakao, Kazuki, Aiba, Atsu, Seki, Masahide, Suzuki, Yutaka, Okada, Hiroyuki, Tanaka, Sakae, Chung, Ung-il, McMahon, Andrew P., Ohba, Shinsuke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9510047/
https://www.ncbi.nlm.nih.gov/pubmed/36070691
http://dx.doi.org/10.1016/j.celrep.2022.111315
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author Hojo, Hironori
Saito, Taku
He, Xinjun
Guo, Qiuyu
Onodera, Shoko
Azuma, Toshifumi
Koebis, Michinori
Nakao, Kazuki
Aiba, Atsu
Seki, Masahide
Suzuki, Yutaka
Okada, Hiroyuki
Tanaka, Sakae
Chung, Ung-il
McMahon, Andrew P.
Ohba, Shinsuke
author_facet Hojo, Hironori
Saito, Taku
He, Xinjun
Guo, Qiuyu
Onodera, Shoko
Azuma, Toshifumi
Koebis, Michinori
Nakao, Kazuki
Aiba, Atsu
Seki, Masahide
Suzuki, Yutaka
Okada, Hiroyuki
Tanaka, Sakae
Chung, Ung-il
McMahon, Andrew P.
Ohba, Shinsuke
author_sort Hojo, Hironori
collection PubMed
description The transcriptional regulator Runx2 (runt-related transcription factor 2) has essential but distinct roles in osteoblasts and chondrocytes in skeletal development. However, Runx2-mediated regulatory mechanisms underlying the distinctive programming of osteoblasts and chondrocytes are not well understood. Here, we perform an integrative analysis to investigate Runx2-DNA binding and chromatin accessibility ex vivo using neonatal osteoblasts and chondrocytes. We find that Runx2 engages with cell-type-distinct chromatin-accessible regions, potentially interacting with different combinations of transcriptional regulators, forming cell-type-specific hotspots, and potentiating chromatin accessibility. Genetic analysis and direct cellular reprogramming studies suggest that Runx2 is essential for establishment of chromatin accessibility in osteoblasts. Functional enhancer studies identify an Sp7 distal enhancer driven by Runx2-dependent binding and osteoblast-specific chromatin accessibility, contributing to normal osteoblast differentiation. Our findings provide a framework for understanding the regulatory landscape encompassing Runx2-mediated and cell-type-distinct enhancer networks that underlie the specification of osteoblasts.
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spelling pubmed-95100472022-09-25 Runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages Hojo, Hironori Saito, Taku He, Xinjun Guo, Qiuyu Onodera, Shoko Azuma, Toshifumi Koebis, Michinori Nakao, Kazuki Aiba, Atsu Seki, Masahide Suzuki, Yutaka Okada, Hiroyuki Tanaka, Sakae Chung, Ung-il McMahon, Andrew P. Ohba, Shinsuke Cell Rep Article The transcriptional regulator Runx2 (runt-related transcription factor 2) has essential but distinct roles in osteoblasts and chondrocytes in skeletal development. However, Runx2-mediated regulatory mechanisms underlying the distinctive programming of osteoblasts and chondrocytes are not well understood. Here, we perform an integrative analysis to investigate Runx2-DNA binding and chromatin accessibility ex vivo using neonatal osteoblasts and chondrocytes. We find that Runx2 engages with cell-type-distinct chromatin-accessible regions, potentially interacting with different combinations of transcriptional regulators, forming cell-type-specific hotspots, and potentiating chromatin accessibility. Genetic analysis and direct cellular reprogramming studies suggest that Runx2 is essential for establishment of chromatin accessibility in osteoblasts. Functional enhancer studies identify an Sp7 distal enhancer driven by Runx2-dependent binding and osteoblast-specific chromatin accessibility, contributing to normal osteoblast differentiation. Our findings provide a framework for understanding the regulatory landscape encompassing Runx2-mediated and cell-type-distinct enhancer networks that underlie the specification of osteoblasts. 2022-09-06 /pmc/articles/PMC9510047/ /pubmed/36070691 http://dx.doi.org/10.1016/j.celrep.2022.111315 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) ).
spellingShingle Article
Hojo, Hironori
Saito, Taku
He, Xinjun
Guo, Qiuyu
Onodera, Shoko
Azuma, Toshifumi
Koebis, Michinori
Nakao, Kazuki
Aiba, Atsu
Seki, Masahide
Suzuki, Yutaka
Okada, Hiroyuki
Tanaka, Sakae
Chung, Ung-il
McMahon, Andrew P.
Ohba, Shinsuke
Runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages
title Runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages
title_full Runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages
title_fullStr Runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages
title_full_unstemmed Runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages
title_short Runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages
title_sort runx2 regulates chromatin accessibility to direct the osteoblast program at neonatal stages
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9510047/
https://www.ncbi.nlm.nih.gov/pubmed/36070691
http://dx.doi.org/10.1016/j.celrep.2022.111315
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