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Methyltransferase Setdb1 Promotes Osteoblast Proliferation by Epigenetically Silencing Macrod2 with the Assistance of Atf7ip

Bone loss caused by mechanical unloading is a threat to prolonged space flight and human health. Epigenetic modifications play a crucial role in varied biological processes, but the mechanism of histone modification on unloading-induced bone loss has rarely been studied. Here, we discovered for the...

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Autores principales: Zhang, Lijun, Xu, Liqun, Zhang, Xiaoyan, Wang, Ke, Tan, Yingjun, Li, Gaozhi, Wang, Yixuan, Xue, Tong, Sun, Quan, Cao, Xinsheng, Zhang, Ge, Hu, Zebing, Zhang, Shu, Shi, Fei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9406310/
https://www.ncbi.nlm.nih.gov/pubmed/36010655
http://dx.doi.org/10.3390/cells11162580
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author Zhang, Lijun
Xu, Liqun
Zhang, Xiaoyan
Wang, Ke
Tan, Yingjun
Li, Gaozhi
Wang, Yixuan
Xue, Tong
Sun, Quan
Cao, Xinsheng
Zhang, Ge
Hu, Zebing
Zhang, Shu
Shi, Fei
author_facet Zhang, Lijun
Xu, Liqun
Zhang, Xiaoyan
Wang, Ke
Tan, Yingjun
Li, Gaozhi
Wang, Yixuan
Xue, Tong
Sun, Quan
Cao, Xinsheng
Zhang, Ge
Hu, Zebing
Zhang, Shu
Shi, Fei
author_sort Zhang, Lijun
collection PubMed
description Bone loss caused by mechanical unloading is a threat to prolonged space flight and human health. Epigenetic modifications play a crucial role in varied biological processes, but the mechanism of histone modification on unloading-induced bone loss has rarely been studied. Here, we discovered for the first time that the methyltransferase Setdb1 was downregulated under the mechanical unloading both in vitro and in vivo so as to attenuate osteoblast proliferation. Furthermore, we found these interesting processes depended on the repression of Macrod2 expression triggered by Setdb1 catalyzing the formation of H3K9me3 in the promoter region. Mechanically, we revealed that Macrod2 was upregulated under mechanical unloading and suppressed osteoblast proliferation through the GSK-3β/β-catenin signaling pathway. Moreover, Atf7ip cooperatively contributed to osteoblast proliferation by changing the localization of Setdb1 under mechanical loading. In summary, this research elucidated the role of the Atf7ip/Setdb1/Macrod2 axis in osteoblast proliferation under mechanical unloading for the first time, which can be a potential protective strategy against unloading-induced bone loss.
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spelling pubmed-94063102022-08-26 Methyltransferase Setdb1 Promotes Osteoblast Proliferation by Epigenetically Silencing Macrod2 with the Assistance of Atf7ip Zhang, Lijun Xu, Liqun Zhang, Xiaoyan Wang, Ke Tan, Yingjun Li, Gaozhi Wang, Yixuan Xue, Tong Sun, Quan Cao, Xinsheng Zhang, Ge Hu, Zebing Zhang, Shu Shi, Fei Cells Article Bone loss caused by mechanical unloading is a threat to prolonged space flight and human health. Epigenetic modifications play a crucial role in varied biological processes, but the mechanism of histone modification on unloading-induced bone loss has rarely been studied. Here, we discovered for the first time that the methyltransferase Setdb1 was downregulated under the mechanical unloading both in vitro and in vivo so as to attenuate osteoblast proliferation. Furthermore, we found these interesting processes depended on the repression of Macrod2 expression triggered by Setdb1 catalyzing the formation of H3K9me3 in the promoter region. Mechanically, we revealed that Macrod2 was upregulated under mechanical unloading and suppressed osteoblast proliferation through the GSK-3β/β-catenin signaling pathway. Moreover, Atf7ip cooperatively contributed to osteoblast proliferation by changing the localization of Setdb1 under mechanical loading. In summary, this research elucidated the role of the Atf7ip/Setdb1/Macrod2 axis in osteoblast proliferation under mechanical unloading for the first time, which can be a potential protective strategy against unloading-induced bone loss. MDPI 2022-08-19 /pmc/articles/PMC9406310/ /pubmed/36010655 http://dx.doi.org/10.3390/cells11162580 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Lijun
Xu, Liqun
Zhang, Xiaoyan
Wang, Ke
Tan, Yingjun
Li, Gaozhi
Wang, Yixuan
Xue, Tong
Sun, Quan
Cao, Xinsheng
Zhang, Ge
Hu, Zebing
Zhang, Shu
Shi, Fei
Methyltransferase Setdb1 Promotes Osteoblast Proliferation by Epigenetically Silencing Macrod2 with the Assistance of Atf7ip
title Methyltransferase Setdb1 Promotes Osteoblast Proliferation by Epigenetically Silencing Macrod2 with the Assistance of Atf7ip
title_full Methyltransferase Setdb1 Promotes Osteoblast Proliferation by Epigenetically Silencing Macrod2 with the Assistance of Atf7ip
title_fullStr Methyltransferase Setdb1 Promotes Osteoblast Proliferation by Epigenetically Silencing Macrod2 with the Assistance of Atf7ip
title_full_unstemmed Methyltransferase Setdb1 Promotes Osteoblast Proliferation by Epigenetically Silencing Macrod2 with the Assistance of Atf7ip
title_short Methyltransferase Setdb1 Promotes Osteoblast Proliferation by Epigenetically Silencing Macrod2 with the Assistance of Atf7ip
title_sort methyltransferase setdb1 promotes osteoblast proliferation by epigenetically silencing macrod2 with the assistance of atf7ip
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9406310/
https://www.ncbi.nlm.nih.gov/pubmed/36010655
http://dx.doi.org/10.3390/cells11162580
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