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BMAL1-TTK-H2Bub1 loop deficiency contributes to impaired BM-MSC-mediated bone formation in senile osteoporosis

During the aging process, the reduced osteogenic differentiation of bone marrow mesenchymal stem cells (BM-MSCs) results in decreased bone formation, which contributes to senile osteoporosis. Previous studies have confirmed that interrupted circadian rhythm plays an indispensable role in age-related...

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Autores principales: Jinteng, Li, Peitao, Xu, Wenhui, Yu, Guiwen, Ye, Feng, Ye, Xiaojun, Xu, Zepeng, Su, Jiajie, Lin, Yunshu, Che, Zhaoqiang, Zhang, Yipeng, Zeng, Zhikun, Li, Pei, Feng, Qian, Cao, Dateng, Li, Zhongyu, Xie, Yanfeng, Wu, Huiyong, Shen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Gene & Cell Therapy 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9996134/
https://www.ncbi.nlm.nih.gov/pubmed/36910712
http://dx.doi.org/10.1016/j.omtn.2023.02.014
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author Jinteng, Li
Peitao, Xu
Wenhui, Yu
Guiwen, Ye
Feng, Ye
Xiaojun, Xu
Zepeng, Su
Jiajie, Lin
Yunshu, Che
Zhaoqiang, Zhang
Yipeng, Zeng
Zhikun, Li
Pei, Feng
Qian, Cao
Dateng, Li
Zhongyu, Xie
Yanfeng, Wu
Huiyong, Shen
author_facet Jinteng, Li
Peitao, Xu
Wenhui, Yu
Guiwen, Ye
Feng, Ye
Xiaojun, Xu
Zepeng, Su
Jiajie, Lin
Yunshu, Che
Zhaoqiang, Zhang
Yipeng, Zeng
Zhikun, Li
Pei, Feng
Qian, Cao
Dateng, Li
Zhongyu, Xie
Yanfeng, Wu
Huiyong, Shen
author_sort Jinteng, Li
collection PubMed
description During the aging process, the reduced osteogenic differentiation of bone marrow mesenchymal stem cells (BM-MSCs) results in decreased bone formation, which contributes to senile osteoporosis. Previous studies have confirmed that interrupted circadian rhythm plays an indispensable role in age-related disease. However, the mechanism underlying the impaired osteogenic differentiation of BM-MSCs during aging and its relationship with interrupted circadian rhythm remains unclear. In this study, we confirmed that the circadian rhythm was interrupted in aging mouse skeletal systems. The level of the core rhythm component BMAL1 but not that of CLOCK in the osteoblast lineage was decreased in senile osteoporotic specimens from both human and mouse. BMAL1 targeted TTK as a circadian-controlled gene to phosphorylate MDM2 and regulate H2Bub1 level, while H2Bub1 in turn regulated the expression of BMAL1. The osteogenic capacity of BM-MSCs was maintained by a positive loop formed by BMAL1-TTK-MDM2-H2Bub1. Furthermore, we demonstrated that using bone-targeting recombinant adeno-associated virus 9 (rAAV9) to enhance Bmal1 or Ttk might have a therapeutic effect on senile osteoporosis and delays bone repair in aging mice. In summary, our study indicated that targeting the BMAL1-TTK-MDM2-H2Bub1 axis via bone-targeting rAAV9 might be a promising strategy for the treatment of senile osteoporosis.
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spelling pubmed-99961342023-03-10 BMAL1-TTK-H2Bub1 loop deficiency contributes to impaired BM-MSC-mediated bone formation in senile osteoporosis Jinteng, Li Peitao, Xu Wenhui, Yu Guiwen, Ye Feng, Ye Xiaojun, Xu Zepeng, Su Jiajie, Lin Yunshu, Che Zhaoqiang, Zhang Yipeng, Zeng Zhikun, Li Pei, Feng Qian, Cao Dateng, Li Zhongyu, Xie Yanfeng, Wu Huiyong, Shen Mol Ther Nucleic Acids Original Article During the aging process, the reduced osteogenic differentiation of bone marrow mesenchymal stem cells (BM-MSCs) results in decreased bone formation, which contributes to senile osteoporosis. Previous studies have confirmed that interrupted circadian rhythm plays an indispensable role in age-related disease. However, the mechanism underlying the impaired osteogenic differentiation of BM-MSCs during aging and its relationship with interrupted circadian rhythm remains unclear. In this study, we confirmed that the circadian rhythm was interrupted in aging mouse skeletal systems. The level of the core rhythm component BMAL1 but not that of CLOCK in the osteoblast lineage was decreased in senile osteoporotic specimens from both human and mouse. BMAL1 targeted TTK as a circadian-controlled gene to phosphorylate MDM2 and regulate H2Bub1 level, while H2Bub1 in turn regulated the expression of BMAL1. The osteogenic capacity of BM-MSCs was maintained by a positive loop formed by BMAL1-TTK-MDM2-H2Bub1. Furthermore, we demonstrated that using bone-targeting recombinant adeno-associated virus 9 (rAAV9) to enhance Bmal1 or Ttk might have a therapeutic effect on senile osteoporosis and delays bone repair in aging mice. In summary, our study indicated that targeting the BMAL1-TTK-MDM2-H2Bub1 axis via bone-targeting rAAV9 might be a promising strategy for the treatment of senile osteoporosis. American Society of Gene & Cell Therapy 2023-02-16 /pmc/articles/PMC9996134/ /pubmed/36910712 http://dx.doi.org/10.1016/j.omtn.2023.02.014 Text en © 2023 The Author(s) 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/).
spellingShingle Original Article
Jinteng, Li
Peitao, Xu
Wenhui, Yu
Guiwen, Ye
Feng, Ye
Xiaojun, Xu
Zepeng, Su
Jiajie, Lin
Yunshu, Che
Zhaoqiang, Zhang
Yipeng, Zeng
Zhikun, Li
Pei, Feng
Qian, Cao
Dateng, Li
Zhongyu, Xie
Yanfeng, Wu
Huiyong, Shen
BMAL1-TTK-H2Bub1 loop deficiency contributes to impaired BM-MSC-mediated bone formation in senile osteoporosis
title BMAL1-TTK-H2Bub1 loop deficiency contributes to impaired BM-MSC-mediated bone formation in senile osteoporosis
title_full BMAL1-TTK-H2Bub1 loop deficiency contributes to impaired BM-MSC-mediated bone formation in senile osteoporosis
title_fullStr BMAL1-TTK-H2Bub1 loop deficiency contributes to impaired BM-MSC-mediated bone formation in senile osteoporosis
title_full_unstemmed BMAL1-TTK-H2Bub1 loop deficiency contributes to impaired BM-MSC-mediated bone formation in senile osteoporosis
title_short BMAL1-TTK-H2Bub1 loop deficiency contributes to impaired BM-MSC-mediated bone formation in senile osteoporosis
title_sort bmal1-ttk-h2bub1 loop deficiency contributes to impaired bm-msc-mediated bone formation in senile osteoporosis
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9996134/
https://www.ncbi.nlm.nih.gov/pubmed/36910712
http://dx.doi.org/10.1016/j.omtn.2023.02.014
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