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Original Article | Open Access

Restoring the dampened expression of the core clock molecule BMAL1 protects against compression-induced intervertebral disc degeneration

Dong Wang1Pandi Peng1,2Michal Dudek3,4 Xueyu Hu1Xiaolong Xu1Qiliang Shang1Di Wang1Haoruo Jia1Han Wang1Bo Gao1 Chao Zheng1Jianxin Mao1Chu Gao1Xin He5Pengzhen Cheng1Huanbo Wang1Jianmin Zheng6Judith A. Hoyland3Qing-Jun Meng3,4Zhuojing Luo1,2( )Liu Yang1,2 ( )
Institute of Orthopedic Surgery, Xijing Hospital, Fourth Military Medical University, Xi’an 710032, People’s Republic of China
Medical Research Institute, Northwestern Polytechnical University, Xi’an 710068, People’s Republic of China
School of Biological Sciences, Faculty of Biology, Medicine and Health, University of Manchester, Manchester M13 9PL, UK
Wellcome Centre for Cell Matrix Research, University of Manchester, Manchester M13 9PL, UK
Department of Medicine Chemistry and Pharmaceutical Analysis, School of Pharmacy, Fourth Military Medical University, Xi’an 710032, People’s Republic of China
Radiology Department, Xijing Hospital, Fourth Military Medical University, Xi’an 710032, People’s Republic of China

These authors contributed equally: Dong Wang, Pandi Peng.

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Abstract

The circadian clock participates in maintaining homeostasis in peripheral tissues, including intervertebral discs (IVDs). Abnormal mechanical loading is a known risk factor for intervertebral disc degeneration (IDD). Based on the rhythmic daily loading pattern of rest and activity, we hypothesized that abnormal mechanical loading could dampen the IVD clock, contributing to IDD. Here, we investigated the effects of abnormal loading on the IVD clock and aimed to inhibit compression-induced IDD by targeting the core clock molecule brain and muscle Arnt-like protein-1 (BMAL1). In this study, we showed that BMAL1 KO mice exhibit radiographic features similar to those of human IDD and that BMAL1 expression was negatively correlated with IDD severity by systematic analysis based on 149 human IVD samples. The intrinsic circadian clock in the IVD was dampened by excessive loading, and BMAL1 overexpression by lentivirus attenuated compression-induced IDD. Inhibition of the RhoA/ROCK pathway by Y-27632 or melatonin attenuated the compression-induced decrease in BMAL1 expression. Finally, the two drugs partially restored BMAL1 expression and alleviated IDD in a diurnal compression model. Our results first show that excessive loading dampens the circadian clock of nucleus pulposus tissues via the RhoA/ROCK pathway, the inhibition of which potentially protects against compression-induced IDD by preserving BMAL1 expression. These findings underline the importance of the circadian clock for IVD homeostasis and provide a potentially effective therapeutic strategy for IDD.

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Bone Research
Article number: 20

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Cite this article:
Wang D, Peng P, Dudek M, et al. Restoring the dampened expression of the core clock molecule BMAL1 protects against compression-induced intervertebral disc degeneration. Bone Research, 2022, 10: 20. https://doi.org/10.1038/s41413-022-00187-z

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Received: 22 August 2021
Revised: 07 December 2021
Accepted: 14 December 2021
Published: 25 February 2022
© The Author(s) 2022

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