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衰老过程中内皮细胞BMAL1的减少通过破坏细胞外原纤蛋白-1的稳定性导致骨质流失。

Endothelial BMAL1 decline during aging leads to bone loss by destabilizing extracellular fibrillin-1.

作者信息

Yin Ying, Tang Qingming, Yang Jingxi, Gui Shiqi, Zhang Yifan, Shen Yufeng, Zhou Xin, Yu Shaoling, Chen Guangjin, Sun Jiwei, Han Zhenshuo, Zhang Luoying, Chen Lili

机构信息

Department of Stomatology, Union Hospital and.

School of Stomatology, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.

出版信息

J Clin Invest. 2024 Dec 16;134(24):e176660. doi: 10.1172/JCI176660.

Abstract

The occurrence of aging is intricately associated with alterations in circadian rhythms that coincide with stem cell exhaustion. Nonetheless, the extent to which the circadian system governs skeletal aging remains inadequately understood. Here, we noticed that skeletal aging in male mice was accompanied by a decline in a core circadian protein, BMAL1, especially in bone marrow endothelial cells (ECs). Using male mice with endothelial KO of aryl hydrocarbon receptor nuclear translocator-like protein 1 (Bmal1), we ascertained that endothelial BMAL1 in bone played a crucial role in ensuring the stability of an extracellular structural component, fibrillin-1 (FBN1), through regulation of the equilibrium between the extracellular matrix (ECM) proteases thrombospondin type 1 domain-containing protein 4 (THSD4) and metalloproteinase with thrombospondin motifs 4 (ADAMTS4), which promote FBN1 assembly and breakdown, respectively. The decline of endothelial BMAL1 during aging prompted excessive breakdown of FBN1, leading to persistent activation of TGF-β/SMAD3 signaling and exhaustion of bone marrow mesenchymal stem cells. Meanwhile, the free TGF-β could promote osteoclast formation. Further analysis revealed that activation of ADAMTS4 in ECs lacking BMAL1 was stimulated by TGF-β/SMAD3 signaling through an ECM-positive feedback mechanism, whereas THSD4 was under direct transcriptional control by endothelial BMAL1. Our investigation has elucidated the etiology of bone aging in male mice by defining the role of ECs in upholding the equilibrium within the ECM, consequently coordinating osteogenic and osteoclastic activities and retarding skeletal aging.

摘要

衰老的发生与昼夜节律的改变密切相关,而昼夜节律的改变与干细胞耗竭同时发生。然而,昼夜节律系统对骨骼衰老的调控程度仍未得到充分理解。在此,我们注意到雄性小鼠的骨骼衰老伴随着一种核心昼夜节律蛋白BMAL1的下降,尤其是在骨髓内皮细胞(ECs)中。通过使用芳烃受体核转运体样蛋白1(Bmal1)内皮敲除的雄性小鼠,我们确定骨骼中的内皮BMAL1通过调节细胞外基质(ECM)蛋白酶含血小板反应蛋白1结构域蛋白4(THSD4)和含血小板反应蛋白基序的金属蛋白酶4(ADAMTS4)之间的平衡,在确保细胞外结构成分原纤维蛋白-1(FBN1)的稳定性方面发挥着关键作用,这两种蛋白酶分别促进FBN1的组装和分解。衰老过程中内皮BMAL1的下降促使FBN1过度分解,导致转化生长因子-β/信号转导和转录激活因子3(TGF-β/SMAD3)信号持续激活以及骨髓间充质干细胞耗竭。同时,游离的TGF-β可促进破骨细胞形成。进一步分析表明,缺乏BMAL1的内皮细胞中ADAMTS4的激活是由TGF-β/SMAD3信号通过ECM正反馈机制刺激的,而THSD4则受内皮BMAL1的直接转录控制。我们的研究通过确定内皮细胞在维持ECM内平衡、协调成骨和破骨活动以及延缓骨骼衰老方面的作用,阐明了雄性小鼠骨骼衰老的病因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c80/11645155/76918cd6e2b0/jci-134-176660-g065.jpg

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