曲古抑菌素A
组蛋白脱乙酰基酶
细胞生物学
间充质干细胞
骨质疏松症
骨骼肌
化学
组蛋白
卡尔波宁
微泡
癌症研究
小RNA
医学
生物
内科学
生物化学
基因
肌动蛋白
作者
Ming Chen,Yi Li,Mingming Zhang,Siliang Ge,Taojin Feng,Ruijing Chen,Junmin Shen,Ran Li,Zhongqi Wang,Yong Xie,Duanyang Wang,Jiang Liu,Yuan Lin,Feifan Chang,Junyu Chen,Xinyu Sun,Dongliang Cheng,Xiang Huang,Fanfeng Wu,Qinxiang Zhang
标识
DOI:10.1038/s41392-024-01976-0
摘要
Abstract Regular physical activity is widely recognized for reducing the risk of various disorders, with skeletal muscles playing a key role by releasing biomolecules that benefit multiple organs and tissues. However, many individuals, particularly the elderly and those with clinical conditions, are unable to engage in physical exercise, necessitating alternative strategies to stimulate muscle cells to secrete beneficial biomolecules. Histone acetylation and deacetylation significantly influence exercise-induced gene expression, suggesting that targeting histone deacetylases (HDACs) could mimic some exercise responses. In this study, we explored the effects of the HDAC inhibitor Trichostatin A (TSA) on human skeletal muscle myoblasts (HSMMs). Our findings showed that TSA-induced hyperacetylation enhanced myotube fusion and increased the secretion of extracellular vesicles (EVs) enriched with miR-873-3p. These TSA-EVs promoted osteogenic differentiation in human bone marrow mesenchymal stem cells (hBMSCs) by targeting H2 calponin (CNN2). In vivo, systemic administration of TSA-EVs to osteoporosis mice resulted in significant improvements in bone mass. Moreover, TSA-EVs mimicked the osteogenic benefits of exercise-induced EVs, suggesting that HDAC inhibition can replicate exercise-induced bone health benefits. These results demonstrate the potential of TSA-induced muscle-derived EVs as a therapeutic strategy to enhance bone formation and prevent osteoporosis, particularly for individuals unable to exercise. Given the FDA-approved status of various HDAC inhibitors, this approach holds significant promise for rapid clinical translation in osteoporosis treatment.
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