表观遗传学
基因沉默
脱甲基酶
染色质重塑
细胞生物学
压电1
组蛋白
H3K4me3
染色质
生物
心理压抑
软骨细胞
化学
骨关节炎
小干扰RNA
发起人
生物信息学
遗传学
癌症研究
机制(生物学)
软骨
医学
RNA干扰
转录因子
作者
Tianyou Kan,Xuran Li,H Y Wang,Lin Sun,Ying Wang,Jiangdong Wu,Junqi Cui,Yiqi Yang,Kai Yuan,Linyang Chu,Wang Liao,Hanjun Li,Mengning Yan,Z-F Yu
摘要
ABSTRACT Mechanical stress is the most important factor affecting the progression of osteoarthritis (OA), but the mechanism linking mechanical stress to transcriptional repression remains elusive. Here, the study finds that mechanical stress induced epigenetic changes that can serve as therapeutic targets for osteoarthritis. By using Piezo1 conditional knockout ( Col2a1 CreERT ; Piezo1 flox/flox ) mice, it was found that Piezo1 activation by excessive mechanical stress can trigger chromatin remodeling via cytoskeletal force transmission, promoting the histone demethylase Kdm5c‐mediated epigenetic silencing. Kdm5c in turn erases H3K4me3 marks from promoters of cartilage‐anabolic genes Col2a1 and Runx3 , silencing their expression. Genetic ablation of Kdm5c rescues mechanical stress‐induced cartilage degradation. Through drug repurposing, the study identifies telmisartan as a direct Kdm5c inhibitor that blocks this pathway and demonstrates disease‐modifying efficacy in mouse OA models and human cartilage explants. These results establish the Piezo1–Kdm5c axis as a fundamental driver of OA and position telmisartan as a mechano‐epigenetic therapy with immediate translational potential.
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