Oscillatory shear stress-induced endothelial extracellular vesicles exacerbate aortic valve calcification

机械转化 细胞生物学 机械敏感通道 钙化 下调和上调 旁分泌信号 转录组 主动脉瓣 化学 细胞外基质 外体 细胞外 生物 胞外囊泡 串扰 信号转导 内吞作用 二尖瓣 间充质干细胞 小泡 心跳 内皮干细胞 钙质沉着 HEK 293细胞 间质细胞 兰尼定受体 解剖 肌动蛋白
作者
Shiqi Chen,Xiaoke Shang,Jianjun Xu,Zhonghang Fan,Shaoshao Zhang,Rui Li,Ming Liu,Zhou Liu,Leilei Fan,Junwei Liu,Xin Jin,Tingwen Zhou
出处
期刊:Cardiovascular Research [Oxford University Press]
标识
DOI:10.1093/cvr/cvag205
摘要

AIMS: Calcific aortic valve disease (CAVD) lacks effective pharmacotherapies. Although small extracellular vesicles (sEVs) are established mediators of cellular communication, how they translate oscillatory shear stress (OSS) into pro-calcific signals through endothelial-interstitial crosstalk remains unknown. This study aimed to delineate a complete mechanosensitive pathway by which sEVs drive aortic valve calcification (AVC). METHODS AND RESULTS: Using circRNA microarray sequencing, we identified circILRUN as the most markedly upregulated circRNA in sEVs from OSS-stimulated human valvular endothelial cells (hVECs). Endothelial-derived sEVs delivered circILRUN to human valvular interstitial cells (hVICs) and promoted osteogenic reprogramming of hVICs. Genetic ablation of circILRUN attenuated AVC in two independent mouse models, improving echocardiographic parameters and reducing calcium deposition. Mechanistically, circILRUN acted as a protein scaffold that recruited USP11 to NAT10, thereby stabilizing NAT10 via suppression of K48-linked ubiquitination. Integrated N4-acetylcytidine (ac4C) acetylome and transcriptome analyses identified CD36 as a key downstream target, with NAT10 catalyzing ac4C modification within its coding sequence to enhance CD36 mRNA stability and translation. Therapeutically, pharmacological inhibition of NAT10 reversed the pro-calcific effects of circILRUN in vitro and ameliorated AVC in vivo. CONCLUSIONS: Our study delineates a novel OSS induced sEV-circILRUN-NAT10-CD36 axis that integrates mechanical stress, epitranscriptomic regulation to drive AVC. These findings not only elucidate a fundamental mechanotransduction pathway in CAVD but also identify NAT10 as a candidate therapeutic target for clinical intervention.

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