伊诺斯
内皮
内皮功能障碍
体内
机械敏感通道
医学
免疫学
生物
细胞生物学
一氧化氮
内科学
一氧化氮合酶
受体
生物技术
离子通道
作者
Chih‐Fan Yeh,S.-F. Cheng,Yu-Shan Lin,Tzu‐Pin Shentu,Ru‐Ting Huang,Jiayu Zhu,Yen-Ting Chen,Sandeep Kumar,Mao‐Shin Lin,Hsien‐Li Kao,Po‐Hsun Huang,Esther Roselló-Sastre,F. García-Fernández,Hanjoong Jo,Yun Fang,Kai-Chien Yang
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2022-01-21
卷期号:8 (3): eabl8096-eabl8096
被引量:34
标识
DOI:10.1126/sciadv.abl8096
摘要
Although atherosclerosis preferentially develops at arterial curvatures and bifurcations where disturbed flow (DF) activates endothelium, therapies targeting flow-dependent mechanosensing pathways in the vasculature are unavailable. Here, we provided experimental evidence demonstrating a previously unidentified causal role of DF-induced endothelial TXNDC5 (thioredoxin domain containing 5) in atherosclerosis. TXNDC5 was increased in human and mouse atherosclerotic lesions and induced in endothelium subjected to DF. Endothelium-specific Txndc5 deletion markedly reduced atherosclerosis in ApoE −/− mice. Mechanistically, DF-induced TXNDC5 increases proteasome-mediated degradation of heat shock factor 1, leading to reduced heat shock protein 90 and accelerated eNOS (endothelial nitric oxide synthase) protein degradation. Moreover, nanoparticles formulated to deliver Txndc5 -targeting CRISPR-Cas9 plasmids driven by an endothelium-specific promoter ( CDH5 ) significantly increase eNOS protein and reduce atherosclerosis in ApoE −/− mice. These results delineate a new molecular paradigm that DF-induced endothelial TXNDC5 promotes atherosclerosis and establish a proof of concept of targeting endothelial mechanosensitive pathways in vivo against atherosclerosis.
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