机械转化
细胞生物学
机械敏感通道
压电1
炎症
化学
转录因子
内皮
细胞因子
肿瘤坏死因子α
KLF2
内皮干细胞
信号转导
串扰
调解人
下调和上调
内皮细胞活化
促炎细胞因子
未折叠蛋白反应
内皮功能障碍
氧化应激
脱皮
自噬
脂质信号
一氧化氮
抄写(语言学)
血管生成
免疫学
XBP1型
TRPV4型
生物
作者
Sihan Miao,Xiaoyi Dai,Xiya Li,Zhenghua Chen,Yuqian Wang,Tingting Ye,Yuhan Ying,Yixuan Yu,Ailing Wu,Hai Song,Peng Teng,Liang Ma,Qi Zheng
标识
DOI:10.1038/s41420-025-02909-8
摘要
Endothelial dysfunction-driven vascular inflammation underlies sepsis and atherosclerosis. Piezo1 serves as a central mediator for endothelial mechanotransduction and inflammatory homeostasis. Nevertheless, the transcriptional pathways linking mechanical sensing to anti-inflammatory protection and the exact composition of its downstream signaling cascade remain incompletely resolved. Here, we identify BHLHE40 as an endothelial mechanosensitive transcription factor induced by Piezo1 that coordinates ferroptosis resistance and inflammation suppression. Mechanistically, shear stress activates Piezo1, triggering Ca²⁺ influx and calcineurin-dependent NFAT2 nuclear translocation. NFAT2 recruits HDAC1 to form a transcriptional complex that directly drives BHLHE40 expression. BHLHE40 then binds the SLC7A11 promoter, upregulating this cystine transporter to inhibit ferroptosis. Rescued mitochondrial integrity, reduced ROS, and reversed lipid peroxidation demonstrated this phenomenon. Crucially, mice with endothelial-specific BHLHE40 overexpression attenuate LPS-induced lung vascular leakage, neutrophil infiltration, and pro-inflammatory cytokine release. Our work establishes the Piezo1/Ca²⁺/calcineurin/NFAT2-HDAC1/BHLHE40/SLC7A11 axis as a master mechanotransduction pathway that transcriptionally maintains endothelial homeostasis.
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