兰尼碱受体2
兰尼定受体
内质网
细胞生物学
突变
拉明
心肌病
表型
化学
染色质
点突变
生物
癌症研究
HEK 293细胞
内科学
扩张型心肌病
机制(生物学)
临床表型
发病机制
电生理学
星团(航天器)
生物物理学
心力衰竭
作者
Jiaxi Shen,Xiaochen Wang,Hangping Fan,Yaxun Sun,Tingyu Gong,Hangyuan Qiu,Jue Wang,Ziwei Pan,Yanna Dang,Hongkun Wang,Danni Zhou,Tianyi Zhu,Hao Wang,Xianzhen Chen,Lizhen Xu,Jun Su,Fan Yang,Yi‐Quan Tang,Xu-Guang Li,Bing Yang
标识
DOI:10.1002/advs.202512058
摘要
Arrhythmogenic right ventricular cardiomyopathy (ARVC) is a rare inherited cardiomyopathy featured by life-threatening arrhythmias. While TMEM43 has been identified as an ARVC-associated gene, molecular links between TMEM43 mutations and electrophysiological abnormalities in ARVC remain largely elusive. Here, using induced-pluripotent-stem-cell-derived cardiomyocytes (iPSC-CMs) and knock-in mice as models, it is demonstrated that a novel TMEM43 mutation (TMEM43-P386S) causes Ca2+ dysregulation that leads to arrhythmic phenotypes in ARVC, which can be prevented by flecainide. Mechanistically, TMEM43 interacts with lamin B2, and the TMEM43-P386S mutation induces lamin B2 mislocalization and abnormal nuclear envelope structure in ARVC iPSC-CMs, resulting in decreased chromatin opening of promoters associated with downregulated genes, including ryanodine receptor 2 (RYR2). RYR2s are downregulated and grouped into smaller clusters in ARVC iPSC-CMs, as revealed by Tau-STED super-resolution imaging, contributing to enhanced RYR2-mediated sarcoplasmic reticulum Ca2+ leak. These findings represent a novel mechanism underlying arrhythmogenesis in TMEM43-related ARVC and point to RYR2 stabilization as a potential therapeutic strategy.
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