粒体自噬
自噬
品脱1
自身免疫性甲状腺炎
甲状腺炎
自身免疫
线粒体
帕金
医学
免疫学
发病机制
癌症研究
免疫系统
线粒体DNA
细胞生物学
自身免疫性疾病
生物
活性氧
细胞凋亡
干扰素
甲状腺
炎症
程序性细胞死亡
信号转导
旁观者效应
线粒体ROS
作者
Xiao-Chen Xie,Yi Guo,Ran Guo,Yong-Ze Li,Shan-Shan Wang,Xiao-You Jiang,Shuang Hao,Ye Zhang,Yu-Han Li,Xi-Yan Liu,XC Wu,Xin-Yue Zhang,Wen-Dong Guo,Yanling Feng,Jia-Bin Li,C Liu,Liang Wang,Zhenhua Li,Weiping Teng,Zhong-Yan Shan
标识
DOI:10.1038/s41467-026-76047-9
摘要
Abstract Autoimmune thyroiditis arises from disrupted homeostasis of thyroid follicular epithelial cells and coordinated immune cell activation within the microenvironment. However, its pathogenesis is not fully understood. Here, we identify a mitochondrial (mt) DNA-cGAS-STING inflammatory axis as a driver of autoimmune thyroiditis in mice. By contrast, ubiquitin-dependent mitophagy mediated by PINK1 and Parkin was found to protect mice from disease. Mechanistically, mitochondrial dysfunction elevates mitochondrial reactive oxygen species levels, activating the ATM-CHK2 DNA damage response pathway, which in turn phosphorylates the autophagy adapter TAX1BP1 at Ser722. This modification promotes the recruitment of mitochondria to autophagosomes, thereby facilitating mitophagy. Impairing the ATM-CHK2-TAX1BP1 mitophagy pathway causes mtDNA leakage into the cytosol and triggers cGAS-STING-dependent inflammation. Notably, pharmacological inhibition of STING with C176 effectively slows autoimmune thyroiditis progression. Together, these findings define an mtDNA-driven pathogenic mechanism in autoimmune thyroiditis and identify STING as a potential therapeutic target.
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