炎症体
细胞生物学
目标2
视网膜色素上皮
黄斑变性
生物
先天免疫系统
炎症
内部收益率3
干扰素
线粒体
免疫学
免疫系统
医学
视网膜
神经科学
眼科
作者
Nagaraj Kerur,Shin‐ichi Fukuda,Daipayan Banerjee,Younghee Kim,Dongxu Fu,Ivana Apicella,Akhil Varshney,Reo Yasuma,Benjamin J. Fowler,Elmira Baghdasaryan,Kenneth M. Marion,Xiwen Huang,Tetsuhiro Yasuma,Yoshio Hirano,Vlad Serbulea,Meenakshi Ambati,Vidya L. Ambati,Yuji Kajiwara,Kameshwari Ambati,Shuichiro Hirahara
出处
期刊:Nature Medicine
[Nature Portfolio]
日期:2017-11-27
卷期号:24 (1): 50-61
被引量:248
摘要
Degeneration of the retinal pigment epithelium is a hallmark of geographic atrophy, a type of age-related macular degeneration. Kerur et al. show that this degeneration results from a multistep pathway in which mitochondrial dysfunction in RPE cells, triggered by accumulation of Alu RNA, leads to activation of the noncanonical inflammasome via a cGAS–STING–IRF3 signaling axis. Geographic atrophy is a blinding form of age-related macular degeneration characterized by retinal pigmented epithelium (RPE) death; the RPE also exhibits DICER1 deficiency, resultant accumulation of endogenous Alu-retroelement RNA, and NLRP3-inflammasome activation. How the inflammasome is activated in this untreatable disease is largely unknown. Here we demonstrate that RPE degeneration in human-cell-culture and mouse models is driven by a noncanonical-inflammasome pathway that activates caspase-4 (caspase-11 in mice) and caspase-1, and requires cyclic GMP-AMP synthase (cGAS)-dependent interferon-β production and gasdermin D–dependent interleukin-18 secretion. Decreased DICER1 levels or Alu-RNA accumulation triggers cytosolic escape of mitochondrial DNA, which engages cGAS. Moreover, caspase-4, gasdermin D, interferon-β, and cGAS levels were elevated in the RPE in human eyes with geographic atrophy. Collectively, these data highlight an unexpected role of cGAS in responding to mobile-element transcripts, reveal cGAS-driven interferon signaling as a conduit for mitochondrial-damage-induced inflammasome activation, expand the immune-sensing repertoire of cGAS and caspase-4 to noninfectious human disease, and identify new potential targets for treatment of a major cause of blindness.
科研通智能强力驱动
Strongly Powered by AbleSci AI