内质网
细胞生物学
线粒体
程序性细胞死亡
细胞凋亡
视网膜色素上皮
细胞
化学
生物
基因敲除
视网膜变性
自噬
视网膜
视网膜
细胞损伤
未折叠蛋白反应
细胞膜
黄斑变性
细胞生长
刺猬信号通路
下调和上调
转运蛋白
内膜
线粒体内膜
细胞器
作者
Yan Li,Meiyu Jing,Wanxiao Wang,Wanzhen Lin,Yingxin Zhang,Tianyin Nie,Pingping Liu,Wei Lü,Yu Chen,J. Fielding Hejtmancik,Qinxiang Zheng,Ling Hou,Xiaoyin Ma
标识
DOI:10.1073/pnas.2511926123
摘要
Retinal pigment epithelium (RPE) cell damage is a critical factor of age-related macular degeneration (AMD), the leading cause of blindness among the aged population. This study focuses on the AMD susceptible gene, Death associated protein like 1 (DAPL1), and provides insights with significant therapeutic implications. DAPL1-deficient mice exhibit dry AMD-like pathological features, a phenomenon whose mechanisms have remained largely unknown. Here, we reveal that DAPL1 deficiency promotes the formation of mitochondria-associated endoplasmic reticulum membranes (MAMs) to cause mitochondrial Ca 2+ overload and dysfunction, which triggers the activation of inflammasomes, leading RPE cells to RIPK1-mediated PANoptosis, an inflammatory programmed cell death, in an experimental dry AMD (dAMD) mouse model. Knockdown of Ripk1 in the Dapl1−/− mice RPE inhibits RPE cell PANoptosis and ameliorates the severity of dAMD pathological features. Conversely, overexpression of DAPL1 inhibits MAM formation and protects RPE cells from PANoptosis in the model. Mechanistically, DAPL1 suppresses MAM formation by downregulating GRP75 expression. This disrupts the formation of the VDAC–GRP75–IP3R axis, which comprises critical tethering proteins responsible for endoplasmic reticulum to mitochondria coupling and Ca 2+ trafficking. Knockdown of Grp75 inhibits the formation of MAM and prevents mitochondrial Ca 2+ overload, improving mitochondrial quality and inhibiting PANoptosis in RPE cells, thereby interrupting the progression of experimental dAMD in Dapl1 -deficient mice. These results unveil the role of MAMs regulated by DAPL1 in RPE cell PANoptosis and AMD progression, highlighting targeting MAM formation as a potential therapeutic strategy for treating dAMD.
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