线粒体DNA
生物
RNA聚合酶Ⅲ
分子生物学
聚合酶
猪繁殖与呼吸综合征病毒
病毒学
DNA聚合酶
基因
突变
DNA
MT-RNR1型
转染
RNA聚合酶
线粒体
核糖核酸
病毒复制
单倍率不足
聚合酶链反应
遗传学
基因敲除
猪圆环病毒
DNA损伤
多重聚合酶链反应
点突变
免疫
细胞凋亡
细胞生物学
粒线体疾病
核苷酸转移酶
胞浆
RNA聚合酶Ⅱ
RNA病毒
病毒
基因表达
作者
Michelle Møhlenberg,Sofie E. Jørgensen,Renée Marije van der Sluis,Thomas Zillinger,Daniëla Maria Hinke,Anne Kruse Hollensen,Anne Louise Hansen,COVID Human genetic Effort,COVID-19 DNABR Group,French COVID Cohort Study Group,COVIDeF Study Group,CoV-Contact Cohort,Amsterdam UMC COVID-19 Biobank,NIAID-USUHS COVID Study Group,Pierre Hausfater,Guy Gorochov,Florence Tubach,Jade Ghosn,Cedric Laouenan,Merete Storgaard
标识
DOI:10.1073/pnas.2522111123
摘要
The clinical spectrum of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection ranges from asymptomatic cases to critical COVID-19 pneumonia. To investigate the role of host genetics in susceptibility to critical COVID-19 and identify pathophysiological mechanisms and pathways, we analyzed whole-exome and whole-genome sequencing data from the COVID Human Genetic Effort. We identified 10 rare, monoallelic predicted loss-of-function variants in 18 patients in POLR3A and POLR3C encoding two subunits of RNA polymerase III (POL III), a nuclear multisubunit enzyme, which has been implicated in cytosolic DNA sensing. These variants were deleterious for expression of full-length POLR3A and POLR3C proteins. We demonstrate that human pulmonary A549-hACE2 cells with reduced POLR3A or POLR3C expression exhibit impaired type I IFN responses to transfected mitochondrial DNA (mtDNA) or SARS-CoV-2 infection, together with increased viral replication. Mechanistically, we show that SARS-CoV-2 induces cellular mtDNA release via oligomerization of the mitochondrial voltage-dependent anion channel under virus-induced oxidative stress, enabling POL III–mtDNA interaction. These findings establish POL III as a sensor of endogenous mtDNA released during viral infection and indicate that autosomal dominant POL III haploinsufficiency may predispose individuals to critical COVID-19.
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