一氧化氮
缺氧(环境)
星形胶质细胞
线粒体
伊诺斯
脑血流
一氧化氮合酶
亚硫酸盐氧化酶
化学
亚硝酸盐
生物化学
生物
细胞生物学
药理学
氧气
内分泌学
内科学
亚硫酸盐
医学
中枢神经系统
有机化学
硝酸盐
作者
Isabel N. Christie,Shefeeq M. Theparambil,Alice Braga,Maxim Doronin,Patrick S. Hosford,Alexey Brazhe,Alexander Mascarenhas,Shereen Nizari,Anna Hadjihambi,Jack A. Wells,Adrian J. Hobbs,Alexey Semyanov,Andrey Y. Abramov,Plamena R. Angelova,Alexander V. Gourine
出处
期刊:Cell Reports
[Cell Press]
日期:2023-11-30
卷期号:42 (12): 113514-113514
被引量:28
标识
DOI:10.1016/j.celrep.2023.113514
摘要
During hypoxia, increases in cerebral blood flow maintain brain oxygen delivery. Here, we describe a mechanism of brain oxygen sensing that mediates the dilation of intraparenchymal cerebral blood vessels in response to reductions in oxygen supply. In vitro and in vivo experiments conducted in rodent models show that during hypoxia, cortical astrocytes produce the potent vasodilator nitric oxide (NO) via nitrite reduction in mitochondria. Inhibition of mitochondrial respiration mimics, but also occludes, the effect of hypoxia on NO production in astrocytes. Astrocytes display high expression of the molybdenum-cofactor-containing mitochondrial enzyme sulfite oxidase, which can catalyze nitrite reduction in hypoxia. Replacement of molybdenum with tungsten or knockdown of sulfite oxidase expression in astrocytes blocks hypoxia-induced NO production by these glial cells and reduces the cerebrovascular response to hypoxia. These data identify astrocyte mitochondria as brain oxygen sensors that regulate cerebral blood flow during hypoxia via release of nitric oxide.
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