Hydrogen sulfide as a gasotransmitter

胱硫醚β合酶 胱硫醚γ裂解酶 硫化氢 一氧化氮 化学 生物化学 S-亚硝基化 一氧化氮合酶 酶 一氧化氮合酶Ⅲ型 亚硝化 细胞生物学 伊诺斯 半胱氨酸 生物 硫黄 有机化学
作者
Moataz M. Gadalla,Solomon H. Snyder
出处
期刊:Journal of Neurochemistry [Wiley]
卷期号:113 (1): 14-26 被引量:489
标识
DOI:10.1111/j.1471-4159.2010.06580.x
摘要

J. Neurochem. (2010) 10.1111/j.1471‐4159.2010.06580.x Abstract Nitric oxide (NO) and carbon monoxide (CO) are well established as messenger molecules throughout the body, gasotransmitters, based on striking alterations in mice lacking the appropriate biosynthetic enzymes. Hydrogen sulfide (H 2 S) is even more chemically reactive, but until recently there was little definitive evidence for its physiologic formation. Cystathionine β‐synthase (EC 4.2.1.22), and cystathionine γ‐lyase (CSE; EC 4.4.1.1), also known as cystathionine, can generate H 2 S from cyst(e)ine. Very recent studies with mice lacking these enzymes have established that CSE is responsible for H 2 S formation in the periphery, while in the brain cystathionine β‐synthase is the biosynthetic enzyme. Endothelial‐derived relaxing factor activity is reduced 80% in the mesenteric artery of mice with deletion of CSE, establishing H 2 S as a major physiologic endothelial‐derived relaxing factor. H 2 S appears to signal predominantly by S ‐sulfhydrating cysteines in its target proteins, analogous to S ‐nitrosylation by NO. Whereas S ‐nitrosylation typically inhibits enzymes, S ‐sulfhydration activates them. S ‐nitrosylation basally affects 1–2% of its target proteins, while 10–25% of H 2 S target proteins are S ‐sulfhydrated. In summary, H 2 S appears to be a physiologic gasotransmitter of comparable importance to NO and carbon monoxide.

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