Kimura Yuka, Toyofuku Yukiko, Koike Shin, Shibuya Norihiro, Nagahara Noriyuki, Lefer David, Ogasawara Yuki, Kimura Hideo
Department of Molecular Pharmacology, National Institute of Neuroscience, National Center of Neurology and Psychiatry, 4-1-1 Ogawahigashi, Kodaira, Tokyo 187-8502, Japan.
Department of Analytical Biochemistry, Meiji Pharmaceutical University, 2-522-1 Noshio, Kiyose, Tokyo 204-8588, Japan.
Sci Rep. 2015 Oct 6;5:14774. doi: 10.1038/srep14774.
Hydrogen polysulfides (H2Sn) have a higher number of sulfane sulfur atoms than hydrogen sulfide (H2S), which has various physiological roles. We recently found H2Sn in the brain. H2Sn induced some responses previously attributed to H2S but with much greater potency than H2S. However, the number of sulfur atoms in H2Sn and its producing enzyme were unknown. Here, we detected H2S3 and H2S, which were produced from 3-mercaptopyruvate (3 MP) by 3-mercaptopyruvate sulfurtransferase (3MST), in the brain. High performance liquid chromatography with fluorescence detection (LC-FL) and tandem mass spectrometry (LC-MS/MS) analyses showed that H2S3 and H2S were produced from 3 MP in the brain cells of wild-type mice but not 3MST knockout (3MST-KO) mice. Purified recombinant 3MST and lysates of COS cells expressing 3MST produced H2S3 from 3 MP, while those expressing defective 3MST mutants did not. H2S3 was localized in the cytosol of cells. H2S3 was also produced from H2S by 3MST and rhodanese. H2S2 was identified as a minor H2Sn, and 3 MP did not affect the H2S5 level. The present study provides new insights into the physiology of H2S3 and H2S, as well as novel therapeutic targets for diseases in which these molecules are involved.
多硫化氢(H2Sn)中的硫烷硫原子数量比具有多种生理作用的硫化氢(H2S)更多。我们最近在大脑中发现了H2Sn。H2Sn能引发一些先前归因于H2S的反应,但效力比H2S强得多。然而,H2Sn中的硫原子数量及其产生酶尚不清楚。在此,我们在大脑中检测到了由3-巯基丙酮酸硫转移酶(3MST)从3-巯基丙酮酸(3MP)产生的H2S3和H2S。高效液相色谱-荧光检测(LC-FL)和串联质谱(LC-MS/MS)分析表明,野生型小鼠脑细胞中的3MP能产生H2S3和H2S,而3MST基因敲除(3MST-KO)小鼠的脑细胞则不能。纯化的重组3MST以及表达3MST的COS细胞裂解物能从3MP产生H2S3,而表达有缺陷的3MST突变体的裂解物则不能。H2S3定位于细胞的胞质溶胶中。3MST和硫氰酸酶也能将H2S转化为H2S3。H2S2被鉴定为一种次要的H2Sn,3MP不影响H2S5的水平。本研究为H2S3和H2S的生理学提供了新的见解,以及这些分子所涉及疾病的新治疗靶点。