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Structural and Mechanistic Insights into Hemoglobin-catalyzed Hydrogen Sulfide Oxidation and the Fate of Polysulfide Products

机译:血红蛋白催化的硫化氢氧化和多硫化物产物的命运的结构和机理研究

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摘要

Hydrogen sulfide is a cardioprotective signaling molecule but is toxic at elevated concentrations. Red blood cells can synthesize H2S but, lacking organelles, cannot dispose of H2S via the mitochondrial sulfide oxidation pathway. We have recently shown that at high sulfide concentrations, ferric hemoglobin oxidizes H2S to a mixture of thiosulfate and iron-bound polysulfides in which the latter species predominates. Here, we report the crystal structure of human hemoglobin containing low spin ferric sulfide, the first intermediate in heme-catalyzed sulfide oxidation. The structure provides molecular insights into why sulfide is susceptible to oxidation in human hemoglobin but is stabilized against it in HbI, a specialized sulfide-carrying hemoglobin from a mollusk adapted to life in a sulfide-rich environment. We have also captured a second sulfide bound at a postulated ligand entry/exit site in the α-subunit of hemoglobin, which, to the best of our knowledge, represents the first direct evidence for this site being used to access the heme iron. Hydrodisulfide, a postulated intermediate at the junction between thiosulfate and polysulfide formation, coordinates ferric hemoglobin and, in the presence of air, generated thiosulfate. At low sulfide/heme iron ratios, the product distribution between thiosulfate and iron-bound polysulfides was approximately equal. The iron-bound polysulfides were unstable at physiological glutathione concentrations and were reduced with concomitant formation of glutathione persulfide, glutathione disulfide, and H2S. Hence, although polysulfides are unlikely to be stable in the reducing intracellular milieu, glutathione persulfide could serve as a persulfide donor for protein persulfidation, a posttranslational modification by which H2S is postulated to signal.
机译:硫化氢是一种心脏保护信号分子,但在高浓度下有毒。红细胞可以合成H2S,但缺乏细胞器,无法通过线粒体硫化物氧化途径处理H2S。我们最近发现,在高硫化物浓度下,铁血红蛋白将H2S氧化为硫代硫酸盐和铁结合的多硫化物的混合物,其中后者占主导地位。在这里,我们报告人类血红蛋白的晶体结构包含低自旋三价铁,这是血红素催化的硫化物氧化的第一个中间体。该结构提供了分子机理的见解,以了解为什么硫化物易于在人血红蛋白中被氧化,但在HbI中却被稳定化,HbI是一种适应于富含硫化物的环境中生活的,来自软体动物的专门携带硫化物的血红蛋白。我们还捕获了在血红蛋白的α-亚基中假定的配体进入/退出位点结合的第二个硫化物,据我们所知,这是该位点用于接近血红素铁的第一个直接证据。氢二硫化物是硫代硫酸盐与多硫化物形成之间的交界处的一种假定中间体,它能调节铁血红蛋白,并在空气存在下生成硫代硫酸盐。在低的硫化物/血红素铁比率下,硫代硫酸盐和结合铁的多硫化物之间的产物分布大致相等。铁结合的多硫化物在生理性谷胱甘肽浓度下不稳定,并随谷胱甘肽过硫化物,谷胱甘肽二硫化物和H2S的形成而减少。因此,尽管多硫化物不太可能在还原的细胞内环境中稳定,但是谷胱甘肽过硫化物可以作为蛋白质过硫化的过硫化物供体,这是H2S被推测为信号转导后的修饰。

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