Oleksii Zdorevskyi, Johannes Laukkanen, Vivek Sharma
{"title":"Catalytic relevance of quinol anion in biological energy conversion by respiratory complex I","authors":"Oleksii Zdorevskyi, Johannes Laukkanen, Vivek Sharma","doi":"10.1101/2024.09.06.611712","DOIUrl":null,"url":null,"abstract":"Redox chemistry of quinones is an essential component of life on earth. In the mitochondrial electron transport chain, ubiquinone molecule is reduced to ubiquinol by respiratory complex I to drive the synthesis of ATP. By performing both classical and hybrid QM/MM simulations on high-resolution cryo-EM structures, including quantitative free energy calculations, we show that semiquinone species in complex I is anionic in nature and is trapped in the active site chamber for its subsequent reduction. Two-electron reduction of ubiquinone yields a metastable ubiquinol anion, which is electrostatically pushed by 15-20 &Aring towards the exit of the ubiquinone binding chamber to drive the proton pump of complex I. As part of the two-electron reduction of ubiquinone, protonic rearrangements take place in the active site in which a highly conserved histidine converts from its one tautomeric state to another. The combined findings provide a detailed and testable mechanistic picture of proton-coupled electron transfer reaction at the active site of complex I in wild-type as well as mutant conditions.","PeriodicalId":501147,"journal":{"name":"bioRxiv - Biochemistry","volume":"19 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"bioRxiv - Biochemistry","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1101/2024.09.06.611712","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Redox chemistry of quinones is an essential component of life on earth. In the mitochondrial electron transport chain, ubiquinone molecule is reduced to ubiquinol by respiratory complex I to drive the synthesis of ATP. By performing both classical and hybrid QM/MM simulations on high-resolution cryo-EM structures, including quantitative free energy calculations, we show that semiquinone species in complex I is anionic in nature and is trapped in the active site chamber for its subsequent reduction. Two-electron reduction of ubiquinone yields a metastable ubiquinol anion, which is electrostatically pushed by 15-20 Å towards the exit of the ubiquinone binding chamber to drive the proton pump of complex I. As part of the two-electron reduction of ubiquinone, protonic rearrangements take place in the active site in which a highly conserved histidine converts from its one tautomeric state to another. The combined findings provide a detailed and testable mechanistic picture of proton-coupled electron transfer reaction at the active site of complex I in wild-type as well as mutant conditions.
醌的氧化还原化学是地球生命的重要组成部分。在线粒体电子传递链中,泛醌分子被呼吸复合体 I 还原成泛醌醇,从而推动 ATP 的合成。通过对高分辨率低温电子显微镜结构进行经典模拟和混合 QM/MM 模拟,包括定量自由能计算,我们发现复合物 I 中的半醌类物质具有阴离子性质,并被困在活性位点室中进行后续还原。泛醌的双电子还原产生了可转移的泛醌醇阴离子,该阴离子被 15-20 安培的静电力推向泛醌结合室的出口,以驱动复合物 I 的质子泵。在泛醌的双电子还原过程中,活性位点会发生质子重排,其中高度保守的组氨酸会从一种同素异形体状态转化为另一种同素异形体状态。这些发现为野生型和突变型条件下复合物 I 活性位点的质子耦合电子传递反应提供了详细的、可检验的机理图景。