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呼吸 MBS 复合物的结构揭示了古代生命中含铁-硫簇催化的硫代硫酸根还原反应。

Structure of the respiratory MBS complex reveals iron-sulfur cluster catalyzed sulfane sulfur reduction in ancient life.

机构信息

Structural Biology Program, Van Andel Institute, Grand Rapids, MI, USA.

Department of Biochemistry and Molecular Biology, School of Basic Medicine and Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.

出版信息

Nat Commun. 2020 Nov 23;11(1):5953. doi: 10.1038/s41467-020-19697-7.

Abstract

Modern day aerobic respiration in mitochondria involving complex I converts redox energy into chemical energy and likely evolved from a simple anaerobic system now represented by hydrogen gas-evolving hydrogenase (MBH) where protons are the terminal electron acceptor. Here we present the cryo-EM structure of an early ancestor in the evolution of complex I, the elemental sulfur (S)-reducing reductase MBS. Three highly conserved protein loops linking cytoplasmic and membrane domains enable scalable energy conversion in all three complexes. MBS contains two proton pumps compared to one in MBH and likely conserves twice the energy. The structure also reveals evolutionary adaptations of MBH that enabled S reduction by MBS catalyzed by a site-differentiated iron-sulfur cluster without participation of protons or amino acid residues. This is the simplest mechanism proposed for reduction of inorganic or organic disulfides. It is of fundamental significance in the iron and sulfur-rich volcanic environments of early earth and possibly the origin of life. MBS provides a new perspective on the evolution of modern-day respiratory complexes and of catalysis by biological iron-sulfur clusters.

摘要

现代线粒体中的需氧呼吸涉及复合物 I,将氧化还原能量转化为化学能量,可能是从现在由产氢气酶 (MBH) 代表的简单厌氧系统进化而来的,其中质子是末端电子受体。在这里,我们展示了复合物 I 进化过程中的早期祖先——元素硫 (S)-还原还原酶 MBS 的冷冻电镜结构。三个高度保守的连接细胞质和膜结构域的蛋白质环使所有三个复合物都能够进行可扩展的能量转换。与 MBH 相比,MBS 含有两个质子泵,可能保守两倍的能量。该结构还揭示了 MBH 的进化适应,使 MBS 催化的 S 还原能够通过位点区分的铁硫簇进行,而无需质子或氨基酸残基的参与。这是为无机或有机二硫化物还原提出的最简单机制。它在早期地球富含铁和硫的火山环境中具有重要意义,并且可能是生命起源的基础。MBS 为现代呼吸复合物的进化和生物铁硫簇的催化提供了新的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f009/7684303/8576e44dd4bd/41467_2020_19697_Fig1_HTML.jpg

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