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血红素铜和血红素 O 衍生的合成(生物无机)化学,以了解细胞色素 c 氧化酶双氧化化学。

Heme-copper and Heme O-derived synthetic (bioinorganic) chemistry toward an understanding of cytochrome c oxidase dioxygen chemistry.

机构信息

Department of Chemistry, Johns Hopkins University, Baltimore, MD 21218, USA.

Department of Chemistry, Johns Hopkins University, Baltimore, MD 21218, USA.

出版信息

J Inorg Biochem. 2023 Dec;249:112367. doi: 10.1016/j.jinorgbio.2023.112367. Epub 2023 Sep 9.

Abstract

Cytochrome c oxidase (CcO), also widely known as mitochondrial electron-transport-chain complex IV, is a multi-subunit transmembrane protein responsible for catalyzing the last step of the electron transport chain, dioxygen reduction to water, which is essential to the establishment and maintenance of the membrane proton gradient that drives ATP synthesis. Although many intermediates in the CcO catalytic cycle have been spectroscopically and/or computationally authenticated, the specifics regarding the I intermediate, hypothesized to be a heme-Cu (hydro)peroxo species whose O-O bond homolysis is supported by a hydrogen-bonding network of water molecules, are largely obscured by the fast kinetics of the A (Fe-O/Cu/Tyr) → P (Fe=O/Cu-OH/Tyr) step. In this review, we have focused on the recent advancements in the design, development, and characterization of synthetic heme-peroxo‑copper model complexes, which can circumvent the abovementioned limitation, for the investigation of the formation of I and its O-O cleavage chemistry. Novel findings regarding (a) proton and electron transfer (PT/ET) processes, together with their contributions to exogenous phenol induced O-O cleavage, (b) the stereo-electronic tunability of the secondary coordination sphere (especially hydrogen-bonding) on the geometric and spin state alteration of the heme-peroxo‑copper unit, and (c) a plausible mechanism for the Tyr-His cofactor biogenesis, are discussed in great detail. Additionally, since the ferric-superoxide and the ferryl-oxo (Compound II) species are critically involved in the CcO catalytic cycle, this review also highlights a few fundamental aspects of these heme-only (i.e., without copper) species, including the structural and reactivity influences of electron-donating trans-axial ligands and Lewis acid-promoted H-bonding.

摘要

细胞色素 c 氧化酶(CcO),也被广泛称为线粒体电子传递链复合物 IV,是一种多亚基跨膜蛋白,负责催化电子传递链的最后一步,即将氧气还原为水,这对于建立和维持驱动 ATP 合成的膜质子梯度至关重要。尽管 CcO 催化循环中的许多中间物已经通过光谱学和/或计算方法得到了证实,但关于 I 中间物的具体情况,即假设为血红素-Cu(氢)过氧化物物种,其 O-O 键均裂得到水分子氢键网络的支持,在 A(Fe-O/Cu/Tyr)→P(Fe=O/Cu-OH/Tyr)步骤的快速动力学的影响下,大部分都被掩盖了。在这篇综述中,我们专注于设计、开发和表征合成血红素过氧化物-铜模型配合物的最新进展,这些配合物可以克服上述限制,用于研究 I 的形成及其 O-O 断裂化学。关于(a)质子和电子转移(PT/ET)过程及其对外加苯酚诱导的 O-O 断裂的贡献,(b)次级配位球的立体电子可调性(特别是氢键)对血红素过氧化物-铜单元的几何和自旋状态改变的影响,以及(c)酪氨酸-组氨酸辅因子生物发生的可能机制的新发现,都进行了详细的讨论。此外,由于亚铁超氧化物和过氧酰基(化合物 II)物种在 CcO 催化循环中起着至关重要的作用,因此,这篇综述还强调了这些血红素(即不含铜)物种的几个基本方面,包括电子供体轴向配体的结构和反应性影响以及路易斯酸促进的氢键。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/138d/10615892/36c2a723ae00/nihms-1931815-f0001.jpg

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