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泛醌在细胞色素bc1复合体Qo位点的氧化机制。

The mechanism of ubihydroquinone oxidation at the Qo-site of the cytochrome bc1 complex.

作者信息

Crofts Antony R, Hong Sangjin, Wilson Charles, Burton Rodney, Victoria Doreen, Harrison Chris, Schulten Klaus

机构信息

Center for Biophysics and Computational Biology, University of Illinois, Urbana, IL 61801, USA; Department of Biochemistry, University of Illinois, Urbana, IL 61801, USA.

出版信息

Biochim Biophys Acta. 2013 Nov-Dec;1827(11-12):1362-77. doi: 10.1016/j.bbabio.2013.01.009. Epub 2013 Feb 8.

DOI:10.1016/j.bbabio.2013.01.009
PMID:23396004
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3995752/
Abstract
  1. Recent results suggest that the major flux is carried by a monomeric function, not by an intermonomer electron flow. 2. The bifurcated reaction at the Qo-site involves sequential partial processes, - a rate limiting first electron transfer generating a semiquinone (SQ) intermediate, and a rapid second electron transfer in which the SQ is oxidized by the low potential chain. 3. The rate constant for the first step in a strongly endergonic, proton-first-then-electron mechanism, is given by a Marcus-Brønsted treatment in which a rapid electron transfer is convoluted with a weak occupancy of the proton configuration needed for electron transfer. 4. A rapid second electron transfer pulls the overall reaction over. Mutation of Glu-295 of cyt b shows it to be a key player. 5. In more crippled mutants, electron transfer is severely inhibited and the bell-shaped pH dependence of wildtype is replaced by a dependence on a single pK at ~8.5 favoring electron transfer. Loss of a pK ~6.5 is explained by a change in the rate limiting step from the first to the second electron transfer; the pK ~8.5 may reflect dissociation of QH. 6. A rate constant (<10(3)s(-1)) for oxidation of SQ in the distal domain by heme bL has been determined, which precludes mechanisms for normal flux in which SQ is constrained there. 7. Glu-295 catalyzes proton exit through H(+) transfer from QH, and rotational displacement to deliver the H(+) to exit channel(s). This opens a volume into which Q(-) can move closer to the heme to speed electron transfer. 8. A kinetic model accounts well for the observations, but leaves open the question of gating mechanisms. For the first step we suggest a molecular "escapement"; for the second a molecular ballet choreographed through coulombic interactions. This article is part of a Special Issue entitled: Respiratory complex III and related bc complexes.
摘要
  1. 近期结果表明,主要通量是由单体功能携带,而非单体间电子流。2. Qo位点的分支反应涉及连续的部分过程,即限速的首次电子转移生成半醌(SQ)中间体,以及快速的第二次电子转移,其中SQ被低电位链氧化。3. 在强吸能、质子先于电子的机制中,第一步的速率常数由马库斯 - 布朗斯特处理给出,其中快速电子转移与电子转移所需质子构型的弱占有率相卷积。4. 快速的第二次电子转移推动整个反应进行。细胞色素b的Glu - 295突变表明它是关键参与者。5. 在更严重受损的突变体中,电子转移受到严重抑制,野生型的钟形pH依赖性被约8.5处单一pK的依赖性所取代,该pK有利于电子转移。约6.5处pK的丧失可通过限速步骤从首次电子转移变为第二次电子转移来解释;约8.5处的pK可能反映QH的解离。6. 已确定血红素bL氧化远端结构域中SQ的速率常数(<10³ s⁻¹),这排除了SQ在那里受限的正常通量机制。7. Glu - 295通过从QH进行H⁺转移催化质子排出,并通过旋转位移将H⁺传递到排出通道。这打开了一个空间,Q⁻可移入其中更靠近血红素以加速电子转移。8. 一个动力学模型很好地解释了这些观察结果,但留下了门控机制的问题。对于第一步,我们提出一种分子“擒纵机构”;对于第二步,提出一种通过库仑相互作用编排的分子芭蕾舞。本文是名为:呼吸复合物III及相关bc复合物的特刊的一部分。

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