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Mitochondrial disease-related mutations at the cytochrome b-iron–sulfur protein (ISP) interface: Molecular effects on the large-scale motion of ISP and superoxide generation studied in Rhodobacter capsulatus cytochrome bc1

机译:细胞色素b-铁-硫蛋白(ISP)界面上的线粒体疾病相关突变:在荚膜红细菌细胞色素bc1中研究的对ISP大规模运动和超氧化物生成的分子影响

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摘要

One of the important elements of operation of cytochrome bc1 (mitochondrial respiratory complex III) is a large scale movement of the head domain of iron–sulfur protein (ISP-HD), which connects the quinol oxidation site (Qo) located within the cytochrome b, with the outermost heme c1 of cytochrome c1. Several mitochondrial disease-related mutations in cytochrome b are located at the cytochrome b-ISP-HD interface, thus their molecular effects can be associated with altered motion of ISP-HD. Using purple bacterial model, we recently showed that one of such mutations — G167P shifts the equilibrium position of ISP-HD towards positions remote from the Qo site as compared to the native enzyme [Borek et al., J. Biol. Chem. 290 (2015) 23781-23792]. This resulted in the enhanced propensity of the mutant to generate reactive oxygen species (ROS) which was explained on the basis of the model evoking “semireverse” electron transfer from heme bL to quinone. Here we examine another mutation from that group — G332D (G290D in human), finding that it also shifts the equilibrium position of ISP-HD in the same direction, however displays less of the enhancement in ROS production. We provide spectroscopic indication that G332D might affect the electrostatics of interaction between cytochrome b and ISP-HD. This effect, in light of the measured enzymatic activities and electron transfer rates, appears to be less severe than structural distortion caused by proline in G167P mutant. Comparative analysis of the effects of G332D and G167P confirms a general prediction that mutations located at the cytochrome b-ISP-HD interface influence the motion of ISP-HD and indicates that “pushing” ISP-HD away from the Qo site is the most likely outcome of this influence. It can also be predicted that an increase in ROS production associated with the “pushing” effect is quite sensitive to overall severity of this change with more active mutants being generally more protected against elevated ROS.This article is part of a Special Issue entitled ‘EBEC 2016: 19th European Bioenergetics Conference, Riva del Garda, Italy, July 2–6, 2016’, edited by Prof. Paolo Bernardi.
机译:细胞色素bc1(线粒体呼吸复合物III)操作的重要元素之一是铁硫蛋白(ISP-HD)头部结构的大规模运动,该结构连接了细胞色素b内的喹诺氧化位点(Qo) ,最外层的血红素c1是细胞色素c1。细胞色素b中的几个与线粒体疾病相关的突变位于细胞色素b-ISP-HD界面,因此它们的分子效应可能与ISP-HD的运动改变有关。最近,我们使用紫色细菌模型显示了这样一种突变-与天然酶相比,G167P将ISP-HD的平衡位置移向了远离Qo位置的位置[Borek等,生物化学杂志。化学290(2015)23781-23792]。这导致突变体产生反应性氧物种(ROS)的倾向增强,这是基于引起从血红素bL到醌的“半反向”电子转移的模型进行解释的。在这里,我们研究了该组中的另一个突变-G332D(人中为G290D),发现它也使ISP-HD的平衡位置向同一方向移动,但是显示出ROS产生的增强较少。我们提供的光谱指示表明,G332D可能会影响细胞色素b与ISP-HD之间相互作用的静电。根据测量的酶活性和电子转移速率,这种作用似乎不如G167P突变体中脯氨酸引起的结构变形严重。对G332D和G167P作用的比较分析证实了一个普遍的预测,即位于细胞色素b-ISP-HD接口的突变会影响ISP-HD的运动,并表明最有可能将ISP-HD“推”离Qo部位这种影响的结果。还可以预见,与“推动”效应相关的ROS产量的增加对这种变化的整体严重程度非常敏感,因为活性更高的突变体通常对ROS升高的保护更高。本文是《 EBEC》特刊的一部分2016年:第19届欧洲生物能学会议,意大利里瓦德尔加尔达,2016年7月2日至6日,由保罗·贝尔纳迪教授编辑。

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