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HEME-HEME COMUNICATION DURING THE ALKALINE INDUCED STRUCTURAL TRANSITION IN CYTOCROME C OXIDASE

机译:细胞色素C氧化酶中碱性诱导的结构转变过程中的血红素-血红素通讯

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摘要

Alkaline induced conformational changes at pH 12.0 in the oxidized as well as the reduced state of cytochrome c oxidase have been systematically studied with time-resolved optical absorption and resonance Raman spectroscopies. In the reduced state, the heme a3 first converts from the native five-coordinate configuration to a six-coordinate bis-histidine intermediate as a result of the coordination of one of the CuB ligands, H290 or H291, to the heme iron. The coordination state change in the heme a3 causes the alteration in the microenvironment of the formyl group of the heme a3 and the disruption of the H-bond between R38 and the formyl group of the heme a. This structural transition, which occurs within 1 minute following the initiation of the pH jump, is followed by a slower reaction, in which Schiff base linkages are formed between the formyl groups of the two hemes and their nearby amino acid residues, presumably R38 and R302 for the heme a and a3, respectively. In the oxidized enzyme, a similar Schiff base modification on heme a and a3 was observed but it is triggered by the coordination of the H290 or H291 to heme a3 followed by the breakage of the native proximal H378-iron and H376-iron bonds in heme a and a3, respectively. In both oxidation states, the synchronous formation of the Schiff base linkages in heme a and a3 relies on the structural communication between the two hemes via the H-bonding network involving R438 and R439 and the propionate groups of the two hemes as well as the helix X housing the two proximal ligands, H378 and H376, of the hemes. The heme-heme communication mechanism revealed in this work may be important in controlling the coupling of the oxygen and redox chemistry in the heme sites to proton pumping during the enzymatic turnover of CcO.
机译:用时间分辨的光吸收和共振拉曼光谱系统研究了碱性诱导的pH值为12.0的氧化时的构象变化以及细胞色素C氧化酶的还原状态。在还原状态下,由于CuB配体之一H290或H291与血红素铁配位,血红素a3首先从天然的五配位构型转变为六配位的双组氨酸中间体。血红素a3的配位状态变化引起血红素a3的甲酰基的微环境的改变以及R38与血红素a的甲酰基的H键的破坏。 pH跃迁开始后1分钟内发生这种结构转变,随后发生较慢的反应,其中两个血红素的甲酰基与其附近的氨基酸残基(大概是R38和R302)之间形成席夫碱键分别针对血红素a和a3。在氧化酶中,在血红素a和a3上观察到类似的席夫碱修饰,但它是由H290或H291与血红素a3的配位触发的,随后是血红素中天然的近端H378-铁和H376-铁键断裂a和a3分别。在两种氧化态下,血红素a和a3中的席夫碱键的同步形成都依赖于两个血红素之间的结构连通,该结构通过涉及R438和R439的氢键网络以及两个血红素的丙酸酯基团和螺旋结构X容纳血红素的两个近端配体H378和H376。在这项工作中揭示的血红素-血红素通讯机制可能在控制CcO的酶转化过程中控制血红素位点中的氧和氧化还原化学与质子泵的耦合中很重要。

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  • 期刊名称 other
  • 作者单位
  • 年(卷),期 -1(102),3
  • 年度 -1
  • 页码 414–426
  • 总页数 28
  • 原文格式 PDF
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  • 入库时间 2022-08-21 11:32:30

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