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O_2 Reduction to Water by High Potential Multicopper Oxidases: Contributions of the T1 Copper Site Potential and the Local Environment of the Trinuclear Copper Cluster

机译:O_2通过高电位多杯氧化酶降低水:T1铜部位电位和三核铜簇的局部环境的贡献

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摘要

High potential multicopper oxidases (MCOs) have T1 reduction potentials 600 mV (vs normal hydrogen electrode), making them important catalysts for O-2 reduction in various biotechnological applications. The oxygen reduction mechanism for the low potential MCOs is well-characterized; however, O-2 reactivity of high potential MCOs is not well understood. In this study, we have shown that laccase from Trametes versicolor, where the T1 redox potential is increased by similar to 350 mV over that of the low potential MCOs corresponding to an 8 kcal/mol decrease in the driving force, exhibits a slower intramolecular electron transfer (IET) rate to the trinuclear Cu cluster (TNC) in the native intermediate (NI), relative to the low potential MCO from Rhus vernicifera laccase. This IET rate is, however, 10(2) times faster than the decay rate of the NI, demonstrating that this intermediate form of the enzyme is catalytically relevant enabling fast turnover. However, in contrast to the low potential MCOs where T1 reduction by substrate is rate limiting, the rate limiting step in turnover of high potential MCOs is the first IET to NI. Part of the reduction potential difference of the T1 sites in high vs low potential MCOs is balanced by an similar to 100 mV higher reduction potential of NI due to the more positive protein environment in the vicinity of the TNC.
机译:高电位多杯氧化酶(MCO)具有T1降低电位> 600mV(Vs常氢电极),使其成为各种生物技术应用中的O-2减少的重要催化剂。低潜在MCO的氧气还原机构是很好的;然而,高潜力MCO的O-2反应性并不了解。在这项研究中,我们已经表明,来自Trametes Versicolor的漆酶,其中T1氧化还原电位增加到350mV,在对应于驱动力的8kcal / mol的低电位MCO上,表现出较慢的分子内电子将(IET)速率转移到本地中间体(NI)中的三核Cu聚类(TNC),相对于来自Rhus Vernicifera漆酶的低电位MCO。然而,这种IET率比Ni的衰减率快,表明该酶的这种中间形式催化相关,从而实现快速营业额。然而,与通过基板的T1减少的低电位MCO相反,高潜能MCO的速度下速率的速率限制步骤是NI的第一个IET。由于TNC附近的蛋白质环境更高的蛋白质环境,高VS低电位MCO的T1位点的一部分降低电位差异与NI的较高降低电位相似。

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  • 来源
    《Journal of the American Chemical Society》 |2019年第28期|11304-11314|共11页
  • 作者单位

    Stanford Univ Dept Chem 333 Campus Dr Stanford CA 94305 USA;

    Stanford Univ Dept Chem 333 Campus Dr Stanford CA 94305 USA;

    Stanford Univ Dept Chem 333 Campus Dr Stanford CA 94305 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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