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Understanding and Tuning the Catalytic Bias of Hydrogenase

机译:了解和调整加氢酶的催化偏差

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摘要

When enzymes are optimized for biotech-nological purposes, the goal often is to increase stability or catalytic efficiency. However, many enzymes reversibly convert their substrate and product, and if one is interested in catalysis in only one direction, it may be necessary to prevent the reverse reaction. In other cases, reversibility may be advantageous because only an enzyme that can operate in both directions can turnover at a high rate even under conditions of low thermodynamic driving force. Therefore, understanding the basic mechanisms of reversibility in complex enzymes should help the rational engineering of these proteins. Here, we focus on NiFe hydrogenase, an enzyme that catalyzes H_2 oxidation and production, and we elucidate the mechanism that governs the catalytic bias (the ratio of maximal rates in the two directions). Unexpectedly, we found that this bias is not mainly determined by redox properties of the active site, but rather by steps which occur on sites of the proteins that are remote from the active site. We evidence a novel strategy for tuning the catalytic bias of an oxidoreductase, which consists in modulating the rate of a step that is limiting only in one direction of the reaction, without modifying the properties of the active site.
机译:当针对生物技术目的优化酶时,目标通常是提高稳定性或催化效率。但是,许多酶可逆地转换其底物和产物,如果只对一个方向感兴趣,则可能有必要防止逆反应。在其他情况下,可逆性可能是有利的,因为即使在低热力学驱动力的条件下,只有可以在两个方向上起作用的酶才可以高速率转换。因此,了解复杂酶中可逆性的基本机制应有助于这些蛋白质的合理工程。在这里,我们集中于NiFe氢化酶(一种催化H_2氧化和产生的酶),并阐明了控制催化偏差(两个方向上的最大速率之比)的机制。出乎意料的是,我们发现这种偏差主要不是由活性位点的氧化还原特性决定的,而是由在远离活性位点的蛋白质的位点上发生的步骤决定的。我们证明了一种用于调节氧化还原酶的催化偏置的新颖策略,该策略包括调节仅在反应的一个方向上受限的步骤的速率,而不改变活性位点的性质。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第20期|p.8368-8371|共4页
  • 作者单位

    Laboratoire de Bioenergetique et Ingenierie des Proteines, Institut de Microbiologie de la Mediterranee, CNRS and Aix-Marseille Universite, 31 chemin Joseph Aiguier, 13402 Marseille Cedex 20, France;

    Laboratoire de Bioenergetique et Ingenierie des Proteines, Institut de Microbiologie de la Mediterranee, CNRS and Aix-Marseille Universite, 31 chemin Joseph Aiguier, 13402 Marseille Cedex 20, France;

    Laboratoire de Bioenergetique et Ingenierie des Proteines, Institut de Microbiologie de la Mediterranee, CNRS and Aix-Marseille Universite, 31 chemin Joseph Aiguier, 13402 Marseille Cedex 20, France;

    Instituto de Catalisis y Petroleoquimica (CSIC), 28049 Madrid, Spain;

    CEA, DSV, IBEB, Laboratoire de Bioenergetique et Biotechnologie des Bacteries & Microalgues, Saint Paul Lez Durance/CNRS, UMR Biologie Vegetale & Microbiologie Environnementales, Saint Paul lez Durance, France/Aix-Marseille Universite, Saint Paul lez Durance, France;

    Instituto de Catalisis y Petroleoquimica (CSIC), 28049 Madrid, Spain;

    Laboratoire de Bioenergetique et Ingenierie des Proteines, Institut de Microbiologie de la Mediterranee, CNRS and Aix-Marseille Universite, 31 chemin Joseph Aiguier, 13402 Marseille Cedex 20, France;

    CEA, DSV, IBEB, Laboratoire de Bioenergetique et Biotechnologie des Bacteries & Microalgues, Saint Paul Lez Durance/CNRS, UMR Biologie Vegetale & Microbiologie Environnementales, Saint Paul lez Durance, France/Aix-Marseille Universite, Saint Paul lez Durance, France IRD, UMR Eco&Sols, 2 Place Viala, 34060 Montpellier Cedex 02, France;

    Laboratoire de Bioenergetique et Ingenierie des Proteines, Institut de Microbiologie de la Mediterranee, CNRS and Aix-Marseille Universite, 31 chemin Joseph Aiguier, 13402 Marseille Cedex 20, France;

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