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Original Design of an Oxygen-Tolerant [NiFe] Hydrogenase: Major Effect of a Valine-to-Cysteine Mutation near the Active Site

机译:耐氧性[NiFe]氢酶的原始设计:活性位附近的缬氨酸到半胱氨酸突变的主要影响。

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摘要

Hydrogenases are efficient biological catalysts of H_2 oxidation and production. Most of them are inhibited by O_2, and a prerequisite for their use in biotechnological applications under air is to improve their oxygen tolerance. We have previously shown that exchanging the residue at position 74 in the large subunit of the oxygen-sensitive [NiFe] hydrogenase from Desulfovibrio fructosovorans could impact the reaction of the enzyme with O_2 (Dementin, S.; et al. J. Am. Chem. Soc. 2009, 131, 10156-10164; Liebgott, P. P.; et al. Nat. Chem. Biol. 2010, 6, 63-70). This residue, a valine in the wild-type enzyme, located at the bottleneck of the gas channel near the active site, has here been exchanged with a cysteine. A thorough characterization using a combination of kinetic, spectroscopic (EPR, FTIR), and electrochemical studies demonstrates that the V74C mutant has features of the naturally occurring oxygen-tolerant membrane-bound hydrogenases (MBH). The mutant is functional during several minutes under O_2, has impaired H_2-production activity, and has a weaker affinity for CO than the WT. Upon exposure to O_2, it is converted into the more easily reactivatable inactive form, Ni-B, and this inactive state reactivates about 20 times faster than in the WT enzyme. Control experiments carried out with the V74S and V74N mutants indicate that protonation of the position 74 residue is not the reason the mutants reactivate faster than the WT enzyme. The electrochemical behavior of the V74C mutant toward O_2 is intermediate between that of the WT enzyme from D. fructosovorans and the oxygen-tolerant MBH from Aquifex aeolkus.
机译:氢化酶是H_2氧化和生产的有效生物催化剂。它们中的大多数被O_2抑制,在空气中用于生物技术应用的先决条件是提高其耐氧性。先前我们已经表明,交换来自果糖脱硫单糖的对氧敏感的[NiFe]氢化酶的大亚基中第74位的残基可能会影响该酶与O_2的反应(Dementin,S.等人,J。Am。Chem Soc.2009,131,10156-10164; Liebgott,PP; et al.Nat.Chem.Biol.2010,6,63-70)。该残基,即野生型酶中的缬氨酸,位于活性位点附近气体通道的瓶颈处,此处已被半胱氨酸交换。结合动力学,光谱学(EPR,FTIR)和电化学研究的全面表征表明,V74C突变体具有天然存在的耐氧膜结合氢酶(MBH)的特征。该突变体在O_2下几分钟内即可起作用,损害了H_2的生产活性,并且与WT相比,对CO的亲和力弱。暴露于O_2后,它会转化为更易于反应的非活性形式Ni-B,并且这种非活性状态的活化速度比WT酶快20倍。用V74S和V74N突变体进行的对照实验表明,第74位残基的质子化不是突变体比WT酶更快活化的原因。 V74C突变体对O_2的电化学行为介于果糖梭菌的WT酶和Aquifex aeolkus的耐氧MBH之间。

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  • 来源
    《Journal of the American Chemical Society》 |2011年第4期|p.986-997|共12页
  • 作者单位

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

    Institute de Catalisis, CSIC, c/Marie Curie 2, 28049 Madrid, Spain;

    CNRS, Laboratoire de Bioenergetique et Ingenierie des Proteines, Institut de Microbiologie de la Mediterranee, 31 chemin Joseph Aiguier, 13402 Marseille Cedex 20, France,Aix-Marseille Universite, 3 place Victor-Hugo, 13331 Marseille, France;

    CEA, DSV, IBEB, Laboratoire de Bioenergetique et Biotechnologie des Bacteries et Microalgues, 13108 Saint-Paul-lez-Durance, France,Aix-Marseille Universite, 3 place Victor-Hugo, 13331 Marseille, France,CNRS, UMR, Biologie Vegetale et Microbiologie Environnementales, 13108 Saint Paul Lez Durance, France;

    CEA, DSV, IBEB, Laboratoire de Bioenergetique et Biotechnologie des Bacteries et Microalgues, 13108 Saint-Paul-lez-Durance, France,Aix-Marseille Universite, 3 place Victor-Hugo, 13331 Marseille, France,CNRS, UMR, Biologie Vegetale et Microbiologie Environnementales, 13108 Saint Paul Lez Durance, France;

    CNRS, Laboratoire de Bioenergetique et Ingenierie des Proteines, Institut de Microbiologie de la Mediterranee, 31 chemin Joseph Aiguier, 13402 Marseille Cedex 20, France,Aix-Marseille Universite, 3 place Victor-Hugo, 13331 Marseille, France;

    Institute de Catalisis, CSIC, c/Marie Curie 2, 28049 Madrid, Spain;

    CNRS, Laboratoire de Bioenergetique et Ingenierie des Proteines, Institut de Microbiologie de la Mediterranee, 31 chemin Joseph Aiguier, 13402 Marseille Cedex 20, France,Aix-Marseille Universite, 3 place Victor-Hugo, 13331 Marseille, France;

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

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

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

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