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Spectroscopic and Computational Evidence that [FeFe] Hydrogenases Operate Exclusively with CO-Bridged Intermediates

机译:[FeFe]氢化酶仅与CO桥联中间体一起运行的光谱和计算证据

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摘要

[FeFe] hydrogenases are extremely active H_2-converting enzymes. Their mechanism remains highly controversial, in particular, the nature of the one-electron and two-electron reduced intermediates called H_(red)H~+ and H_(sred)H~+. In one model, the H_(red)H~+ and H_(sred)H~+ states contain a semibridging CO, while in the other model, the bridging CO is replaced by a bridging hydride. Using low-temperature IR spectroscopy and nuclear resonance vibrational spectroscopy, together with density functional theory calculations, we show that the bridging CO is retained in the H_(sred)H~+ and H_(red)H~+ states in the [FeFe] hydrogenases from Chlamydomonas reinhardtii and Desulfovibrio desulfuricans, respectively. Furthermore, there is no evidence for a bridging hydride in either state. These results agree with a model of the catalytic cycle in which the H_(red)H~+ and H_(sred)H~+ states are integral, catalytically competent components. We conclude that proton-coupled electron transfer between the two subclusters is crucial to catalysis and allows these enzymes to operate in a highly efficient and reversible manner.
机译:[FeFe]氢化酶是极具活性的H_2转化酶。它们的机理仍存在很大争议,特别是一电子和两电子还原的中间体H_(red)H〜+和H_(sred)H〜+的性质。在一个模型中,H_(red)H〜+和H_(sred)H〜+状态包含半桥连的CO,而在另一种模型中,桥连的CO被桥连的氢化物代替。使用低温红外光谱和核共振振动光谱,以及密度泛函理论计算,我们表明桥接的CO保留在[FeFe]中的H_(sred)H〜+和H_(red)H〜+状态。分别来自莱茵衣藻和脱硫弧菌的脱氢酶。此外,没有证据表明两种状态下的氢化桥联反应。这些结果与其中H_(红色)H〜+和H_(sred)H〜+状态是整体的,催化活性成分的催化循环模型相吻合。我们得出结论,两个子簇之间的质子耦合电子转移对催化至关重要,并允许这些酶以高效和可逆的方式运行。

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  • 来源
    《Journal of the American Chemical Society》 |2020年第1期|222-232|共11页
  • 作者单位

    Max Planck Institute for Chemical Energy Conversion Stiftstrasse 34-36 45470 Muelheim an der Ruhr Germany;

    Institut fur Chemie Technische Universitat Berlin Strasse des 17 Juni 135 10623 Berlin Germany;

    Department of Chemistry University of California Davis One Shields Avenue Davis California 95616 United States;

    ASRI Spring-8 1-1-1 Kouto Mikazuki-cho Sayo-gun Hyogo 679-5198 Japan;

    School of Chemical Sciences University of Illinois 600 S. Mathews Avenue Urbana Illinois 61801 United States;

    SETI Institute Mountain View California 94043 United States;

  • 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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  • 入库时间 2022-08-18 05:17:05

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