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钴取代的布氏嗜热栖热菌醇脱氢酶催化位点中更高的金属-配体配位作用降低了酶催化的屏障。

Higher metal-ligand coordination in the catalytic site of cobalt-substituted Thermoanaerobacter brockii alcohol dehydrogenase lowers the barrier for enzyme catalysis.

作者信息

Kleifeld Oded, Rulísek Lubomír, Bogin Oren, Frenkel Anatoly, Havlas Zdenek, Burstein Yigal, Sagi Irit

机构信息

Department of Structural Biology, The Weizmann Institute for Science, Rehovot 76100, Israel.

出版信息

Biochemistry. 2004 Jun 8;43(22):7151-61. doi: 10.1021/bi0302696.

Abstract

Thermoanaerobacter brockii alcohol dehydrogenase (TbADH) is a zinc-dependent NADP(+)/H-linked class enzyme that reversibly catalyzes the oxidation of secondary alcohols to their corresponding ketones. Cobalt substitution studies of other members of the alcohol dehydrogenase (ADH) family showed that the cobalt-containing ADHs have a similar active site structure but slightly decreased activity compared to wild-type zinc ADHs. In contrast, the cobalt-substituted TbADH (Co-TbADH) exhibits an increase in specific activity compared to the native enzyme [Bogin, O., Peretz, M., and Burstein, Y. (1997) Protein Sci. 6, 450-458]. However, the structural basis underlying this behavior is not yet clear. To shed more light on this issue, we studied the local structure and electronics at the catalytic metal site in Co-TbADH by combining X-ray absorption (XAS) and quantum chemical calculations. Importantly, we show that the first metal-ligand coordination shell of Co-TbADH is distorted compared to its native tetrahedral coordination shell and forms an octahedral structure. This is mediated presumably by the addition of two water molecules and results in more positively charged catalytic metal ions. Recently, we have shown that the metal-ligand coordination number of the zinc ion in TbADH changes dynamically during substrate turnover. These structural changes are associated with a higher coordination number of the native catalytic zinc ion and the consequent buildup of a positive charge. Here we propose that the accumulation of a higher coordination number and positive charge at the catalytic metal ion in TbADH stabilizes the structure of the catalytic transition state and hence lowers the barrier for enzyme catalysis.

摘要

嗜热栖热菌酒精脱氢酶(TbADH)是一种依赖锌的NADP(+)/H连接类酶,可将仲醇可逆地催化氧化为相应的酮。对酒精脱氢酶(ADH)家族其他成员的钴取代研究表明,含钴的ADH具有相似的活性位点结构,但与野生型锌ADH相比活性略有降低。相比之下,钴取代的TbADH(Co-TbADH)与天然酶相比比活性增加[博金,O.,佩雷茨,M.,和伯斯坦,Y.(1997年)《蛋白质科学》6,450 - 458]。然而,这种行为背后的结构基础尚不清楚。为了更清楚地了解这个问题,我们通过结合X射线吸收(XAS)和量子化学计算研究了Co-TbADH催化金属位点的局部结构和电子性质。重要的是,我们表明Co-TbADH的第一个金属-配体配位壳与其天然四面体配位壳相比发生了扭曲,形成了八面体结构。这可能是由两个水分子的加入介导的,并导致催化金属离子带更多正电荷。最近,我们已经表明TbADH中锌离子的金属-配体配位数在底物周转过程中动态变化。这些结构变化与天然催化锌离子的高配位数以及随之而来的正电荷积累有关。在这里,我们提出TbADH催化金属离子处高配位数和正电荷的积累稳定了催化过渡态的结构,从而降低了酶催化的障碍。

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