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大规模的结构域构象变化与 B12 依赖性酶鸟氨酸 4,5-氨基转移酶中 Co-C 键的激活相偶联:一项计算研究。

Large-scale domain conformational change is coupled to the activation of the Co-C bond in the B12-dependent enzyme ornithine 4,5-aminomutase: a computational study.

机构信息

Manchester Interdisciplinary Biocentre, University of Manchester, 131 Princess Street, Manchester M1 7DN, United Kingdom.

出版信息

J Am Chem Soc. 2012 Feb 1;134(4):2367-77. doi: 10.1021/ja210417k. Epub 2012 Jan 19.

Abstract

We present here an energetic and atomistic description of how D-ornithine 4,5-aminomutase (OAM), an adenosylcobalamin (AdoCbl; coenzyme B(12))-dependent isomerase, employs a large-scale protein domain conformational change to orchestrate the homolytic rupture of the Co-C bond. Our results suggest that in going from the open form (catalytically inactive) to the closed form (catalytically active), the Rossmann domain of OAM effectively approaches the active site as a rigid body. It undergoes a combination of a ~52° rotation and a ~14 Å translation to bring AdoCbl-initially positioned ~25 Å away-into the active-site cavity. This process is coupled to repositioning of the Ado moiety of AdoCbl from the eastern conformation to the northern conformation. Combined quantum mechanics and molecular mechanics calculations further indicate that in the open form, the protein environment does not impact significantly on the Co-C bond homolytic rupture, rendering it unusually stable, and thus catalytically inactive. Upon formation of the closed form, the Co-C bond is activated through the synergy of steric and electrostatic effects arising from tighter interactions with the surrounding enzyme. The more pronounced effect of the protein in the closed form gives rise to an elongated Co-C bond (by 0.03 Å), puckering of the ribose and increased "strain" energy on the Ado group and to a lesser extent the corrin ring. Our computational studies reveal novel strategies employed by AdoCbl-dependent enzymes in the control of radical catalysis.

摘要

我们在此提出了一种充满活力且原子级别的描述,阐释了 D-鸟氨酸 4,5-氨基甲酰转移酶(OAM)如何利用大规模的蛋白质结构域构象变化来协调钴胺素(AdoCbl;辅酶 B(12))依赖性异构酶的 Co-C 键的均裂。我们的结果表明,OAM 的 Rossmann 结构域从开放形式(无催化活性)转变为闭合形式(有催化活性)时,实际上作为一个刚体接近活性位点。它经历了约 52°的旋转和约 14 Å的平移,将最初位于~25 Å 之外的 AdoCbl 带到活性位点腔中。这一过程伴随着 AdoCbl 的 Ado 部分从东部构象到北部构象的重新定位。结合量子力学和分子力学计算进一步表明,在开放形式中,蛋白质环境对 Co-C 键的均裂没有显著影响,使其异常稳定,因此无催化活性。形成闭合形式后,通过与周围酶更紧密的相互作用产生的空间和静电效应的协同作用,激活 Co-C 键。在闭合形式中,蛋白质的影响更为显著,导致 Co-C 键延长(0.03 Å)、核糖的扭曲以及 Ado 基团和一定程度上的 corrin 环上的“应变”能增加。我们的计算研究揭示了 AdoCbl 依赖性酶在控制自由基催化中采用的新策略。

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