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首页> 外文期刊>Biochimica et biophysica acta: BBA: International journal of biochemistry, biophysics and molecular biololgy. Proteins and Proteomics >Molecular dynamics simulations of the intramolecular proton transfer and carbanion stabilization in the pyridoxal 5'-phosphate dependent enzymes L-dopa decarboxylase and alanine racemase.
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Molecular dynamics simulations of the intramolecular proton transfer and carbanion stabilization in the pyridoxal 5'-phosphate dependent enzymes L-dopa decarboxylase and alanine racemase.

机译:吡ido醛5'-磷酸依赖性酶L-多巴脱羧酶和丙氨酸消旋酶中分子内质子转移和碳稳定的分子动力学模拟。

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Molecular dynamics simulations using a combined quantum mechanical and molecular mechanical (QM/MM) potential have been carried out to investigate the internal proton transfer equilibrium of the external aldimine species in l-dopa decarboxylase, and carbanion stabilization by the enzyme cofactor in the active site of alanine racemase. Solvent effects lower the free energy of the O-protonated PLP tautomer both in aqueous solution and in the active site, resulting a free energy difference of about -1 kcal/mol relative to the N-protonated Schiff base in the enzyme. The external aldimine provides the dominant contribution to lowering the free energy barrier for the spontaneous decarboxylation of l-dopa in water, by a remarkable 16 kcal/mol, while the enzyme l-dopa decarboxylase further lowers the barrier by 8 kcal/mol. Kinetic isotope effects were also determined using a path integral free energy perturbation theory on the primary (13)C and the secondary (2)H substitutions. In the case of alanine racemase, if the pyridine ring is unprotonated as that in the active site, there is destabilizing contribution to the formation of the alpha-carbanion in the gas phase, although when the pyridine ring is protonated the contribution is stabilizing. In aqueous solution and in alanine racemase, the alpha-carbanion is stabilized both when the pyridine ring is protonated and unprotonated. The computational studies illustrated in this article show that combined QM/MM simulations can help provide a deeper understanding of the mechanisms of PLP-dependent enzymes. This article is part of a Special Issue entitled: Pyridoxal Phosphate Enzymology.
机译:已经进行了使用组合的量子力学和分子力学(QM / MM)势的分子动力学模拟,以研究l-多巴脱羧酶中外部醛亚胺物种的内部质子转移平衡,以及活性位点中酶辅因子对碳负离子的稳定作用。丙氨酸消旋酶。溶剂效应降低了水溶液和活性位点中O质子化的PLP互变异构体的自由能,相对于酶中N质子化的席夫碱,其自由能差约为-1 kcal / mol。外部醛亚胺为降低水中左旋多巴的自发脱羧的自由能垒提供了显着的贡献,降低了16 kcal / mol,而左旋多巴脱羧酶进一步使该势垒降低了8 kcal / mol。还使用路径积分自由能微扰理论确定了一级(13)C和二级(2)H取代的动力学同位素效应。在丙氨酸消旋酶的情况下,如果吡啶环未如活性位中那样被质子化,则尽管在使吡啶环质子化时该贡献是稳定的,但对气相中α-碳二烯的形成具有不稳定的贡献。在水溶液和丙氨酸消旋酶中,当吡啶环被质子化和未质子化时,α-碳环均稳定。本文说明的计算研究表明,结合的QM / MM模拟可以帮助提供对PLP依赖性酶机理的更深入了解。本文是《特刊:磷酸吡rid醛酶学》特刊的一部分。

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