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亲环素A催化过程中Arg 55有何特别之处?来自量子力学/分子力学混合模拟的见解。

What is so special about Arg 55 in the catalysis of cyclophilin A? insights from hybrid QM/MM simulations.

作者信息

Li Guohui, Cui Qiang

机构信息

Department of Chemistry and Theoretical Chemistry Institute, University of Wisconsin, Madison, 1101 University Avenue, Madison, Wisconsin 53706, USA.

出版信息

J Am Chem Soc. 2003 Dec 10;125(49):15028-38. doi: 10.1021/ja0367851.

Abstract

Potential of mean force (PMF) simulations with a hybrid QM/MM potential function were used to analyze the catalytic mechanism of human cyclophilin A (CypA). PMF calculations were performed for proline isomerization of peptides in solution, the wild-type CypA, and several CypA mutants. With an approximate density functional theory, the self-consistent-charge density functional tight binding (SCC-DFTB) as the QM level, and CHARMM 22 force field as MM, satisfactory energetics compared to available experiments were obtained. Calculations for the Arg55Ala and zero-charge-Arg55 mutants clearly indicated that Arg 55 significantly stabilizes the isomerization transition state through electrostatic interactions. However, the decrease in the average distance (thus the increase in interaction) between Arg 55 and the substrate amide N in going from the stable states to the transition state is mainly due to the pyramidalization of the amide N rather than motions associated with Arg 55. Although the nanosecond simulations cannot exclude the existence of sub-millisecond collective motions proposed on the basis of recent elegant NMR relaxation and line-shape analyses, the energetics obtained for the various enzyme systems here indicate that the contribution from motions of active site residues to catalysis is expected to be small. Instead, the present simulations support that the structural stability rather than mobility of the preorganized active site is more important. Through hydrogen-bonding interactions among the substrate, Arg 55, Gln 63, and Asn 102, the active site of the wild-type enzyme is structurally very stable and puts Arg 55 in a favorable position to perform its catalytic role in the transition state. This is further illustrated with the somewhat unexpected prediction that Arg55Lys is largely catalytically inactive, because Lys does not have the unique bifurcating construct of the guanidino group in Arg and thus the active site of Arg55Lys cannot accommodate Lys in a position capable of providing electrostatic stabilization of the isomerization transition state. Among all the enzyme systems studied, the wild-type CypA is the only one that selects the syn/exo transition state, while the syn/endo conformation is also present in the mutants, which is another reason for their higher barriers. Finally, the present analysis indicated that the population of near-attack-conformations (NAC) is not relevant to catalysis in CypA.

摘要

使用具有混合量子力学/分子力学势函数的平均力势(PMF)模拟来分析人亲环蛋白A(CypA)的催化机制。对溶液中肽的脯氨酸异构化、野生型CypA和几种CypA突变体进行了PMF计算。采用近似密度泛函理论,以自洽电荷密度泛函紧束缚(SCC-DFTB)作为量子力学水平,以CHARMM 22力场作为分子力学,与现有实验相比获得了令人满意的能量学结果。对Arg55Ala和零电荷Arg55突变体的计算清楚地表明,Arg 55通过静电相互作用显著稳定异构化过渡态。然而,从稳定态到过渡态时,Arg 55与底物酰胺N之间平均距离的减小(从而相互作用的增加)主要是由于酰胺N的锥形化,而不是与Arg 55相关的运动。尽管纳秒模拟不能排除基于最近优雅的核磁共振弛豫和线形分析提出的亚毫秒集体运动的存在,但这里获得的各种酶系统的能量学表明,活性位点残基的运动对催化的贡献预计很小。相反,目前的模拟支持预组织活性位点的结构稳定性而非流动性更为重要。通过底物、Arg 55、Gln 63和Asn ¹⁰²之间的氢键相互作用,野生型酶的活性位点在结构上非常稳定,并使Arg 55处于在过渡态发挥其催化作用的有利位置。这进一步通过一个有些出乎意料的预测得到说明,即Arg55Lys在很大程度上没有催化活性,因为Lys没有Arg中胍基独特的分叉结构,因此Arg55Lys的活性位点不能将Lys容纳在能够提供异构化过渡态静电稳定的位置。在所有研究的酶系统中,野生型CypA是唯一选择顺式/外向过渡态的,而顺式/内向构象也存在于突变体中,这是它们具有更高能垒的另一个原因。最后,目前的分析表明,近攻击构象(NAC)的数量与CypA中的催化作用无关。

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