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量子力学/分子力学研究 4-羟基环己酮酶促 Baeyer-Villiger 反应的对映选择性。

Quantum mechanical/molecular mechanical study on the enantioselectivity of the enzymatic Baeyer-Villiger reaction of 4-hydroxycyclohexanone.

机构信息

Max-Planck-Institut für Kohlenforschung, Kaiser-Wilhelm-Platz 1, D-45470 Mülheim an der Ruhr, Germany.

出版信息

J Phys Chem B. 2013 May 2;117(17):4993-5001. doi: 10.1021/jp4018019. Epub 2013 Apr 19.

DOI:10.1021/jp4018019
PMID:23600847
Abstract

We report a combined quantum mechanical/molecular mechanical (QM/MM) study of the effect of mutations of the Phe434 residue in the active site of cyclohexanone monooxygenase (CHMO) on its enantioselectivity toward 4-hydroxycyclohexanone. In terms of our previously established model of the enzymatic Baeyer-Villiger reaction, enantioselectivity is governed by the preference toward the equatorial ((S)-selectivity) or axial ((R)-selectivity) conformation of the substituent at the C4 carbon atom of the cyclohexanone ring in the Criegee intermediate and the subsequent rate-limiting transition state for migration (TS2). We assess the enantiopreference by locating all relevant TS2 structures at the QM/MM level. In the wild-type enzyme we find that the axial conformation is energetically slightly more stable, thus leading to a small excess of (R)-product. In the Phe434Ser mutant, there is a hydrogen bond between the serine side chain and the equatorial substrate hydroxyl group that is retained during the whole reaction, and hence there is pronounced reverse (S)-enantioselectivity. Another mutant, Phe434Ile, is shown to preserve and enhance the (R)-selectivity. All these findings are in accordance with experiment. The QM/MM calculations allow us to explain the effect of point mutations on CHMO enantioselectivity for the first time at the molecular level by an analysis of the specific interactions between substrate and active-site environment in the TS2 structures that satisfy the basic stereoelectronic requirement of anti-periplanarity for the migrating σ-bond.

摘要

我们报告了一项组合量子力学/分子力学(QM/MM)研究,研究了环己酮单加氧酶(CHMO)活性部位中 Phe434 残基突变对其对 4-羟基环己酮的对映选择性的影响。根据我们之前建立的酶促 Baeyer-Villiger 反应模型,对映选择性受 Criegee 中间体中环己酮环 C4 碳原子上取代基的赤道((S)-选择性)或轴向((R)-选择性)构象的偏好以及随后迁移的速率限制过渡态(TS2)决定。我们通过在 QM/MM 水平上定位所有相关的 TS2 结构来评估对映体偏好。在野生型酶中,我们发现轴向构象在能量上略微更稳定,因此导致(R)-产物略有过量。在 Phe434Ser 突变体中,丝氨酸侧链和赤道底物羟基之间存在氢键,在整个反应过程中保持不变,因此表现出明显的反向(S)-对映选择性。另一个突变体 Phe434Ile 被证明保留并增强了(R)-选择性。所有这些发现都与实验相符。QM/MM 计算首次允许我们通过分析满足迁移 σ 键反稠合基本立体电子要求的 TS2 结构中底物与活性位点环境之间的特定相互作用,从分子水平上解释点突变对 CHMO 对映选择性的影响。

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