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结构与计算视角下的立体选择性转化中柠檬烯环氧化物水解酶突变体的催化机制。

Structural and Computational Insight into the Catalytic Mechanism of Limonene Epoxide Hydrolase Mutants in Stereoselective Transformations.

机构信息

Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences , 32 West 7th Avenue, Tianjin Airport Economic Area, Tianjin 300308, China.

State Key Laboratory of Bio-organic and Natural Products Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences , Shanghai 200032, China.

出版信息

J Am Chem Soc. 2018 Jan 10;140(1):310-318. doi: 10.1021/jacs.7b10278. Epub 2017 Dec 27.

Abstract

Directed evolution of limonene epoxide hydrolase (LEH), which catalyzes the hydrolytic desymmetrization reactions of cyclopentene oxide and cyclohexene oxide, results in (R,R)- and (S,S)-selective mutants. Their crystal structures combined with extensive theoretical computations shed light on the mechanistic intricacies of this widely used enzyme. From the computed activation energies of various pathways, we discover the underlying stereochemistry for favorable reactions. Surprisingly, some of the most enantioselective mutants that rapidly convert cyclohexene oxide do not catalyze the analogous transformation of the structurally similar cyclopentene oxide, as shown by additional X-ray structures of the variants harboring this slightly smaller substrate. We explain this puzzling observation on the basis of computational calculations which reveal a disrupted alignment between nucleophilic water and cyclopentene oxide due to the pronounced flexibility of the binding pocket. In contrast, in the stereoselective reactions of cyclohexene oxide, reactive conformations are easily reached. The unique combination of structural and computational data allows insight into mechanistic details of this epoxide hydrolase and provides guidance for future protein engineering in reactions of structurally different substrates.

摘要

定向进化柠檬烯环氧化物水解酶(LEH),该酶催化环戊烯氧化物和环己烯氧化物的水解不对称反应,得到(R,R)-和(S,S)-选择性突变体。它们的晶体结构结合广泛的理论计算,揭示了这种广泛使用的酶的复杂机制。通过计算各种途径的活化能,我们发现了有利于反应的潜在立体化学。令人惊讶的是,一些对映选择性最高的突变体能够快速转化环己烯氧化物,但不能催化结构相似的环戊烯氧化物的类似转化,这可以通过含有这种稍小底物的变体的额外 X 射线结构来证明。我们根据计算计算结果解释了这种令人困惑的观察结果,该结果表明由于结合口袋的明显灵活性,亲核水和环戊烯氧化物之间的排列被破坏。相比之下,在环己烯氧化物的立体选择性反应中,反应性构象很容易达到。结构和计算数据的独特组合使我们能够深入了解这种环氧化物水解酶的机制细节,并为未来在结构不同的底物的反应中的蛋白质工程提供指导。

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