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手性动力学拆分 4-取代的 1,2,3,4-四氢喹啉类化合物的胺氧化酶。

Enantiodivergent kinetic resolution of 4-substituted 1,2,3,4-tetrahydroquinolines employing amine oxidase.

机构信息

College of Chemical and Biological Engineering, Zhejiang University, NO. 866 Yuhangtang Road, Hangzhou 310058, China.

ZJU-Hangzhou Global Scientific and Technological Innovation Center, NO. 733 Jianshe San Road, Xiaoshan District, Hangzhou 311200, China.

出版信息

Int J Biol Macromol. 2024 Jun;269(Pt 2):132102. doi: 10.1016/j.ijbiomac.2024.132102. Epub 2024 May 9.

Abstract

Optically pure 1,2,3,4-tetrahydroquinolines (THQs) represent a class of important motifs in many natural products and pharmaceutical agents. While recent advances on redox biocatalysis have demonstrated the great potential of amine oxidases, all the transformations focused on 2-substituted THQs. The corresponding biocatalytic method for the preparation of chiral 4-substituted THQs is still challenging due to the poor activity and stereoselectivity of the available enzyme. Herein, we developed a biocatalytic kinetic resolution approach for enantiodivergent synthesis of 4-phenyl- or alkyl-substituted THQs. Through structure-guided protein engineering of cyclohexylamine oxidase derived from Brevibacterium oxidans IH-35 A (CHAO), the variant of CHAO (Y215H/Y214S) displayed improved specific activity toward model substrate 4-phenyl substituted THQ (0.14 U/mg, 13-fold higher than wild-type CHAO) with superior (R)-stereoselectivity (E > 200). Molecular dynamics simulations show that CHAO Y215H/Y214S allows a suitable substrate positioning in the expanded binding pocket to be facilely accessed, enabling enhanced activity and stereoselectivity. Furthermore, a series of 4-alkyl-substituted THQs can be transformed by CHAO Y215H/Y214S, affording R-isomers with good yields (up to 50 %) and excellent enantioselectivity (up to ee > 99 %). Interestingly, the monoamine oxidase from Pseudomonas fluorescens Pf0-1 (PfMAO1) with opposite enantioselectivity was also mined. Together, this system enriches the kinetic resolution methods for the synthesis of chiral THQs.

摘要

光学纯的 1,2,3,4-四氢喹啉(THQs)是许多天然产物和药物制剂中的重要结构单元。尽管氧化还原生物催化的最新进展展示了胺氧化酶的巨大潜力,但所有的转化都集中在 2-取代的 THQs 上。由于可用酶的活性和立体选择性较差,相应的制备手性 4-取代 THQs 的生物催化方法仍然具有挑战性。在此,我们开发了一种用于对映体发散合成 4-取代苯基或烷基取代 THQs 的生物催化动力学拆分方法。通过 Brevibacterium oxidans IH-35 A(CHAO)来源的环己胺氧化酶的结构导向蛋白工程,突变体 CHAO(Y215H/Y214S)对模型底物 4-取代苯基 THQ 的比活性(0.14 U/mg,比野生型 CHAO 高 13 倍)提高,且具有更高的(R)-立体选择性(E > 200)。分子动力学模拟表明,CHAO Y215H/Y214S 允许底物在扩展的结合口袋中更容易定位,从而提高了活性和立体选择性。此外,一系列 4-烷基取代的 THQs 可以通过 CHAO Y215H/Y214S 转化,得到 R-异构体,收率高(高达 50%),对映选择性好(高达 ee > 99%)。有趣的是,还挖掘了来自 Pseudomonas fluorescens Pf0-1 的单胺氧化酶 PfMAO1,其具有相反的对映选择性。总的来说,该体系丰富了合成手性 THQs 的动力学拆分方法。

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