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通过 Baeyer-Villiger 单加氧酶对催化中心的灵活性进行精确调控以减轻对哒嗪硫醚过度氧化的环区合理设计。

Rational design on loop regions for precisely regulating flexibility of catalytic center to mitigate overoxidation of prazole sulfides by Baeyer-Villiger monooxygenase.

机构信息

College of Biological Science and Engineering, Fuzhou University, Fuzhou 350116, China; Institute of Enzyme Catalysis and Synthetic Biotechnology, Fuzhou University, Fuzhou 350108, China.

College of Biological Science and Engineering, Fuzhou University, Fuzhou 350116, China.

出版信息

Bioorg Chem. 2024 Oct;151:107718. doi: 10.1016/j.bioorg.2024.107718. Epub 2024 Aug 12.

Abstract

S-omeprazole and R-rabeprazole are important proton pump inhibitors (PPIs) used for treating peptic disorders. They can be biosynthesized from the corresponding sulfide catalyzed by Baeyer-Villiger monooxygenases (BVMOs). During the development of BVMOs for target sulfoxide preparation, stereoselectivity and overoxidation degree are important factors considered most. In the present study, LnPAMO-Mu15 designed previously and TtPAMO from Thermothelomyces thermophilus showed high (S)- and (R)-configuration stereoselectivity respectively towards thioethers. TtPAMO was found to be capable of oxidating omeprazole sulfide (OPS) and rabeprazole sulfide (RPS) into R-omeprazole and R-rabeprazole respectively. However, the overoxidation issue existed and limited the application of TtPAMO in the biosynthesis of sulfoxides. The structural mechanisms for adverse stereoselectivity between LnPAMO-Mu15 and TtPAMO towards OPS and the overoxidation of OPS by TtPAMO were revealed, based on which, TtPAMO was rationally designed focused on the flexibility of loops near catalytic sites. The variant TtPAMO-S482Y was screened out with lowest overoxidation degree towards OPS and RPS due to the decreased flexibility of catalytic center than TtPAMO. The success in this study not only proved the rationality of the overoxidation mechanism proposed in this study but also provided hints for the development of BVMOs towards thioether substrate for corresponding sulfoxide preparation.

摘要

奥美拉唑和雷贝拉唑是治疗消化性溃疡的重要质子泵抑制剂(PPIs)。它们可以通过拜耳-维利格单加氧酶(BVMOs)催化相应的硫醚生物合成。在开发用于目标亚砜制备的 BVMO 时,立体选择性和过度氧化程度是最重要的考虑因素。在本研究中,之前设计的 LnPAMO-Mu15 和来自嗜热真菌Thermothelomyces thermophilus 的 TtPAMO 分别对硫醚表现出高(S)和(R)构型的立体选择性。发现 TtPAMO 能够将奥美拉唑硫醚(OPS)和雷贝拉唑硫醚(RPS)分别氧化为 R-奥美拉唑和 R-雷贝拉唑。然而,存在过度氧化问题,限制了 TtPAMO 在亚砜生物合成中的应用。基于 LnPAMO-Mu15 和 TtPAMO 对 OPS 的不利立体选择性和 TtPAMO 对 OPS 的过度氧化的结构机制,针对催化位点附近环的灵活性对 TtPAMO 进行了合理设计。由于催化中心的灵活性降低,筛选出对 OPS 和 RPS 具有最低过度氧化程度的变体 TtPAMO-S482Y。本研究的成功不仅证明了本研究中提出的过度氧化机制的合理性,而且为开发用于相应亚砜制备的硫醚底物的 BVMO 提供了启示。

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