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将生物催化氘代引入不对称同位素标记技术工具箱。

Bringing biocatalytic deuteration into the toolbox of asymmetric isotopic labelling techniques.

机构信息

Department of Chemistry, University of Oxford, Inorganic Chemistry Laboratory, South Parks Road, Oxford, OX1 3QR, UK.

Department of Chemistry, Technische Universität Berlin, Strasse des 17. Juni 135, 10623, Berlin, Germany.

出版信息

Nat Commun. 2020 Mar 19;11(1):1454. doi: 10.1038/s41467-020-15310-z.

Abstract

Enzymes dependent on nicotinamide cofactors are important components of the expanding range of asymmetric synthetic techniques. New challenges in asymmetric catalysis are arising in the field of deuterium labelling, where compounds bearing deuterium (H) atoms at chiral centres are becoming increasingly desirable targets for pharmaceutical and analytical chemists. However, utilisation of NADH-dependent enzymes for H-labelling is not straightforward, owing to difficulties in supplying a suitably isotopically-labelled cofactor ([4-H]-NADH). Here we report on a strategy that combines a clean reductant (H) with a cheap source of H-atoms (HO) to generate and recycle [4-H]-NADH. By coupling [4-H]-NADH-recycling to an array of C=O, C=N, and C=C bond reductases, we demonstrate asymmetric deuteration across a range of organic molecules under ambient conditions with near-perfect chemo-, stereo- and isotopic selectivity. We demonstrate the synthetic utility of the system by applying it in the isolation of the heavy drug (1S,3'R)-[2',2',3'-H]-solifenacin fumarate on a preparative scale.

摘要

依赖烟酰胺辅因子的酶是不断扩展的不对称合成技术的重要组成部分。在氘标记领域中,不对称催化出现了新的挑战,在该领域中,手性中心带有氘(H)原子的化合物正成为药物和分析化学家越来越理想的目标。然而,由于难以提供合适的同位素标记辅因子 ([4-H]-NADH),因此 NADH 依赖性酶在 H 标记中的应用并不简单。在这里,我们报告了一种策略,该策略将清洁还原剂 (H) 与廉价的 H 原子源 (HO) 结合使用,以生成和循环利用 [4-H]-NADH。通过将 [4-H]-NADH 回收与一系列 C=O、C=N 和 C=C 键还原酶偶联,我们在环境条件下证明了一系列有机分子的不对称氘化反应具有近乎完美的化学选择性、立体选择性和同位素选择性。我们通过将其应用于大规模制备分离重药物(1S,3'R)-[2',2',3'-H]-琥珀酸索利那新来证明该系统的合成实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbeb/7081218/55034b2de190/41467_2020_15310_Fig1_HTML.jpg

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