Junior Research Group Biosynthetic Design of Natural Products, Leibniz Institute for Natural Product Research and Infection Biology (HKI), Beutenbergstr. 11a, 07745, Jena, Germany.
Department of Chemistry, University of Bayreuth, Universitätsstr. 30, 95440, Bayreuth, Germany.
Angew Chem Int Ed Engl. 2024 Jan 22;63(4):e202309284. doi: 10.1002/anie.202309284. Epub 2023 Oct 25.
Enzymes are increasingly recognized as valuable (bio)catalysts that complement existing synthetic methods. However, the range of biotransformations used in the laboratory is limited. Here we give an overview on the biosynthesis-inspired discovery of novel biocatalysts that address various synthetic challenges. Prominent examples from this dynamic field highlight remarkable enzymes for protecting-group-free amide formation and modification, control of pericyclic reactions, stereoselective hetero- and polycyclizations, atroposelective aryl couplings, site-selective C-H activations, introduction of ring strain, and N-N bond formation. We also explore unusual functions of cytochrome P450 monooxygenases, radical SAM-dependent enzymes, flavoproteins, and enzymes recruited from primary metabolism, which offer opportunities for synthetic biology, enzyme engineering, directed evolution, and catalyst design.
酶越来越被认为是有价值的(生物)催化剂,可以补充现有的合成方法。然而,实验室中使用的生物转化范围有限。在这里,我们概述了受生物合成启发的新型生物催化剂的发现,这些生物催化剂解决了各种合成挑战。这一充满活力的领域中的突出例子强调了用于无保护基酰胺形成和修饰、周环反应控制、立体选择性杂环和多环化、手性芳基偶联、位点选择性 C-H 活化、引入环应变和 N-N 键形成的显著酶。我们还探讨了细胞色素 P450 单加氧酶、依赖于 RADICAL SAM 的酶、黄素蛋白和从初级代谢中招募的酶的不寻常功能,它们为合成生物学、酶工程、定向进化和催化剂设计提供了机会。