Ospina Felipe, Schülke Kai H, Schnutenhaus Marius, Klein Alina, Desai Om, Jain Shubhanshu, Krofta Christine, Stratmann Lukas, Yang Jianing, Gröger Harald, Hammer Stephan C
Research Group for Organic Chemistry and Biocatalysis, Faculty of Chemistry, Bielefeld University, Universitätsstraße 25, 33615, Bielefeld, Germany.
Chair of Industrial Organic Chemistry and Biotechnology, Faculty of Chemistry, Bielefeld University, Universitätsstraße 25, 33615, Bielefeld, Germany.
Angew Chem Int Ed Engl. 2025 Sep 1;64(36):e202510300. doi: 10.1002/anie.202510300. Epub 2025 Jul 17.
The alkylation with electrophilic haloalkanes is a key methodology in chemical synthesis to build desired molecules. Although alkylation of compounds bearing a single nucleophilic site is routine, the selective alkylation of polyfunctional molecules with multiple competing nucleophilic positions of comparable reactivity is often very challenging. In this work, we report a generalizable solution for selective alkylation chemistry that combines the selectivity of enzyme catalysis with the reactivity of off-the-shelf alkylation reagents. We employ engineered transferases in a modular cyclic cascade and use functionalized N-heteroarenes as challenging proof-of-concept substrates. This catalytic alkylation approach is mild, highly chemo- and regioselective, proceeds on gram-scale, provides rapid access to important N-alkylated heterocyclic building blocks and enables challenging late-stage alkylations. This study demonstrates a generalizable strategy to streamline synthetic routes to many pharmaceutically important compounds by selective biocatalytic alkylation of polyfunctional molecules and ambident nucleophiles.
用亲电卤代烷进行烷基化是化学合成中构建所需分子的关键方法。虽然对具有单个亲核位点的化合物进行烷基化是常规操作,但对具有多个反应活性相当的竞争性亲核位置的多官能分子进行选择性烷基化通常极具挑战性。在这项工作中,我们报告了一种可推广的选择性烷基化化学解决方案,该方案将酶催化的选择性与现成烷基化试剂的反应活性相结合。我们在模块化循环级联反应中使用工程化转移酶,并使用功能化的氮杂芳烃作为具有挑战性的概念验证底物。这种催化烷基化方法温和、具有高度的化学选择性和区域选择性,可进行克级规模的反应,能快速获得重要的N - 烷基化杂环结构单元,并能实现具有挑战性的后期烷基化反应。这项研究展示了一种可推广的策略,通过对多官能分子和两可亲核试剂进行选择性生物催化烷基化,简化许多药学上重要化合物的合成路线。