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不对称光酶促将氟代基序掺入烯烃中。

Asymmetric photoenzymatic incorporation of fluorinated motifs into olefins.

机构信息

DOE Center for Advanced Bioenergy and Bioproducts Innovation, University of Illinois Urbana-Champaign, Urbana, IL 61801, USA.

Department of Chemical and Biomolecular Engineering, University of Illinois Urbana-Champaign, Urbana, IL 61801, USA.

出版信息

Science. 2024 Jul 26;385(6707):416-421. doi: 10.1126/science.adk8464. Epub 2024 Jul 25.

Abstract

Enzymes capable of assimilating fluorinated feedstocks are scarce. This situation poses a challenge for the biosynthesis of fluorinated compounds used in pharmaceuticals, agrochemicals, and materials. We developed a photoenzymatic hydrofluoroalkylation that integrates fluorinated motifs into olefins. The photoinduced promiscuity of flavin-dependent ene-reductases enables the generation of carbon-centered radicals from iodinated fluoroalkanes, which are directed by the photoenzyme to engage enantioselectively with olefins. This approach facilitates stereocontrol through interaction between a singular fluorinated unit and the enzyme, securing high enantioselectivity at β, γ, or δ positions of fluorinated groups through enzymatic hydrogen atom transfer-a process that is notably challenging with conventional chemocatalysis. This work advances enzymatic strategies for integrating fluorinated chemical feedstocks and opens avenues for asymmetric synthesis of fluorinated compounds.

摘要

能够同化含氟原料的酶很稀缺。这种情况给用于制药、农化和材料的含氟化合物的生物合成带来了挑战。我们开发了一种光酶促氢氟烷基化反应,将含氟基序整合到烯烃中。黄素依赖的烯-还原酶的光诱导混杂性能够从碘化氟代烷烃中生成碳中心自由基,这些自由基由光酶定向与烯烃进行对映选择性反应。这种方法通过单个氟代单元与酶之间的相互作用促进了立体控制,通过酶促氢原子转移确保了氟代基团的β、γ 或δ位的高对映选择性——这是传统化学催化显著具有挑战性的过程。这项工作推进了整合含氟化学原料的酶策略,并为不对称合成含氟化合物开辟了途径。

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