Cooperative Photometallobiocatalysis: Nonheme Fe Enzyme-Catalyzed Enantioconvergent Radical Decarboxylative Azidation, Thiocyanation, and Isocyanation of Redox-Active Esters

Liu-Peng Zhao, Ken Lin, Pei-Pei Xie, Huichong Liu, Hengye Xiang, Xin Liu, Yunlong Zhao, Peng Liu, Yang Yang
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Abstract

Cooperative catalysis with an enzyme and a small-molecule photocatalyst has recently emerged as a potentially general activation mode to advance novel biocatalytic reactions with synthetic utility. Herein, we report cooperative photobiocatalysis involving an engineered nonheme Fe enzyme and a tailored photoredox catalyst to achieve enantioconvergent decarboxylative azidation, thiocyanation, and isocyanation of redox-active esters via a radical mechanism. We repurposed and further evolved metapyrocatechase (MPC), a nonheme Fe extradiol dioxygenase not previously studied in new-to-nature biocatalysis, for the enantioselective C─N3, C─SCN, and C─NCO bond formation via an enzymatic Fe─X intermediate (X═N3, NCS, and NCO). A range of primary, secondary, and tertiary alkyl radical precursors were effectively converted by our engineered MPC, allowing the syntheses of organic azides, thiocyanates, and isocyanates with good to excellent enantiocontrol. Further derivatization of these products furnished valuable compounds including enantioenriched amines, triazoles, ureas, and SCF3-containing products. DFT and MD simulations shed light on the mechanism as well as the binding poses of the alkyl radical intermediate in the enzyme active site and the π-facial selectivity in the enantiodetermining radical rebound. Overall, cooperative photometallobiocatalysis with nonheme Fe enzymes provides a means to develop challenging asymmetric radical transformations eluding small-molecule catalysis.

Abstract Image

协同光金属生物催化:非血红素铁酶催化的对映收敛自由基脱羧叠氮化、硫氰化和氧化还原活性酯的异氰化
近年来,酶与小分子光催化剂的协同催化已成为一种潜在的通用激活模式,以促进具有合成用途的新型生物催化反应。在这里,我们报道了一种协同光生物催化,包括一种工程的非血红素铁酶和一种定制的光氧化还原催化剂,通过自由基机制实现氧化还原活性酯的对端收敛脱羧、硫氰化和异氰化。我们重新利用并进一步进化了偏胡萝卜儿茶酶(MPC),这是一种非血红素铁外二醇双加氧酶,以前没有在新的自然生物催化中研究过,用于通过酶促铁─X中间体(X = N3、NCS和NCO)形成对映选择性的C─N3、C─SCN和C─NCO键。一系列的伯、仲、叔烷基自由基前体通过我们的工程MPC有效地转化,允许合成有机叠氮化物、硫氰酸酯和异氰酸酯,具有良好的对映体控制。这些产品的进一步衍生化提供了有价值的化合物,包括对映体富集胺、三唑、脲和含scf3的产品。DFT和MD模拟揭示了烷基自由基中间体在酶活性位点的结合机理、结合姿态和对映体自由基反弹的π-面选择性。总的来说,与非血红素铁酶的协同光金属生物催化提供了一种开发具有挑战性的不对称自由基转化的方法,避免了小分子催化。
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来源期刊
Angewandte Chemie
Angewandte Chemie 化学科学, 有机化学, 有机合成
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