Chemodivergent C(sp3)–H and C(sp2)–H cyanomethylation using engineered carbene transferases

被引:0
作者
Juner Zhang
Ailiena O. Maggiolo
Edwin Alfonzo
Runze Mao
Nicholas J. Porter
Nayla M. Abney
Frances H. Arnold
机构
[1] California Institute of Technology,Division of Chemistry and Chemical Engineering
[2] California Institute of Technology,Division of Biology and Biological Engineering
[3] Princeton University,Department of Chemistry
[4] Stanford University,Department of Bioengineering
来源
Nature Catalysis | 2023年 / 6卷
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摘要
The ubiquity of C–H bonds presents an opportunity to efficiently elaborate and build complexity in organic molecules. Methods for selective functionalization, however, must differentiate among multiple, chemically similar C–H bonds: enzymes are attractive because they can be finely tuned using directed evolution to achieve divergent reaction outcomes. Here we present engineered enzymes that effect a new-to-nature C–H alkylation (C–H carbene insertion) with distinct selectivities: cytochrome P450-based carbene transferases deliver an α-cyanocarbene either into the α-amino C(sp3)–H bonds or the ortho-arene C(sp2)–H bonds of N-substituted arenes. These two transformations proceed via different mechanisms, yet only minimal changes to the protein scaffold were needed to adjust the enzyme’s chemoselectivity. Structural studies of the C(sp3)–H alkylase reveal an active-site helical disruption, which alters the structure and electrostatics of the substrate-binding pocket compared to the native enzyme. Overall, this work demonstrates advantages of using highly tuneable enzymes as C–H functionalization catalysts for divergent molecular derivatization.
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页码:152 / 160
页数:8
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