Synergistic photobiocatalysis for enantioselective triple-radical sorting.

Xing, Zhongqiu; Liu, Fulu; Feng, Jianqiang; Yu, Lu; Wu, Zhouping; Zhao, Beibei; Chen, Bin; Ping, Heng et al. · Nature · 2025

basic_science · Level V

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Abstract

Multicomponent reactions-those where three or more substrates combine into a product-have been highly useful in rapidly building chemical building blocks of increased complexity<sup>1</sup>, but achieving this enzymatically has remained rare<sup>2-5</sup>. This limitation primarily arises because an enzyme's active site is not typically set up to address multiple substrates, especially in cases involving multiple radical intermediates<sup>6</sup>. Recently, chemical catalytic radical sorting has emerged as an enabling strategy for a variety of useful reactions<sup>7,8</sup>. However, making such processes enantioselective is highly challenging owing to the inherent difficulty in the stereochemical control of radicals<sup>9</sup>. Here we repurpose a thiamine-dependent enzyme<sup>10,11</sup> through directed evolution and combine it with photoredox catalysis to achieve a photobiocatalytic enantioselective three-component radical cross-coupling. This approach combines three readily available starting materials-aldehydes, α-bromo-carbonyls and alkenes-to give access to enantioenriched ketone products. Mechanistic investigations provide insights into how this dual photocatalyst-enzyme system precisely directs the three distinct radicals involved in the transformation, unlocking enzyme reactivity. Our approach has achieved exceptional stereoselectivity, with 24 out of 33 examples achieving ≥97% enantiomeric excess.

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