Stereoselective amino acid synthesis by photobiocatalytic oxidative coupling.

Wang, Tian-Ci; Mai, Binh Khanh; Zhang, Zheng; Bo, Zhiyu; Li, Jiedong; Liu, Peng; Yang, Yang · Nature · 2024

basic_science · Level V

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Abstract

Photobiocatalysis-where light is used to expand the reactivity of an enzyme-has recently emerged as a powerful strategy to develop chemistries that are new to nature. These systems have shown potential in asymmetric radical reactions that have long eluded small-molecule catalysts<sup>1</sup>. So far, unnatural photobiocatalytic reactions are limited to overall reductive and redox-neutral processes<sup>2-9</sup>. Here we report photobiocatalytic asymmetric sp<sup>3</sup>-sp<sup>3</sup> oxidative cross-coupling between organoboron reagents and amino acids. This reaction requires the cooperative use of engineered pyridoxal biocatalysts, photoredox catalysts and an oxidizing agent. We repurpose a family of pyridoxal-5'-phosphate-dependent enzymes, threonine aldolases<sup>10-12</sup>, for the α-C-H functionalization of glycine and α-branched amino acid substrates by a radical mechanism, giving rise to a range of α-tri- and tetrasubstituted non-canonical amino acids <sup>13-15</sup> possessing up to two contiguous stereocentres. Directed evolution of pyridoxal radical enzymes allowed primary and secondary radical precursors, including benzyl, allyl and alkylboron reagents, to be coupled in an enantio- and diastereocontrolled fashion. Cooperative photoredox-pyridoxal biocatalysis provides a platform for sp<sup>3</sup>-sp<sup>3</sup> oxidative coupling<sup>16</sup>, permitting the stereoselective, intermolecular free-radical transformations that are unknown to chemistry or biology.

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