Enzyme Catalysis and ImmobilizationRadical Photochemical ReactionsMicrobial Metabolic Engineering and Bioproduction

Yujie Yuan, Maolin Li, Wesley Harrison, Zhengyi Zhang, Huimin Zhao

2026.1.1Nature Catalysis

DOI: 10.1038/s41929-025-01470-y

tlooto Summary

A cellular ene-reductase photoenzyme is integrated with a de novo-designed olefin biosynthetic pathway for photoinduced hydroalkylation, hydroamination and hydrosulfonylation reactions within cells, revealing its full potential for integrating light-driven reactions into cellular metabolism.

Abstract

Photobiocatalysis provides a powerful strategy for integrating light and biological catalysts to drive abiological transformations. However, its scalability is hindered by high enzyme loading, reliance on costly cofactors and instability under radical-generating conditions. Here we report the integration of light-driven enzymatic reactions into the cellular metabolism of Escherichia coli, bridging flavin-based photobiocatalysis with biosynthesis. Using synthetic biology strategies, we engineered microbial cells to continuously produce olefin substrates and ene-reductase while regenerating cofactors directly from glucose. By externally supplying radical precursors or introducing synthetic pathways for their in situ production, we enabled fermentation-based microbial photobiosynthesis, achieving high titres and demonstrating feasibility for scale-up in a bioreactor. This approach extends photobiocatalysis from in vitro applications to in vivo semi- and complete biosynthesis, revealing its full potential for integrating light-driven reactions into cellular metabolism. Light-driven enzymatic catalysis has enabled important abiological transformations in vitro. Now a cellular ene-reductase photoenzyme is integrated with a de novo-designed olefin biosynthetic pathway for photoinduced hydroalkylation, hydroamination and hydrosulfonylation reactions within cells.

Citation format

YUAN, Yujie, et al. Harnessing photoenzymatic reactions for unnatural biosynthesis in microorganisms. Nature Catalysis, 2026, 9(1): 62–72.