Native H2 pathways enable biocompatible hydrogenation of metabolic alkenes in bacteria
作者:Mirren F. M. White, Connor L. Trotter, John F. C. Steele, Elizabeth C. H. T. Lau, Jhuma Sadhukhan, Yuta Era, Samantha Law, James Gilman, Jonathan A. Dennis, N Johnson, Rory Gordon, Stephen Wallace · 发表于:Nature Chemistry · 年份:2026 · DOI:10.1038/s41557-025-02052-y · 被引用次数:4 · 研究领域:Enzyme Catalysis and Immobilization、Metalloenzymes and iron-sulfur proteins、Cyclopropane Reaction Mechanisms
Abstract Hydrogen gas is naturally produced by microorganisms from renewable feedstocks, yet industrial hydrogenation relies almost entirely on fossil fuel-derived H 2 . Despite advances in engineering biology and increasing demand for greener manufacturing, microbial H 2 has seen limited application in chemical synthesis. Here we demonstrate that genetically unmodified microorganisms can generate H 2 in situ to drive biocompatible alkene hydrogenation at the cell membrane using membrane-bound Pd catalysts. When combined with de novo alkene biosynthesis in engineered Escherichia coli , this system enables the simultaneous in vivo production of both substrate (alkene) and reagent (H 2 ), followed by membrane-associated biohydrogenation to yield new metabolic end products. Quantitative life cycle assessment reveals that hybrid chemo-microbial systems utilizing waste feedstocks can outperform electrolytic hydrogenation and achieve carbon-negative outcomes. Together, this work demonstrates how microbial metabolites can be generated, intercepted and metabolically multiplexed to support biocompatible transition metal catalysis and sustainable chemical synthesis in living cells.