September 2026

Journal

Lignin to adipic acid in a high-yield chemical and biological redox process

By:
Mains, Kathryn; Palumbo, Chad; Rigo, Davide; Webber, Matthew; Rosetto, Gloria; Bao, Si Tong; Carroll, Austin L; Meyer, Nicolette; Benson, Alexander; Boyle, Brett; Haugen, Stefan; Ingraham, Morgan; Alexander, William G; Silberman, Miriam C; Myers, Logan; Ramirez, Kelsey; Sullivan, Kevin; Guss, Adam M; Salvachua, Davinia; Roman-Leshkov, Yuriy; Stahl, Shannon; Werner, Allison; Beckham, Gregg
Journal Name:
Nature
Page Number:
668-675
Volume:
654
Issue Number:
8119
Publication Date:
September 15, 2026
View DOI Listing:
https://doi.org/10.1038/s41586-026-10580-x

Abstract

Viable manufacturing pathways to produce bio-based chemicals from renewable feedstocks, such as lignin derived from plant biomass, are needed to decarbonize the chemicals manufacturing sector. Converting the recalcitrant lignin polymer to valuable bioproducts remains a longstanding challenge in biorefining, with the highest reported single-product yield from lignin currently around 20 wt% (refs. 1,2,3,4). Most existing lignin depolymerization strategies target aryl–ether bond cleavage, which can produce aromatic monomers in yields of only about 30 wt%, and still as complex mixtures with C–C-linked dimers and oligomers5,6. The recalcitrance of these C–C linkages between aromatic moieties fundamentally limits single-product yields from lignin, prompting the development of strategies to efficiently cleave these C–C bonds3,7,8,9. Here we show how reductive processing of lignin from poplar accesses a hydrocarbon mixture of alkyl-aromatic monomers and oligomers that is privileged for oxidative conversion to monomeric aromatic carboxylic acids, comprising mostly benzoic acid and phthalic acid isomers in up to 73 wt% monomer yields, using a Co/Mn/Br catalyst. The soil bacterium Pseudomonas putida KT2440 was engineered to convert this mixture of aromatic carboxylic acids to muconolactone, a precursor to bio-based nylons, enabling final adipic acid yields up to 26 wt% (gram adipic acid per gram lignin) with a maximum theoretical yield of 57 wt%. This pairing of reductive and oxidative steps with lignin resembles processes in petrochemical refining and shows how lignin may be converted into a single, valuable bioproduct in high yields.