The pulp and paper industry produces large volumes of condensed kraft lignin, which is challenging to convert to single chemical products. For this purpose, tandem chemical depolymerization and bioconversion to a single atom-efficient product is a potentially promising strategy. In this study, we conducted copper-catalyzed oxidative depolymerization using pine-derived kraft lignin to generate multiple bioavailable aromatic monomers at a yield of 4.5 weight% (wt%; g monomers per g lignin) from both C– O and C–C bond cleavage, followed by counter-current extraction with a 52 wt% monomer recovery. This resulted in an oxidized lignin product containing vanillin, vanillate, 4-hydroxybenzaldehyde, 4-hydroxybenzoate, 5-formylvanillin, 5-carboxyvanillin, 5-carboxyvanillate, acetovanillone, and vanillyl glyoxylate. Based on this stream composition, we engineered the industrially relevant soil bacterium Pseudomonas putida KT2440 to catabolize the latter five compounds via overexpression of ten heterologous genes (acvABCDEFSYK-6, vceABSYK-6, ligW2SYK-6, and mdlCPP). We combined these engineered pathways with previously reported strategies for muconate production from G- and H-type monomers to generate P. putida KMM428, which utilized 93.6 ± 0.2 mol% of the quantified aromatic monomers in a depolymerized kraft lignin mixture, and produced muconate at a yield of 99 ± 3 mol%, on a quantified monomer basis. Together, this work increases the theoretical carbon conversion efficiency of this process by 37.6 ± 0.1 mol% through incorporation of three β-5 cleavage products, in addition to traditional G-type monomers.
Kathryn M. Mains, Dillon T. Hofsommer, Michael A. Gapuz et al.· bioRxiv· 1 citation
This study presents a systematic comparison of sugar catabolic pathways that enabled development of strains suited for the tradeoffs between rate and yield and indicates that these performance metrics can reduce the minimum selling price of muconate-derived adipic acid and greenhouse gas emissions.
Dowan Kim, Torrey M Lind, Chen Ling et al.· bioRxiv· 1 citation
Pro proteomics, metabolomics, and 13C-fluxomics are applied to quantitatively compare central carbon and energy metabolism in wild-type P. putida and a muconate-producing strain for improved bioproduction from renewable feedstocks.
R. Wilkes, P. Suthers, A. Borchert et al.· bioRxiv· 3 citations
Results indicate that catechol, not PCA, is the principal bottleneck in muconate production via the PCA decarboxylation route originally demonstrated by Draths et al., refining the understanding of pathway limitations and offering new strategies for improving rate, yield, and strain resilience in muconate bioproduction.
Alissa C. Bleem, Tracy L. Hodges, Torrey M Lind et al.· bioRxiv· 2 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.