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September 10, 2025Communications Biology17 citationsOpen Access

Quantitative decoding of coupled carbon and energy metabolism in Pseudomonas putida for lignin carbon utilization

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NZNanqing ZhouNorthwestern UniversityRWRebecca A. WilkesOak Ridge National LaboratoryXCXinyu ChenShihezi University

Key Points

  • A detailed multi-omics approach in pseudomonas putida shows significant metabolic remodeling when processing lignin-derived phenolic acids.
  • Proteomics reveals a greater than 140-fold increase in relevant transport and catabolic proteins, indicating enhanced lignin metabolism.
  • Quantitative analysis shows coupling of pyruvate carboxylase with cofactor production, leading to 50-60% NADPH yield and up to 6-fold greater ATP surplus.
  • Results could aid in engineering metabolic pathways to improve lignin valorization, addressing cofactor imbalances.

Abstract

Soil Pseudomonas species, which thrive on lignin derivatives, are widely explored for biotechnology applications in lignin valorization. However, how the native metabolism coordinates phenolic carbon processing with required cofactor generation remains poorly understood. Here, we achieve quantitative understanding of this metabolic balance through a detailed multi-omics investigation of Pseudomonas putida KT2440 grown on four common phenolic acid substrates: ferulate, p-coumarate, vanillate, and 4-hydroxybenzoate. Relative to succinate, proteomics reveals > 140-fold increase in transport and catabolic proteins for aromatics, but metabolomics identifies bottlenecks in initial catabolism to maintain favorable cellular energy charge, which is compromised in mutants with resolved bottlenecks. Up to 30-fold increase in pyruvate carboxylase and glyoxylate shunt proteins implies a metabolic remodeling confirmed by kinetic 13C-metabolomics. Quantitative analysis by 13C-fluxomics demonstrates coupling of this remodeling with cofactor production. Specifically, anaplerotic carbon recycling through pyruvate carboxylase promotes tricarboxylic acid cycle fluxes to generate 50-60% NADPH yield and 60-80% NADH yield, resulting in up to 6-fold greater ATP surplus than with succinate metabolism; the glyoxylate shunt sustains cataplerotic flux through malic enzyme for the remaining NADPH yield. This quantitative blueprint affords cofactor imbalance predictions in proposed engineering of key metabolic nodes in lignin valorization pathways.

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Cite This Study

Zhou et al. (2025) studied this question.

synapsesocial.com/papers/68c1d80554b1d3bfb60fa901https://doi.org/10.1038/s42003-025-08723-3
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