bioRxiv · 10.1101/2022.10.22.513080
Functional Decomposition of Metabolism allows a system-level quantification of fluxes and protein allocation towards specific metabolic functions
Abstract
Quantifying the contribution of individual molecular components to complex cellular processes is a grand challenge in systems biology. Here we establish a general theoretical framework (Functional Decomposition of Metabolism, FDM) to quantify the contribution of every metabolic reaction to metabolic functions, e.g. the biosynthesis of metabolic building blocks such as amino acids. This allows us to obtain a plethora of results for E. coli growing in different conditions. A detailed quantification of energetic costs for biosynthesis and biomass growth on glucose shows that ATP generated during de novo biosynthesis of building blocks almost balances the ATP costs of peptide chain polymerization, the single largest energy expenditure for growing cells. This leaves the bulk of energy generated by fermentation and respiration (consuming 1/3 of the glucose intake) during aerobic growth unaccounted for. FDM also enabled the quantification of protein allocated towards each metabolic function, unveiling linear enzyme-flux relations for biosynthesis. These results led us to derive a function-based coarse-grained model to capture global protein allocation and overflow metabolism, without relying on curated pathway annotation or clustering of gene expression data.
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Mori, M., Cheng, C., Taylor, B. R., Okano, H., Hwa, T.. 2022-10-24. Functional Decomposition of Metabolism allows a system-level quantification of fluxes and protein allocation towards specific metabolic functions. https://doi.org/10.1101/2022.10.22.513080
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