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The common message of constraint-based optimization approaches: overflow metabolism is caused by two growth-limiting constraints.
de Groot, Daan H; Lischke, Julia; Muolo, Riccardo; Planqué, Robert; Bruggeman, Frank J; Teusink, Bas.
Affiliation
  • de Groot DH; Systems Bioinformatics, AIMMS, Vrije Universiteit Amsterdam, 1081HZ, Amsterdam, The Netherlands. d.h.de.groot@vu.nl.
  • Lischke J; Systems Bioinformatics, AIMMS, Vrije Universiteit Amsterdam, 1081HZ, Amsterdam, The Netherlands.
  • Muolo R; Systems Bioinformatics, AIMMS, Vrije Universiteit Amsterdam, 1081HZ, Amsterdam, The Netherlands.
  • Planqué R; Department of Mathematics, Vrije Universiteit Amsterdam, 1081HV, Amsterdam, The Netherlands.
  • Bruggeman FJ; Systems Bioinformatics, AIMMS, Vrije Universiteit Amsterdam, 1081HZ, Amsterdam, The Netherlands.
  • Teusink B; Systems Bioinformatics, AIMMS, Vrije Universiteit Amsterdam, 1081HZ, Amsterdam, The Netherlands.
Cell Mol Life Sci ; 77(3): 441-453, 2020 Feb.
Article in En | MEDLINE | ID: mdl-31758233
ABSTRACT
Living cells can express different metabolic pathways that support growth. The criteria that determine which pathways are selected in which environment remain unclear. One recurrent selection is overflow metabolism the simultaneous usage of an ATP-efficient and -inefficient pathway, shown for example in Escherichia coli, Saccharomyces cerevisiae and cancer cells. Many models, based on different assumptions, can reproduce this observation. Therefore, they provide no conclusive evidence which mechanism is causing overflow metabolism. We compare the mathematical structure of these models. Although ranging from flux balance analyses to self-fabricating metabolism and expression models, we can rewrite all models into one standard form. We conclude that all models predict overflow metabolism when two, model-specific, growth-limiting constraints are hit. This is consistent with recent theory. Thus, identifying these two constraints is essential for understanding overflow metabolism. We list all imposed constraints by these models, so that they can hopefully be tested in future experiments.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Saccharomyces cerevisiae / Escherichia coli / Metabolic Networks and Pathways Type of study: Prognostic_studies Language: En Journal: Cell Mol Life Sci Journal subject: BIOLOGIA MOLECULAR Year: 2020 Type: Article Affiliation country: Netherlands

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Saccharomyces cerevisiae / Escherichia coli / Metabolic Networks and Pathways Type of study: Prognostic_studies Language: En Journal: Cell Mol Life Sci Journal subject: BIOLOGIA MOLECULAR Year: 2020 Type: Article Affiliation country: Netherlands