Maintaining maximal metabolic flux by gene expression control.
One of the marvels of biology is the phenotypic plasticity of microorganisms. It allows them to maintain high growth rates across conditions. Studies suggest that cells can express metabolic enzymes at tuned concentrations through adjustment of gene expression. The associated transcription factors a...
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2018-09-01
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doaj-66255b5bc4de4b739fcdf705c66c80442020-11-24T21:49:06ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582018-09-01149e100641210.1371/journal.pcbi.1006412Maintaining maximal metabolic flux by gene expression control.Robert PlanquéJosephus HulshofBas TeusinkJohannes C HendriksFrank J BruggemanOne of the marvels of biology is the phenotypic plasticity of microorganisms. It allows them to maintain high growth rates across conditions. Studies suggest that cells can express metabolic enzymes at tuned concentrations through adjustment of gene expression. The associated transcription factors are often regulated by intracellular metabolites. Here we study metabolite-mediated regulation of metabolic-gene expression that maximises metabolic fluxes across conditions. We developed an adaptive control theory, qORAC (for 'Specific Flux (q) Optimization by Robust Adaptive Control'), and illustrate it with several examples of metabolic pathways. The key feature of the theory is that it does not require knowledge of the regulatory network, only of the metabolic part. We derive that maximal metabolic flux can be maintained in the face of varying N environmental parameters only if the number of transcription-factor binding metabolites is at least equal to N. The controlling circuits appear to require simple biochemical kinetics. We conclude that microorganisms likely can achieve maximal rates in metabolic pathways, in the face of environmental changes.http://europepmc.org/articles/PMC6168163?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Robert Planqué Josephus Hulshof Bas Teusink Johannes C Hendriks Frank J Bruggeman |
spellingShingle |
Robert Planqué Josephus Hulshof Bas Teusink Johannes C Hendriks Frank J Bruggeman Maintaining maximal metabolic flux by gene expression control. PLoS Computational Biology |
author_facet |
Robert Planqué Josephus Hulshof Bas Teusink Johannes C Hendriks Frank J Bruggeman |
author_sort |
Robert Planqué |
title |
Maintaining maximal metabolic flux by gene expression control. |
title_short |
Maintaining maximal metabolic flux by gene expression control. |
title_full |
Maintaining maximal metabolic flux by gene expression control. |
title_fullStr |
Maintaining maximal metabolic flux by gene expression control. |
title_full_unstemmed |
Maintaining maximal metabolic flux by gene expression control. |
title_sort |
maintaining maximal metabolic flux by gene expression control. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Computational Biology |
issn |
1553-734X 1553-7358 |
publishDate |
2018-09-01 |
description |
One of the marvels of biology is the phenotypic plasticity of microorganisms. It allows them to maintain high growth rates across conditions. Studies suggest that cells can express metabolic enzymes at tuned concentrations through adjustment of gene expression. The associated transcription factors are often regulated by intracellular metabolites. Here we study metabolite-mediated regulation of metabolic-gene expression that maximises metabolic fluxes across conditions. We developed an adaptive control theory, qORAC (for 'Specific Flux (q) Optimization by Robust Adaptive Control'), and illustrate it with several examples of metabolic pathways. The key feature of the theory is that it does not require knowledge of the regulatory network, only of the metabolic part. We derive that maximal metabolic flux can be maintained in the face of varying N environmental parameters only if the number of transcription-factor binding metabolites is at least equal to N. The controlling circuits appear to require simple biochemical kinetics. We conclude that microorganisms likely can achieve maximal rates in metabolic pathways, in the face of environmental changes. |
url |
http://europepmc.org/articles/PMC6168163?pdf=render |
work_keys_str_mv |
AT robertplanque maintainingmaximalmetabolicfluxbygeneexpressioncontrol AT josephushulshof maintainingmaximalmetabolicfluxbygeneexpressioncontrol AT basteusink maintainingmaximalmetabolicfluxbygeneexpressioncontrol AT johanneschendriks maintainingmaximalmetabolicfluxbygeneexpressioncontrol AT frankjbruggeman maintainingmaximalmetabolicfluxbygeneexpressioncontrol |
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1725889509030100992 |