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Basic Regulatory Principles of Escherichia coli's Electron Transport Chain for Varying Oxygen Conditions

For adaptation between anaerobic, micro-aerobic and aerobic conditions Escherichia coli's metabolism and in particular its electron transport chain (ETC) is highly regulated. Although it is known that the global transcriptional regulators FNR and ArcA are involved in oxygen response it is uncle...

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Autores principales: Henkel, Sebastian G., Beek, Alexander Ter, Steinsiek, Sonja, Stagge, Stefan, Bettenbrock, Katja, de Mattos, M. Joost Teixeira, Sauter, Thomas, Sawodny, Oliver, Ederer, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4182436/
https://www.ncbi.nlm.nih.gov/pubmed/25268772
http://dx.doi.org/10.1371/journal.pone.0107640
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author Henkel, Sebastian G.
Beek, Alexander Ter
Steinsiek, Sonja
Stagge, Stefan
Bettenbrock, Katja
de Mattos, M. Joost Teixeira
Sauter, Thomas
Sawodny, Oliver
Ederer, Michael
author_facet Henkel, Sebastian G.
Beek, Alexander Ter
Steinsiek, Sonja
Stagge, Stefan
Bettenbrock, Katja
de Mattos, M. Joost Teixeira
Sauter, Thomas
Sawodny, Oliver
Ederer, Michael
author_sort Henkel, Sebastian G.
collection PubMed
description For adaptation between anaerobic, micro-aerobic and aerobic conditions Escherichia coli's metabolism and in particular its electron transport chain (ETC) is highly regulated. Although it is known that the global transcriptional regulators FNR and ArcA are involved in oxygen response it is unclear how they interplay in the regulation of ETC enzymes under micro-aerobic chemostat conditions. Also, there are diverse results which and how quinones (oxidised/reduced, ubiquinone/other quinones) are controlling the ArcBA two-component system. In the following a mathematical model of the E. coli ETC linked to basic modules for substrate uptake, fermentation product excretion and biomass formation is introduced. The kinetic modelling focusses on regulatory principles of the ETC for varying oxygen conditions in glucose-limited continuous cultures. The model is based on the balance of electron donation (glucose) and acceptance (oxygen or other acceptors). Also, it is able to account for different chemostat conditions due to changed substrate concentrations and dilution rates. The parameter identification process is divided into an estimation and a validation step based on previously published and new experimental data. The model shows that experimentally observed, qualitatively different behaviour of the ubiquinone redox state and the ArcA activity profile in the micro-aerobic range for different experimental conditions can emerge from a single network structure. The network structure features a strong feed-forward effect from the FNR regulatory system to the ArcBA regulatory system via a common control of the dehydrogenases of the ETC. The model supports the hypothesis that ubiquinone but not ubiquinol plays a key role in determining the activity of ArcBA in a glucose-limited chemostat at micro-aerobic conditions.
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spelling pubmed-41824362014-10-07 Basic Regulatory Principles of Escherichia coli's Electron Transport Chain for Varying Oxygen Conditions Henkel, Sebastian G. Beek, Alexander Ter Steinsiek, Sonja Stagge, Stefan Bettenbrock, Katja de Mattos, M. Joost Teixeira Sauter, Thomas Sawodny, Oliver Ederer, Michael PLoS One Research Article For adaptation between anaerobic, micro-aerobic and aerobic conditions Escherichia coli's metabolism and in particular its electron transport chain (ETC) is highly regulated. Although it is known that the global transcriptional regulators FNR and ArcA are involved in oxygen response it is unclear how they interplay in the regulation of ETC enzymes under micro-aerobic chemostat conditions. Also, there are diverse results which and how quinones (oxidised/reduced, ubiquinone/other quinones) are controlling the ArcBA two-component system. In the following a mathematical model of the E. coli ETC linked to basic modules for substrate uptake, fermentation product excretion and biomass formation is introduced. The kinetic modelling focusses on regulatory principles of the ETC for varying oxygen conditions in glucose-limited continuous cultures. The model is based on the balance of electron donation (glucose) and acceptance (oxygen or other acceptors). Also, it is able to account for different chemostat conditions due to changed substrate concentrations and dilution rates. The parameter identification process is divided into an estimation and a validation step based on previously published and new experimental data. The model shows that experimentally observed, qualitatively different behaviour of the ubiquinone redox state and the ArcA activity profile in the micro-aerobic range for different experimental conditions can emerge from a single network structure. The network structure features a strong feed-forward effect from the FNR regulatory system to the ArcBA regulatory system via a common control of the dehydrogenases of the ETC. The model supports the hypothesis that ubiquinone but not ubiquinol plays a key role in determining the activity of ArcBA in a glucose-limited chemostat at micro-aerobic conditions. Public Library of Science 2014-09-30 /pmc/articles/PMC4182436/ /pubmed/25268772 http://dx.doi.org/10.1371/journal.pone.0107640 Text en © 2014 Henkel et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Henkel, Sebastian G.
Beek, Alexander Ter
Steinsiek, Sonja
Stagge, Stefan
Bettenbrock, Katja
de Mattos, M. Joost Teixeira
Sauter, Thomas
Sawodny, Oliver
Ederer, Michael
Basic Regulatory Principles of Escherichia coli's Electron Transport Chain for Varying Oxygen Conditions
title Basic Regulatory Principles of Escherichia coli's Electron Transport Chain for Varying Oxygen Conditions
title_full Basic Regulatory Principles of Escherichia coli's Electron Transport Chain for Varying Oxygen Conditions
title_fullStr Basic Regulatory Principles of Escherichia coli's Electron Transport Chain for Varying Oxygen Conditions
title_full_unstemmed Basic Regulatory Principles of Escherichia coli's Electron Transport Chain for Varying Oxygen Conditions
title_short Basic Regulatory Principles of Escherichia coli's Electron Transport Chain for Varying Oxygen Conditions
title_sort basic regulatory principles of escherichia coli's electron transport chain for varying oxygen conditions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4182436/
https://www.ncbi.nlm.nih.gov/pubmed/25268772
http://dx.doi.org/10.1371/journal.pone.0107640
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