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Transient Complexity of E. coli Lipidome Is Explained by Fatty Acyl Synthesis and Cyclopropanation

In the case of many bacteria, such as Escherichia coli, the composition of lipid molecules, termed the lipidome, temporally adapts to different environmental conditions and thus modifies membrane properties to permit growth and survival. Details of the relationship between the environment and lipido...

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Autores principales: Berezhnoy, Nikolay V., Cazenave-Gassiot, Amaury, Gao, Liang, Foo, Juat Chin, Ji, Shanshan, Regina, Viduthalai Rasheedkhan, Yap, Pui Khee Peggy, Wenk, Markus R., Kjelleberg, Staffan, Seviour, Thomas William, Hinks, Jamie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9500627/
https://www.ncbi.nlm.nih.gov/pubmed/36144187
http://dx.doi.org/10.3390/metabo12090784
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author Berezhnoy, Nikolay V.
Cazenave-Gassiot, Amaury
Gao, Liang
Foo, Juat Chin
Ji, Shanshan
Regina, Viduthalai Rasheedkhan
Yap, Pui Khee Peggy
Wenk, Markus R.
Kjelleberg, Staffan
Seviour, Thomas William
Hinks, Jamie
author_facet Berezhnoy, Nikolay V.
Cazenave-Gassiot, Amaury
Gao, Liang
Foo, Juat Chin
Ji, Shanshan
Regina, Viduthalai Rasheedkhan
Yap, Pui Khee Peggy
Wenk, Markus R.
Kjelleberg, Staffan
Seviour, Thomas William
Hinks, Jamie
author_sort Berezhnoy, Nikolay V.
collection PubMed
description In the case of many bacteria, such as Escherichia coli, the composition of lipid molecules, termed the lipidome, temporally adapts to different environmental conditions and thus modifies membrane properties to permit growth and survival. Details of the relationship between the environment and lipidome composition are lacking, particularly for growing cultures under either favourable or under stress conditions. Here, we highlight compositional lipidome changes by describing the dynamics of molecular species throughout culture-growth phases. We show a steady cyclopropanation of fatty acyl chains, which acts as a driver for lipid diversity. There is a bias for the cyclopropanation of shorter fatty acyl chains (FA 16:1) over longer ones (FA 18:1), which likely reflects a thermodynamic phenomenon. Additionally, we observe a nearly two-fold increase in saturated fatty acyl chains in response to the presence of ampicillin and chloramphenicol, with consequences for membrane fluidity and elasticity, and ultimately bacterial stress tolerance. Our study provides the detailed quantitative lipidome composition of three E. coli strains across culture-growth phases and at the level of the fatty acyl chains and provides a general reference for phospholipid composition changes in response to perturbations. Thus, lipidome diversity is largely transient and the consequence of lipid synthesis and cyclopropanation.
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spelling pubmed-95006272022-09-24 Transient Complexity of E. coli Lipidome Is Explained by Fatty Acyl Synthesis and Cyclopropanation Berezhnoy, Nikolay V. Cazenave-Gassiot, Amaury Gao, Liang Foo, Juat Chin Ji, Shanshan Regina, Viduthalai Rasheedkhan Yap, Pui Khee Peggy Wenk, Markus R. Kjelleberg, Staffan Seviour, Thomas William Hinks, Jamie Metabolites Article In the case of many bacteria, such as Escherichia coli, the composition of lipid molecules, termed the lipidome, temporally adapts to different environmental conditions and thus modifies membrane properties to permit growth and survival. Details of the relationship between the environment and lipidome composition are lacking, particularly for growing cultures under either favourable or under stress conditions. Here, we highlight compositional lipidome changes by describing the dynamics of molecular species throughout culture-growth phases. We show a steady cyclopropanation of fatty acyl chains, which acts as a driver for lipid diversity. There is a bias for the cyclopropanation of shorter fatty acyl chains (FA 16:1) over longer ones (FA 18:1), which likely reflects a thermodynamic phenomenon. Additionally, we observe a nearly two-fold increase in saturated fatty acyl chains in response to the presence of ampicillin and chloramphenicol, with consequences for membrane fluidity and elasticity, and ultimately bacterial stress tolerance. Our study provides the detailed quantitative lipidome composition of three E. coli strains across culture-growth phases and at the level of the fatty acyl chains and provides a general reference for phospholipid composition changes in response to perturbations. Thus, lipidome diversity is largely transient and the consequence of lipid synthesis and cyclopropanation. MDPI 2022-08-24 /pmc/articles/PMC9500627/ /pubmed/36144187 http://dx.doi.org/10.3390/metabo12090784 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Berezhnoy, Nikolay V.
Cazenave-Gassiot, Amaury
Gao, Liang
Foo, Juat Chin
Ji, Shanshan
Regina, Viduthalai Rasheedkhan
Yap, Pui Khee Peggy
Wenk, Markus R.
Kjelleberg, Staffan
Seviour, Thomas William
Hinks, Jamie
Transient Complexity of E. coli Lipidome Is Explained by Fatty Acyl Synthesis and Cyclopropanation
title Transient Complexity of E. coli Lipidome Is Explained by Fatty Acyl Synthesis and Cyclopropanation
title_full Transient Complexity of E. coli Lipidome Is Explained by Fatty Acyl Synthesis and Cyclopropanation
title_fullStr Transient Complexity of E. coli Lipidome Is Explained by Fatty Acyl Synthesis and Cyclopropanation
title_full_unstemmed Transient Complexity of E. coli Lipidome Is Explained by Fatty Acyl Synthesis and Cyclopropanation
title_short Transient Complexity of E. coli Lipidome Is Explained by Fatty Acyl Synthesis and Cyclopropanation
title_sort transient complexity of e. coli lipidome is explained by fatty acyl synthesis and cyclopropanation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9500627/
https://www.ncbi.nlm.nih.gov/pubmed/36144187
http://dx.doi.org/10.3390/metabo12090784
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