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Metabolic Robustness to Growth Temperature of a Cold- Adapted Marine Bacterium

Microbial communities experience continuous environmental changes, with temperature fluctuations being the most impacting. This is particularly important considering the ongoing global warming but also in the “simpler” context of seasonal variability of sea-surface temperature. Understanding how mic...

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Autores principales: Riccardi, Christopher, Calvanese, Marzia, Ghini, Veronica, Alonso-Vásquez, Tania, Perrin, Elena, Turano, Paola, Giurato, Giorgio, Weisz, Alessandro, Parrilli, Ermenegilda, Tutino, Maria Luisa, Fondi, Marco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10134870/
https://www.ncbi.nlm.nih.gov/pubmed/36847563
http://dx.doi.org/10.1128/msystems.01124-22
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author Riccardi, Christopher
Calvanese, Marzia
Ghini, Veronica
Alonso-Vásquez, Tania
Perrin, Elena
Turano, Paola
Giurato, Giorgio
Weisz, Alessandro
Parrilli, Ermenegilda
Tutino, Maria Luisa
Fondi, Marco
author_facet Riccardi, Christopher
Calvanese, Marzia
Ghini, Veronica
Alonso-Vásquez, Tania
Perrin, Elena
Turano, Paola
Giurato, Giorgio
Weisz, Alessandro
Parrilli, Ermenegilda
Tutino, Maria Luisa
Fondi, Marco
author_sort Riccardi, Christopher
collection PubMed
description Microbial communities experience continuous environmental changes, with temperature fluctuations being the most impacting. This is particularly important considering the ongoing global warming but also in the “simpler” context of seasonal variability of sea-surface temperature. Understanding how microorganisms react at the cellular level can improve our understanding of their possible adaptations to a changing environment. In this work, we investigated the mechanisms through which metabolic homeostasis is maintained in a cold-adapted marine bacterium during growth at temperatures that differ widely (15 and 0°C). We have quantified its intracellular and extracellular central metabolomes together with changes occurring at the transcriptomic level in the same growth conditions. This information was then used to contextualize a genome-scale metabolic reconstruction, and to provide a systemic understanding of cellular adaptation to growth at 2 different temperatures. Our findings indicate a strong metabolic robustness at the level of the main central metabolites, counteracted by a relatively deep transcriptomic reprogramming that includes changes in gene expression of hundreds of metabolic genes. We interpret this as a transcriptomic buffering of cellular metabolism, able to produce overlapping metabolic phenotypes, despite the wide temperature gap. Moreover, we show that metabolic adaptation seems to be mostly played at the level of few key intermediates (e.g., phosphoenolpyruvate) and in the cross talk between the main central metabolic pathways. Overall, our findings reveal a complex interplay at gene expression level that contributes to the robustness/resilience of core metabolism, also promoting the leveraging of state-of-the-art multi-disciplinary approaches to fully comprehend molecular adaptations to environmental fluctuations. IMPORTANCE This manuscript addresses a central and broad interest topic in environmental microbiology, i.e. the effect of growth temperature on microbial cell physiology. We investigated if and how metabolic homeostasis is maintained in a cold-adapted bacterium during growth at temperatures that differ widely and that match measured changes on the field. Our integrative approach revealed an extraordinary robustness of the central metabolome to growth temperature. However, this was counteracted by deep changes at the transcriptional level, and especially in the metabolic part of the transcriptome. This conflictual scenario was interpreted as a transcriptomic buffering of cellular metabolism, and was investigated using genome-scale metabolic modeling. Overall, our findings reveal a complex interplay at gene expression level that contributes to the robustness/resilience of core metabolism, also promoting the use of state-of-the-art multi-disciplinary approaches to fully comprehend molecular adaptations to environmental fluctuations.
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spelling pubmed-101348702023-04-28 Metabolic Robustness to Growth Temperature of a Cold- Adapted Marine Bacterium Riccardi, Christopher Calvanese, Marzia Ghini, Veronica Alonso-Vásquez, Tania Perrin, Elena Turano, Paola Giurato, Giorgio Weisz, Alessandro Parrilli, Ermenegilda Tutino, Maria Luisa Fondi, Marco mSystems Research Article Microbial communities experience continuous environmental changes, with temperature fluctuations being the most impacting. This is particularly important considering the ongoing global warming but also in the “simpler” context of seasonal variability of sea-surface temperature. Understanding how microorganisms react at the cellular level can improve our understanding of their possible adaptations to a changing environment. In this work, we investigated the mechanisms through which metabolic homeostasis is maintained in a cold-adapted marine bacterium during growth at temperatures that differ widely (15 and 0°C). We have quantified its intracellular and extracellular central metabolomes together with changes occurring at the transcriptomic level in the same growth conditions. This information was then used to contextualize a genome-scale metabolic reconstruction, and to provide a systemic understanding of cellular adaptation to growth at 2 different temperatures. Our findings indicate a strong metabolic robustness at the level of the main central metabolites, counteracted by a relatively deep transcriptomic reprogramming that includes changes in gene expression of hundreds of metabolic genes. We interpret this as a transcriptomic buffering of cellular metabolism, able to produce overlapping metabolic phenotypes, despite the wide temperature gap. Moreover, we show that metabolic adaptation seems to be mostly played at the level of few key intermediates (e.g., phosphoenolpyruvate) and in the cross talk between the main central metabolic pathways. Overall, our findings reveal a complex interplay at gene expression level that contributes to the robustness/resilience of core metabolism, also promoting the leveraging of state-of-the-art multi-disciplinary approaches to fully comprehend molecular adaptations to environmental fluctuations. IMPORTANCE This manuscript addresses a central and broad interest topic in environmental microbiology, i.e. the effect of growth temperature on microbial cell physiology. We investigated if and how metabolic homeostasis is maintained in a cold-adapted bacterium during growth at temperatures that differ widely and that match measured changes on the field. Our integrative approach revealed an extraordinary robustness of the central metabolome to growth temperature. However, this was counteracted by deep changes at the transcriptional level, and especially in the metabolic part of the transcriptome. This conflictual scenario was interpreted as a transcriptomic buffering of cellular metabolism, and was investigated using genome-scale metabolic modeling. Overall, our findings reveal a complex interplay at gene expression level that contributes to the robustness/resilience of core metabolism, also promoting the use of state-of-the-art multi-disciplinary approaches to fully comprehend molecular adaptations to environmental fluctuations. American Society for Microbiology 2023-02-27 /pmc/articles/PMC10134870/ /pubmed/36847563 http://dx.doi.org/10.1128/msystems.01124-22 Text en Copyright © 2023 Riccardi et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Riccardi, Christopher
Calvanese, Marzia
Ghini, Veronica
Alonso-Vásquez, Tania
Perrin, Elena
Turano, Paola
Giurato, Giorgio
Weisz, Alessandro
Parrilli, Ermenegilda
Tutino, Maria Luisa
Fondi, Marco
Metabolic Robustness to Growth Temperature of a Cold- Adapted Marine Bacterium
title Metabolic Robustness to Growth Temperature of a Cold- Adapted Marine Bacterium
title_full Metabolic Robustness to Growth Temperature of a Cold- Adapted Marine Bacterium
title_fullStr Metabolic Robustness to Growth Temperature of a Cold- Adapted Marine Bacterium
title_full_unstemmed Metabolic Robustness to Growth Temperature of a Cold- Adapted Marine Bacterium
title_short Metabolic Robustness to Growth Temperature of a Cold- Adapted Marine Bacterium
title_sort metabolic robustness to growth temperature of a cold- adapted marine bacterium
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10134870/
https://www.ncbi.nlm.nih.gov/pubmed/36847563
http://dx.doi.org/10.1128/msystems.01124-22
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