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Holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios

BACKGROUND: The use of omics data for monitoring the microbial flow of fresh meat products along a production line and the development of spoilage prediction tools from these data is a promising but challenging task. In this context, we produced a large multivariate dataset (over 600 samples) obtain...

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Autores principales: Poirier, Simon, Coeuret, Gwendoline, Champomier-Vergès, Marie-Christine, Desmonts, Marie-Hélène, Werner, Dalal, Feurer, Carole, Frémaux, Bastien, Guillou, Sandrine, Luong, Ngoc-Du Martin, Rué, Olivier, Loux, Valentin, Zagorec, Monique, Chaillou, Stéphane
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619683/
https://www.ncbi.nlm.nih.gov/pubmed/37920261
http://dx.doi.org/10.3389/fmicb.2023.1286661
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author Poirier, Simon
Coeuret, Gwendoline
Champomier-Vergès, Marie-Christine
Desmonts, Marie-Hélène
Werner, Dalal
Feurer, Carole
Frémaux, Bastien
Guillou, Sandrine
Luong, Ngoc-Du Martin
Rué, Olivier
Loux, Valentin
Zagorec, Monique
Chaillou, Stéphane
author_facet Poirier, Simon
Coeuret, Gwendoline
Champomier-Vergès, Marie-Christine
Desmonts, Marie-Hélène
Werner, Dalal
Feurer, Carole
Frémaux, Bastien
Guillou, Sandrine
Luong, Ngoc-Du Martin
Rué, Olivier
Loux, Valentin
Zagorec, Monique
Chaillou, Stéphane
author_sort Poirier, Simon
collection PubMed
description BACKGROUND: The use of omics data for monitoring the microbial flow of fresh meat products along a production line and the development of spoilage prediction tools from these data is a promising but challenging task. In this context, we produced a large multivariate dataset (over 600 samples) obtained on the production lines of two similar types of fresh meat products (poultry and raw pork sausages). We describe a full analysis of this dataset in order to decipher how the spoilage microbial ecology of these two similar products may be shaped differently depending on production parameter characteristics. METHODS: Our strategy involved a holistic approach to integrate unsupervised and supervised statistical methods on multivariate data (OTU-based microbial diversity; metabolomic data of volatile organic compounds; sensory measurements; growth parameters), and a specific selection of potential uncontrolled (initial microbiota composition) or controlled (packaging type; lactate concentration) drivers. RESULTS: Our results demonstrate that the initial microbiota, which is shown to be very different between poultry and pork sausages, has a major impact on the spoilage scenarios and on the effect that a downstream parameter such as packaging type has on the overall evolution of the microbial community. Depending on the process, we also show that specific actions on the pork meat (such as deboning and defatting) elicit specific food spoilers such as Dellaglioa algida, which becomes dominant during storage. Finally, ecological network reconstruction allowed us to map six different metabolic pathways involved in the production of volatile organic compounds involved in spoilage. We were able connect them to the different bacterial actors and to the influence of packaging type in an overall view. For instance, our results demonstrate a new role of Vibrionaceae in isopropanol production, and of Latilactobacillus fuchuensis and Lactococcus piscium in methanethiol/disylphide production. We also highlight a possible commensal behavior between Leuconostoc carnosum and Latilactobacillus curvatus around 2,3-butanediol metabolism. CONCLUSION: We conclude that our holistic approach combined with large-scale multi-omic data was a powerful strategy to prioritize the role of production parameters, already known in the literature, that shape the evolution and/or the implementation of different meat spoilage scenarios.
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spelling pubmed-106196832023-11-02 Holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios Poirier, Simon Coeuret, Gwendoline Champomier-Vergès, Marie-Christine Desmonts, Marie-Hélène Werner, Dalal Feurer, Carole Frémaux, Bastien Guillou, Sandrine Luong, Ngoc-Du Martin Rué, Olivier Loux, Valentin Zagorec, Monique Chaillou, Stéphane Front Microbiol Microbiology BACKGROUND: The use of omics data for monitoring the microbial flow of fresh meat products along a production line and the development of spoilage prediction tools from these data is a promising but challenging task. In this context, we produced a large multivariate dataset (over 600 samples) obtained on the production lines of two similar types of fresh meat products (poultry and raw pork sausages). We describe a full analysis of this dataset in order to decipher how the spoilage microbial ecology of these two similar products may be shaped differently depending on production parameter characteristics. METHODS: Our strategy involved a holistic approach to integrate unsupervised and supervised statistical methods on multivariate data (OTU-based microbial diversity; metabolomic data of volatile organic compounds; sensory measurements; growth parameters), and a specific selection of potential uncontrolled (initial microbiota composition) or controlled (packaging type; lactate concentration) drivers. RESULTS: Our results demonstrate that the initial microbiota, which is shown to be very different between poultry and pork sausages, has a major impact on the spoilage scenarios and on the effect that a downstream parameter such as packaging type has on the overall evolution of the microbial community. Depending on the process, we also show that specific actions on the pork meat (such as deboning and defatting) elicit specific food spoilers such as Dellaglioa algida, which becomes dominant during storage. Finally, ecological network reconstruction allowed us to map six different metabolic pathways involved in the production of volatile organic compounds involved in spoilage. We were able connect them to the different bacterial actors and to the influence of packaging type in an overall view. For instance, our results demonstrate a new role of Vibrionaceae in isopropanol production, and of Latilactobacillus fuchuensis and Lactococcus piscium in methanethiol/disylphide production. We also highlight a possible commensal behavior between Leuconostoc carnosum and Latilactobacillus curvatus around 2,3-butanediol metabolism. CONCLUSION: We conclude that our holistic approach combined with large-scale multi-omic data was a powerful strategy to prioritize the role of production parameters, already known in the literature, that shape the evolution and/or the implementation of different meat spoilage scenarios. Frontiers Media S.A. 2023-10-18 /pmc/articles/PMC10619683/ /pubmed/37920261 http://dx.doi.org/10.3389/fmicb.2023.1286661 Text en Copyright © 2023 Poirier, Coeuret, Champomier-Vergès, Desmonts, Werner, Feurer, Frémaux, Guillou, Luong, Rué, Loux, Zagorec, Chaillou and on the behalf of the ANR Redlosses Consortium Group. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Poirier, Simon
Coeuret, Gwendoline
Champomier-Vergès, Marie-Christine
Desmonts, Marie-Hélène
Werner, Dalal
Feurer, Carole
Frémaux, Bastien
Guillou, Sandrine
Luong, Ngoc-Du Martin
Rué, Olivier
Loux, Valentin
Zagorec, Monique
Chaillou, Stéphane
Holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios
title Holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios
title_full Holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios
title_fullStr Holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios
title_full_unstemmed Holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios
title_short Holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios
title_sort holistic integration of omics data reveals the drivers that shape the ecology of microbial meat spoilage scenarios
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619683/
https://www.ncbi.nlm.nih.gov/pubmed/37920261
http://dx.doi.org/10.3389/fmicb.2023.1286661
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