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Meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism

Dental caries, one of the most globally widespread infectious diseases, is intimately linked to pH dynamics. In supragingival plaque, after the addition of a carbohydrate source, bacterial metabolism decreases the pH which then subsequently recovers. Molecular mechanisms supporting this important ho...

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Autores principales: Edlund, Anna, Yang, Youngik, Yooseph, Shibu, Hall, Adam P, Nguyen, Don D, Dorrestein, Pieter C, Nelson, Karen E, He, Xuesong, Lux, Renate, Shi, Wenyuan, McLean, Jeffrey S
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4817640/
https://www.ncbi.nlm.nih.gov/pubmed/26023872
http://dx.doi.org/10.1038/ismej.2015.72
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author Edlund, Anna
Yang, Youngik
Yooseph, Shibu
Hall, Adam P
Nguyen, Don D
Dorrestein, Pieter C
Nelson, Karen E
He, Xuesong
Lux, Renate
Shi, Wenyuan
McLean, Jeffrey S
author_facet Edlund, Anna
Yang, Youngik
Yooseph, Shibu
Hall, Adam P
Nguyen, Don D
Dorrestein, Pieter C
Nelson, Karen E
He, Xuesong
Lux, Renate
Shi, Wenyuan
McLean, Jeffrey S
author_sort Edlund, Anna
collection PubMed
description Dental caries, one of the most globally widespread infectious diseases, is intimately linked to pH dynamics. In supragingival plaque, after the addition of a carbohydrate source, bacterial metabolism decreases the pH which then subsequently recovers. Molecular mechanisms supporting this important homeostasis are poorly characterized in part due to the fact that there are hundreds of active species in dental plaque. Only a few mechanisms (for example, lactate fermentation, the arginine deiminase system) have been identified and studied in detail. Here, we conducted what is to our knowledge, the first full transcriptome and metabolome analysis of a diverse oral plaque community by using a functionally and taxonomically robust in vitro model system greater than 100 species. Differential gene expression analyses from the complete transcriptome of 14 key community members revealed highly varied regulation of both known and previously unassociated pH-neutralizing pathways as a response to the pH drop. Unique expression and metabolite signatures from 400 detected metabolites were found for each stage along the pH curve suggesting it may be possible to define healthy and diseased states of activity. Importantly, for the maintenance of healthy plaque pH, gene transcription activity of known and previously unrecognized pH-neutralizing pathways was associated with the genera Lactobacillus, Veillonella and Streptococcus during the pH recovery phase. Our in vitro study provides a baseline for defining healthy and disease-like states and highlights the power of moving beyond single and dual species applications to capture key players and their orchestrated metabolic activities within a complex human oral microbiome model.
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spelling pubmed-48176402016-04-15 Meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism Edlund, Anna Yang, Youngik Yooseph, Shibu Hall, Adam P Nguyen, Don D Dorrestein, Pieter C Nelson, Karen E He, Xuesong Lux, Renate Shi, Wenyuan McLean, Jeffrey S ISME J Original Article Dental caries, one of the most globally widespread infectious diseases, is intimately linked to pH dynamics. In supragingival plaque, after the addition of a carbohydrate source, bacterial metabolism decreases the pH which then subsequently recovers. Molecular mechanisms supporting this important homeostasis are poorly characterized in part due to the fact that there are hundreds of active species in dental plaque. Only a few mechanisms (for example, lactate fermentation, the arginine deiminase system) have been identified and studied in detail. Here, we conducted what is to our knowledge, the first full transcriptome and metabolome analysis of a diverse oral plaque community by using a functionally and taxonomically robust in vitro model system greater than 100 species. Differential gene expression analyses from the complete transcriptome of 14 key community members revealed highly varied regulation of both known and previously unassociated pH-neutralizing pathways as a response to the pH drop. Unique expression and metabolite signatures from 400 detected metabolites were found for each stage along the pH curve suggesting it may be possible to define healthy and diseased states of activity. Importantly, for the maintenance of healthy plaque pH, gene transcription activity of known and previously unrecognized pH-neutralizing pathways was associated with the genera Lactobacillus, Veillonella and Streptococcus during the pH recovery phase. Our in vitro study provides a baseline for defining healthy and disease-like states and highlights the power of moving beyond single and dual species applications to capture key players and their orchestrated metabolic activities within a complex human oral microbiome model. Nature Publishing Group 2015-12 2015-05-29 /pmc/articles/PMC4817640/ /pubmed/26023872 http://dx.doi.org/10.1038/ismej.2015.72 Text en Copyright © 2015 International Society for Microbial Ecology http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Original Article
Edlund, Anna
Yang, Youngik
Yooseph, Shibu
Hall, Adam P
Nguyen, Don D
Dorrestein, Pieter C
Nelson, Karen E
He, Xuesong
Lux, Renate
Shi, Wenyuan
McLean, Jeffrey S
Meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism
title Meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism
title_full Meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism
title_fullStr Meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism
title_full_unstemmed Meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism
title_short Meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism
title_sort meta-omics uncover temporal regulation of pathways across oral microbiome genera during in vitro sugar metabolism
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4817640/
https://www.ncbi.nlm.nih.gov/pubmed/26023872
http://dx.doi.org/10.1038/ismej.2015.72
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