Cargando…

Metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of Crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes

BACKGROUND: The gut microbiome plays a fundamental role in the human host’s overall health by contributing key biological functions such as expanded metabolism and pathogen defense/immune control. In a healthy individual, the gut microbiome co-exists within the human host in a symbiotic, non-inflamm...

Descripción completa

Detalles Bibliográficos
Autores principales: Blakeley-Ruiz, J. Alfredo, Erickson, Alison R., Cantarel, Brandi L., Xiong, Weili, Adams, Rachel, Jansson, Janet K., Fraser, Claire M., Hettich, Robert L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6371617/
https://www.ncbi.nlm.nih.gov/pubmed/30744677
http://dx.doi.org/10.1186/s40168-019-0631-8
_version_ 1783394592717012992
author Blakeley-Ruiz, J. Alfredo
Erickson, Alison R.
Cantarel, Brandi L.
Xiong, Weili
Adams, Rachel
Jansson, Janet K.
Fraser, Claire M.
Hettich, Robert L.
author_facet Blakeley-Ruiz, J. Alfredo
Erickson, Alison R.
Cantarel, Brandi L.
Xiong, Weili
Adams, Rachel
Jansson, Janet K.
Fraser, Claire M.
Hettich, Robert L.
author_sort Blakeley-Ruiz, J. Alfredo
collection PubMed
description BACKGROUND: The gut microbiome plays a fundamental role in the human host’s overall health by contributing key biological functions such as expanded metabolism and pathogen defense/immune control. In a healthy individual, the gut microbiome co-exists within the human host in a symbiotic, non-inflammatory relationship that enables mutual benefits, such as microbial degradation of indigestible food products into small molecules that the host can utilize, and enhanced pathogen defense. In abnormal conditions, such as Crohn’s disease, this favorable metabolic relationship breaks down and a variety of undesirable activities result, including chronic inflammation and other health-related issues. It has been difficult, however, to elucidate the overall functional characteristics of this relationship because the microbiota can vary substantially in composition for healthy humans and possibly even more in individuals with gut disease conditions such as Crohn’s disease. Overall, this suggests that microbial membership composition may not be the best way to characterize a phenotype. Alternatively, it seems to be more informative to examine and characterize the functional composition of a gut microbiome. Towards that end, this study examines 25 metaproteomes measured in several Crohn’s disease patients’ post-resection surgery across the course of 1 year, in order to examine persistence of microbial taxa, genes, proteins, and metabolic functional distributions across time in individuals whose microbiome might be more variable due to the gut disease condition. RESULTS: The measured metaproteomes were highly personalized, with all the temporally-related metaproteomes clustering most closely by individual. In general, the metaproteomes were remarkably distinct between individuals and to a lesser extent within individuals. This prompted a need to characterize the metaproteome at a higher functional level, which was achieved by annotating identified protein groups with KEGG orthologous groups to infer metabolic modules. At this level, similar and redundant metabolic functions across multiple phyla were observed across time and between individuals. Tracking through these various metabolic modules revealed a clear path from carbohydrate, lipid, and amino acid degradation to central metabolism and finally the production of fermentation products. CONCLUSIONS: The human gut metaproteome can vary quite substantially across time and individuals. However, despite substantial intra-individual variation in the metaproteomes, there is a clear persistence of conserved metabolic functions across time and individuals. Additionally, the persistence of these core functions is redundant across multiple phyla but is not always observable in the same sample. Finally, the gut microbiome’s metabolism is not driven by a set of discrete linear pathways but a web of interconnected reactions facilitated by a network of enzymes that connect multiple molecules across multiple pathways. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1186/s40168-019-0631-8) contains supplementary material, which is available to authorized users.
format Online
Article
Text
id pubmed-6371617
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-63716172019-02-25 Metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of Crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes Blakeley-Ruiz, J. Alfredo Erickson, Alison R. Cantarel, Brandi L. Xiong, Weili Adams, Rachel Jansson, Janet K. Fraser, Claire M. Hettich, Robert L. Microbiome Research BACKGROUND: The gut microbiome plays a fundamental role in the human host’s overall health by contributing key biological functions such as expanded metabolism and pathogen defense/immune control. In a healthy individual, the gut microbiome co-exists within the human host in a symbiotic, non-inflammatory relationship that enables mutual benefits, such as microbial degradation of indigestible food products into small molecules that the host can utilize, and enhanced pathogen defense. In abnormal conditions, such as Crohn’s disease, this favorable metabolic relationship breaks down and a variety of undesirable activities result, including chronic inflammation and other health-related issues. It has been difficult, however, to elucidate the overall functional characteristics of this relationship because the microbiota can vary substantially in composition for healthy humans and possibly even more in individuals with gut disease conditions such as Crohn’s disease. Overall, this suggests that microbial membership composition may not be the best way to characterize a phenotype. Alternatively, it seems to be more informative to examine and characterize the functional composition of a gut microbiome. Towards that end, this study examines 25 metaproteomes measured in several Crohn’s disease patients’ post-resection surgery across the course of 1 year, in order to examine persistence of microbial taxa, genes, proteins, and metabolic functional distributions across time in individuals whose microbiome might be more variable due to the gut disease condition. RESULTS: The measured metaproteomes were highly personalized, with all the temporally-related metaproteomes clustering most closely by individual. In general, the metaproteomes were remarkably distinct between individuals and to a lesser extent within individuals. This prompted a need to characterize the metaproteome at a higher functional level, which was achieved by annotating identified protein groups with KEGG orthologous groups to infer metabolic modules. At this level, similar and redundant metabolic functions across multiple phyla were observed across time and between individuals. Tracking through these various metabolic modules revealed a clear path from carbohydrate, lipid, and amino acid degradation to central metabolism and finally the production of fermentation products. CONCLUSIONS: The human gut metaproteome can vary quite substantially across time and individuals. However, despite substantial intra-individual variation in the metaproteomes, there is a clear persistence of conserved metabolic functions across time and individuals. Additionally, the persistence of these core functions is redundant across multiple phyla but is not always observable in the same sample. Finally, the gut microbiome’s metabolism is not driven by a set of discrete linear pathways but a web of interconnected reactions facilitated by a network of enzymes that connect multiple molecules across multiple pathways. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1186/s40168-019-0631-8) contains supplementary material, which is available to authorized users. BioMed Central 2019-02-11 /pmc/articles/PMC6371617/ /pubmed/30744677 http://dx.doi.org/10.1186/s40168-019-0631-8 Text en © The Author(s). 2019 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Blakeley-Ruiz, J. Alfredo
Erickson, Alison R.
Cantarel, Brandi L.
Xiong, Weili
Adams, Rachel
Jansson, Janet K.
Fraser, Claire M.
Hettich, Robert L.
Metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of Crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes
title Metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of Crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes
title_full Metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of Crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes
title_fullStr Metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of Crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes
title_full_unstemmed Metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of Crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes
title_short Metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of Crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes
title_sort metaproteomics reveals persistent and phylum-redundant metabolic functional stability in adult human gut microbiomes of crohn’s remission patients despite temporal variations in microbial taxa, genomes, and proteomes
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6371617/
https://www.ncbi.nlm.nih.gov/pubmed/30744677
http://dx.doi.org/10.1186/s40168-019-0631-8
work_keys_str_mv AT blakeleyruizjalfredo metaproteomicsrevealspersistentandphylumredundantmetabolicfunctionalstabilityinadulthumangutmicrobiomesofcrohnsremissionpatientsdespitetemporalvariationsinmicrobialtaxagenomesandproteomes
AT ericksonalisonr metaproteomicsrevealspersistentandphylumredundantmetabolicfunctionalstabilityinadulthumangutmicrobiomesofcrohnsremissionpatientsdespitetemporalvariationsinmicrobialtaxagenomesandproteomes
AT cantarelbrandil metaproteomicsrevealspersistentandphylumredundantmetabolicfunctionalstabilityinadulthumangutmicrobiomesofcrohnsremissionpatientsdespitetemporalvariationsinmicrobialtaxagenomesandproteomes
AT xiongweili metaproteomicsrevealspersistentandphylumredundantmetabolicfunctionalstabilityinadulthumangutmicrobiomesofcrohnsremissionpatientsdespitetemporalvariationsinmicrobialtaxagenomesandproteomes
AT adamsrachel metaproteomicsrevealspersistentandphylumredundantmetabolicfunctionalstabilityinadulthumangutmicrobiomesofcrohnsremissionpatientsdespitetemporalvariationsinmicrobialtaxagenomesandproteomes
AT janssonjanetk metaproteomicsrevealspersistentandphylumredundantmetabolicfunctionalstabilityinadulthumangutmicrobiomesofcrohnsremissionpatientsdespitetemporalvariationsinmicrobialtaxagenomesandproteomes
AT fraserclairem metaproteomicsrevealspersistentandphylumredundantmetabolicfunctionalstabilityinadulthumangutmicrobiomesofcrohnsremissionpatientsdespitetemporalvariationsinmicrobialtaxagenomesandproteomes
AT hettichrobertl metaproteomicsrevealspersistentandphylumredundantmetabolicfunctionalstabilityinadulthumangutmicrobiomesofcrohnsremissionpatientsdespitetemporalvariationsinmicrobialtaxagenomesandproteomes