A meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model community

Abstract Microbial biofilms are omnipresent in nature and relevant to a broad spectrum of industries ranging from bioremediation and food production to biomedical applications. To date little is understood about how multi-species biofilm communities develop and function on a molecular level, due to...

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Main Authors: Jakob Herschend, Zacharias B. V. Damholt, Andrea M. Marquard, Birte Svensson, Søren J. Sørensen, Per Hägglund, Mette Burmølle
Format: Article
Language:English
Published: Nature Publishing Group 2017-11-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-017-16633-6
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spelling doaj-2b11b38bb78346d2a0aafcf7e96380c32020-12-08T01:12:24ZengNature Publishing GroupScientific Reports2045-23222017-11-017111310.1038/s41598-017-16633-6A meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model communityJakob Herschend0Zacharias B. V. Damholt1Andrea M. Marquard2Birte Svensson3Søren J. Sørensen4Per Hägglund5Mette Burmølle6Section of Microbiology, Department of Biology, University of CopenhagenDepartment of Biotechnology and Biomedicine, Technical University of DenmarkSection for Immunology and Vaccinology, National Veterinary Institute, Technical University of DenmarkDepartment of Biotechnology and Biomedicine, Technical University of DenmarkSection of Microbiology, Department of Biology, University of CopenhagenDepartment of Biotechnology and Biomedicine, Technical University of DenmarkSection of Microbiology, Department of Biology, University of CopenhagenAbstract Microbial biofilms are omnipresent in nature and relevant to a broad spectrum of industries ranging from bioremediation and food production to biomedical applications. To date little is understood about how multi-species biofilm communities develop and function on a molecular level, due to the complexity of these biological systems. Here we apply a meta-proteomics approach to investigate the mechanisms influencing biofilm formation in a model consortium of four bacterial soil isolates; Stenotrophomonas rhizophila, Xanthomonas retroflexus, Microbacterium oxydans and Paenibacillus amylolyticus. Protein abundances in community and single species biofilms were compared to describe occurring inter-species interactions and the resulting changes in active metabolic pathways. To obtain full taxonomic resolution between closely related species and empower correct protein quantification, we developed a novel pipeline for generating reduced reference proteomes for spectral database searches. Meta-proteomics profiling indicated that community development is dependent on cooperative interactions between community members facilitating cross-feeding on specific amino acids. Opposite regulation patterns of fermentation and nitrogen pathways in Paenibacillus amylolyticus and Xanthomonas retroflexus may, however, indicate that competition for limited resources also affects community development. Overall our results demonstrate the multitude of pathways involved in biofilm formation in mixed communities.https://doi.org/10.1038/s41598-017-16633-6
collection DOAJ
language English
format Article
sources DOAJ
author Jakob Herschend
Zacharias B. V. Damholt
Andrea M. Marquard
Birte Svensson
Søren J. Sørensen
Per Hägglund
Mette Burmølle
spellingShingle Jakob Herschend
Zacharias B. V. Damholt
Andrea M. Marquard
Birte Svensson
Søren J. Sørensen
Per Hägglund
Mette Burmølle
A meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model community
Scientific Reports
author_facet Jakob Herschend
Zacharias B. V. Damholt
Andrea M. Marquard
Birte Svensson
Søren J. Sørensen
Per Hägglund
Mette Burmølle
author_sort Jakob Herschend
title A meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model community
title_short A meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model community
title_full A meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model community
title_fullStr A meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model community
title_full_unstemmed A meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model community
title_sort meta-proteomics approach to study the interspecies interactions affecting microbial biofilm development in a model community
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2017-11-01
description Abstract Microbial biofilms are omnipresent in nature and relevant to a broad spectrum of industries ranging from bioremediation and food production to biomedical applications. To date little is understood about how multi-species biofilm communities develop and function on a molecular level, due to the complexity of these biological systems. Here we apply a meta-proteomics approach to investigate the mechanisms influencing biofilm formation in a model consortium of four bacterial soil isolates; Stenotrophomonas rhizophila, Xanthomonas retroflexus, Microbacterium oxydans and Paenibacillus amylolyticus. Protein abundances in community and single species biofilms were compared to describe occurring inter-species interactions and the resulting changes in active metabolic pathways. To obtain full taxonomic resolution between closely related species and empower correct protein quantification, we developed a novel pipeline for generating reduced reference proteomes for spectral database searches. Meta-proteomics profiling indicated that community development is dependent on cooperative interactions between community members facilitating cross-feeding on specific amino acids. Opposite regulation patterns of fermentation and nitrogen pathways in Paenibacillus amylolyticus and Xanthomonas retroflexus may, however, indicate that competition for limited resources also affects community development. Overall our results demonstrate the multitude of pathways involved in biofilm formation in mixed communities.
url https://doi.org/10.1038/s41598-017-16633-6
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