Pseudomonas aeruginosa PAO1 exopolysaccharides are important for mixed species biofilm community development and stress tolerance

Pseudomonas aeruginosa PAO1 produces three polysaccharides, alginate, Psl and Pel that play distinct roles in attachment and biofilm formation for monospecies biofilms. Considerably less is known about their role in the development of mixed species biofilm communities. This study has investigated th...

Full description

Bibliographic Details
Main Authors: Saravanan ePeriasamy, Harikrishnan A.S. Nair, Kai Wei Kelvin Lee, Jolene eOng, Jie Quan Joee Goh, Staffan eKjelleberg, Scott A. Rice
Format: Article
Language:English
Published: Frontiers Media S.A. 2015-08-01
Series:Frontiers in Microbiology
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fmicb.2015.00851/full
id doaj-52901380117e46fe868200b676c70c63
record_format Article
spelling doaj-52901380117e46fe868200b676c70c632020-11-25T01:09:01ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2015-08-01610.3389/fmicb.2015.00851138572Pseudomonas aeruginosa PAO1 exopolysaccharides are important for mixed species biofilm community development and stress toleranceSaravanan ePeriasamy0Harikrishnan A.S. Nair1Harikrishnan A.S. Nair2Kai Wei Kelvin Lee3Jolene eOng4Jie Quan Joee Goh5Staffan eKjelleberg6Staffan eKjelleberg7Scott A. Rice8Scott A. Rice9Nanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityThe University of New South WalesNanyang Technological UniversityThe University of New South WalesPseudomonas aeruginosa PAO1 produces three polysaccharides, alginate, Psl and Pel that play distinct roles in attachment and biofilm formation for monospecies biofilms. Considerably less is known about their role in the development of mixed species biofilm communities. This study has investigated the roles of alginate, Psl and Pel during biofilm formation of P. aeruginosa in a defined and experimentally informative mixed species biofilm community, consisting of P. aeruginosa, Pseudomonas protegens and Klebsiella pneumoniae. Loss of the Psl polysaccharide had the biggest impact on the integration of P. aeruginosa in the mixed species biofilms, where the percent composition of the psl mutant was significantly lower (0.06%) than its wild-type parent (2.44%). In contrast, loss of the Pel polysaccharide had no impact on mixed species biofilm development. Loss of alginate or its overproduction resulted in P. aeruginosa representing 8.4% and 18.11%, respectively, of the mixed species biofilm. Dual species biofilms of P. aeruginosa and K. pneumoniae were not affected by loss of alginate, Pel or Psl, while the mucoid P. aeruginosa strain achieved a greater biomass than its parent strain. When P. aeruginosa was grown with P. protegens, loss of the Pel or alginate polysaccharides resulted in biofilms that were not significantly different from biofilms formed by the wild-type PAO1. In contrast, overproduction of alginate resulted in biofilms that were comprised of 35-40% of P. aeruginosa, which was significantly higher than the wild-type (5-20%). Loss of the Psl polysaccharide significantly reduced the percentage composition of P. aeruginosa in dual species biofilms with P. protegens (<1%). Loss of the Psl polysaccharide significantly disrupted the communal stress resistance of the three species biofilms. Thus, the polysaccharide composition of an individual species significantly impacts mixed species biofilm development and the emergent properties of such communities.http://journal.frontiersin.org/Journal/10.3389/fmicb.2015.00851/fullBiofilmsStress ToleranceexopolysaccharidesInterspecies competitionMixed species consortia
collection DOAJ
language English
format Article
sources DOAJ
author Saravanan ePeriasamy
Harikrishnan A.S. Nair
Harikrishnan A.S. Nair
Kai Wei Kelvin Lee
Jolene eOng
Jie Quan Joee Goh
Staffan eKjelleberg
Staffan eKjelleberg
Scott A. Rice
Scott A. Rice
spellingShingle Saravanan ePeriasamy
Harikrishnan A.S. Nair
Harikrishnan A.S. Nair
Kai Wei Kelvin Lee
Jolene eOng
Jie Quan Joee Goh
Staffan eKjelleberg
Staffan eKjelleberg
Scott A. Rice
Scott A. Rice
Pseudomonas aeruginosa PAO1 exopolysaccharides are important for mixed species biofilm community development and stress tolerance
Frontiers in Microbiology
Biofilms
Stress Tolerance
exopolysaccharides
Interspecies competition
Mixed species consortia
author_facet Saravanan ePeriasamy
Harikrishnan A.S. Nair
Harikrishnan A.S. Nair
Kai Wei Kelvin Lee
Jolene eOng
Jie Quan Joee Goh
Staffan eKjelleberg
Staffan eKjelleberg
Scott A. Rice
Scott A. Rice
author_sort Saravanan ePeriasamy
title Pseudomonas aeruginosa PAO1 exopolysaccharides are important for mixed species biofilm community development and stress tolerance
title_short Pseudomonas aeruginosa PAO1 exopolysaccharides are important for mixed species biofilm community development and stress tolerance
title_full Pseudomonas aeruginosa PAO1 exopolysaccharides are important for mixed species biofilm community development and stress tolerance
title_fullStr Pseudomonas aeruginosa PAO1 exopolysaccharides are important for mixed species biofilm community development and stress tolerance
title_full_unstemmed Pseudomonas aeruginosa PAO1 exopolysaccharides are important for mixed species biofilm community development and stress tolerance
title_sort pseudomonas aeruginosa pao1 exopolysaccharides are important for mixed species biofilm community development and stress tolerance
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2015-08-01
description Pseudomonas aeruginosa PAO1 produces three polysaccharides, alginate, Psl and Pel that play distinct roles in attachment and biofilm formation for monospecies biofilms. Considerably less is known about their role in the development of mixed species biofilm communities. This study has investigated the roles of alginate, Psl and Pel during biofilm formation of P. aeruginosa in a defined and experimentally informative mixed species biofilm community, consisting of P. aeruginosa, Pseudomonas protegens and Klebsiella pneumoniae. Loss of the Psl polysaccharide had the biggest impact on the integration of P. aeruginosa in the mixed species biofilms, where the percent composition of the psl mutant was significantly lower (0.06%) than its wild-type parent (2.44%). In contrast, loss of the Pel polysaccharide had no impact on mixed species biofilm development. Loss of alginate or its overproduction resulted in P. aeruginosa representing 8.4% and 18.11%, respectively, of the mixed species biofilm. Dual species biofilms of P. aeruginosa and K. pneumoniae were not affected by loss of alginate, Pel or Psl, while the mucoid P. aeruginosa strain achieved a greater biomass than its parent strain. When P. aeruginosa was grown with P. protegens, loss of the Pel or alginate polysaccharides resulted in biofilms that were not significantly different from biofilms formed by the wild-type PAO1. In contrast, overproduction of alginate resulted in biofilms that were comprised of 35-40% of P. aeruginosa, which was significantly higher than the wild-type (5-20%). Loss of the Psl polysaccharide significantly reduced the percentage composition of P. aeruginosa in dual species biofilms with P. protegens (<1%). Loss of the Psl polysaccharide significantly disrupted the communal stress resistance of the three species biofilms. Thus, the polysaccharide composition of an individual species significantly impacts mixed species biofilm development and the emergent properties of such communities.
topic Biofilms
Stress Tolerance
exopolysaccharides
Interspecies competition
Mixed species consortia
url http://journal.frontiersin.org/Journal/10.3389/fmicb.2015.00851/full
work_keys_str_mv AT saravananeperiasamy pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT harikrishnanasnair pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT harikrishnanasnair pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT kaiweikelvinlee pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT joleneeong pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT jiequanjoeegoh pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT staffanekjelleberg pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT staffanekjelleberg pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT scottarice pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
AT scottarice pseudomonasaeruginosapao1exopolysaccharidesareimportantformixedspeciesbiofilmcommunitydevelopmentandstresstolerance
_version_ 1725180395014586368