Characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16S rRNA gene metabarcoding

Biofouling: Biofilms and microbes on desalination membranes The diverse microbial populations on seawater desalination plant membranes have been characterised after full operational lifecycles. The membranes were used for seven years to purify water by reverse osmosis. Biofouling can seriously impai...

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Main Authors: Veena Nagaraj, Lucy Skillman, Goen Ho, Dan Li, Alexander Gofton
Format: Article
Language:English
Published: Nature Publishing Group 2017-06-01
Series:npj Biofilms and Microbiomes
Online Access:https://doi.org/10.1038/s41522-017-0021-6
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spelling doaj-5fb6e30defe34c818dd9250c770943a42020-12-08T13:59:53ZengNature Publishing Groupnpj Biofilms and Microbiomes2055-50082017-06-013111410.1038/s41522-017-0021-6Characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16S rRNA gene metabarcodingVeena Nagaraj0Lucy Skillman1Goen Ho2Dan Li3Alexander Gofton4School of Engineering and Information Technology, Murdoch UniversitySchool of Engineering and Information Technology, Murdoch UniversitySchool of Engineering and Information Technology, Murdoch UniversitySchool of Engineering and Information Technology, Murdoch UniversitySchool of Veterinary and Life Sciences, Murdoch UniversityBiofouling: Biofilms and microbes on desalination membranes The diverse microbial populations on seawater desalination plant membranes have been characterised after full operational lifecycles. The membranes were used for seven years to purify water by reverse osmosis. Biofouling can seriously impair the efficiency of the membranes but the problem has not previously been well characterised, especially after a full life-span of membrane operation. Veena Nagaraj and colleagues at Murdoch University in Australia investigated biofilms and used genetic analysis to identify the bacteria growing on 14 used membranes, and compared the results with pre-existing contamination on unused membranes. The research revealed that operational conditions favour the growth of specific bacterial populations, predominantly Proteobacteria, but also Bacteriodetes and Firmicutes. The results should assist research to devise new methods to prevent and alleviate the biofouling of desalination plant membranes and maximise the efficiency of their operation.https://doi.org/10.1038/s41522-017-0021-6
collection DOAJ
language English
format Article
sources DOAJ
author Veena Nagaraj
Lucy Skillman
Goen Ho
Dan Li
Alexander Gofton
spellingShingle Veena Nagaraj
Lucy Skillman
Goen Ho
Dan Li
Alexander Gofton
Characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16S rRNA gene metabarcoding
npj Biofilms and Microbiomes
author_facet Veena Nagaraj
Lucy Skillman
Goen Ho
Dan Li
Alexander Gofton
author_sort Veena Nagaraj
title Characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16S rRNA gene metabarcoding
title_short Characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16S rRNA gene metabarcoding
title_full Characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16S rRNA gene metabarcoding
title_fullStr Characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16S rRNA gene metabarcoding
title_full_unstemmed Characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16S rRNA gene metabarcoding
title_sort characterisation and comparison of bacterial communities on reverse osmosis membranes of a full-scale desalination plant by bacterial 16s rrna gene metabarcoding
publisher Nature Publishing Group
series npj Biofilms and Microbiomes
issn 2055-5008
publishDate 2017-06-01
description Biofouling: Biofilms and microbes on desalination membranes The diverse microbial populations on seawater desalination plant membranes have been characterised after full operational lifecycles. The membranes were used for seven years to purify water by reverse osmosis. Biofouling can seriously impair the efficiency of the membranes but the problem has not previously been well characterised, especially after a full life-span of membrane operation. Veena Nagaraj and colleagues at Murdoch University in Australia investigated biofilms and used genetic analysis to identify the bacteria growing on 14 used membranes, and compared the results with pre-existing contamination on unused membranes. The research revealed that operational conditions favour the growth of specific bacterial populations, predominantly Proteobacteria, but also Bacteriodetes and Firmicutes. The results should assist research to devise new methods to prevent and alleviate the biofouling of desalination plant membranes and maximise the efficiency of their operation.
url https://doi.org/10.1038/s41522-017-0021-6
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