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Sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics

Membrane-aerated biofilm reactors performing autotrophic nitrogen removal can be successfully applied to treat concentrated nitrogen streams. However, their process performance is seriously hampered by the growth of nitrite oxidizing bacteria (NOB). In this work we document how sequential aeration c...

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Autores principales: Pellicer-Nàcher, Carles, Franck, Stéphanie, Gülay, Arda, Ruscalleda, Maël, Terada, Akihiko, Al-Soud, Waleed Abu, Hansen, Martin Asser, Sørensen, Søren J, Smets, Barth F
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3896934/
https://www.ncbi.nlm.nih.gov/pubmed/24112350
http://dx.doi.org/10.1111/1751-7915.12079
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author Pellicer-Nàcher, Carles
Franck, Stéphanie
Gülay, Arda
Ruscalleda, Maël
Terada, Akihiko
Al-Soud, Waleed Abu
Hansen, Martin Asser
Sørensen, Søren J
Smets, Barth F
author_facet Pellicer-Nàcher, Carles
Franck, Stéphanie
Gülay, Arda
Ruscalleda, Maël
Terada, Akihiko
Al-Soud, Waleed Abu
Hansen, Martin Asser
Sørensen, Søren J
Smets, Barth F
author_sort Pellicer-Nàcher, Carles
collection PubMed
description Membrane-aerated biofilm reactors performing autotrophic nitrogen removal can be successfully applied to treat concentrated nitrogen streams. However, their process performance is seriously hampered by the growth of nitrite oxidizing bacteria (NOB). In this work we document how sequential aeration can bring the rapid and long-term suppression of NOB and the onset of the activity of anaerobic ammonium oxidizing bacteria (AnAOB). Real-time quantitative polymerase chain reaction analyses confirmed that such shift in performance was mirrored by a change in population densities, with a very drastic reduction of the NOB Nitrospira and Nitrobacter and a 10-fold increase in AnAOB numbers. The study of biofilm sections with relevant 16S rRNA fluorescent probes revealed strongly stratified biofilm structures fostering aerobic ammonium oxidizing bacteria (AOB) in biofilm areas close to the membrane surface (rich in oxygen) and AnAOB in regions neighbouring the liquid phase. Both communities were separated by a transition region potentially populated by denitrifying heterotrophic bacteria. AOB and AnAOB bacterial groups were more abundant and diverse than NOB, and dominated by the r-strategists Nitrosomonas europaea and Ca. Brocadia anammoxidans, respectively. Taken together, the present work presents tools to better engineer, monitor and control the microbial communities that support robust, sustainable and efficient nitrogen removal.
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spelling pubmed-38969342014-02-12 Sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics Pellicer-Nàcher, Carles Franck, Stéphanie Gülay, Arda Ruscalleda, Maël Terada, Akihiko Al-Soud, Waleed Abu Hansen, Martin Asser Sørensen, Søren J Smets, Barth F Microb Biotechnol Research Articles Membrane-aerated biofilm reactors performing autotrophic nitrogen removal can be successfully applied to treat concentrated nitrogen streams. However, their process performance is seriously hampered by the growth of nitrite oxidizing bacteria (NOB). In this work we document how sequential aeration can bring the rapid and long-term suppression of NOB and the onset of the activity of anaerobic ammonium oxidizing bacteria (AnAOB). Real-time quantitative polymerase chain reaction analyses confirmed that such shift in performance was mirrored by a change in population densities, with a very drastic reduction of the NOB Nitrospira and Nitrobacter and a 10-fold increase in AnAOB numbers. The study of biofilm sections with relevant 16S rRNA fluorescent probes revealed strongly stratified biofilm structures fostering aerobic ammonium oxidizing bacteria (AOB) in biofilm areas close to the membrane surface (rich in oxygen) and AnAOB in regions neighbouring the liquid phase. Both communities were separated by a transition region potentially populated by denitrifying heterotrophic bacteria. AOB and AnAOB bacterial groups were more abundant and diverse than NOB, and dominated by the r-strategists Nitrosomonas europaea and Ca. Brocadia anammoxidans, respectively. Taken together, the present work presents tools to better engineer, monitor and control the microbial communities that support robust, sustainable and efficient nitrogen removal. Blackwell Publishing Ltd 2014-01 2013-10-01 /pmc/articles/PMC3896934/ /pubmed/24112350 http://dx.doi.org/10.1111/1751-7915.12079 Text en © 2013 The Authors. Microbial Biotechnology published by John Wiley & Sons Ltd and Society for Applied Microbiology http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Research Articles
Pellicer-Nàcher, Carles
Franck, Stéphanie
Gülay, Arda
Ruscalleda, Maël
Terada, Akihiko
Al-Soud, Waleed Abu
Hansen, Martin Asser
Sørensen, Søren J
Smets, Barth F
Sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics
title Sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics
title_full Sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics
title_fullStr Sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics
title_full_unstemmed Sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics
title_short Sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics
title_sort sequentially aerated membrane biofilm reactors for autotrophic nitrogen removal: microbial community composition and dynamics
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3896934/
https://www.ncbi.nlm.nih.gov/pubmed/24112350
http://dx.doi.org/10.1111/1751-7915.12079
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