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DNA- and RNA-SIP Reveal Nitrospira spp. as Key Drivers of Nitrification in Groundwater-Fed Biofilters

Nitrification, the oxidative process converting ammonia to nitrite and nitrate, is driven by microbes and plays a central role in the global nitrogen cycle. Our earlier investigations based on 16S rRNA and amoA amplicon analysis, amoA quantitative PCR and metagenomics of groundwater-fed biofilters i...

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Autores principales: Gülay, Arda, Fowler, S. Jane, Tatari, Karolina, Thamdrup, Bo, Albrechtsen, Hans-Jørgen, Al-Soud, Waleed Abu, Sørensen, Søren J., Smets, Barth F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6831773/
https://www.ncbi.nlm.nih.gov/pubmed/31690672
http://dx.doi.org/10.1128/mBio.01870-19
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author Gülay, Arda
Fowler, S. Jane
Tatari, Karolina
Thamdrup, Bo
Albrechtsen, Hans-Jørgen
Al-Soud, Waleed Abu
Sørensen, Søren J.
Smets, Barth F.
author_facet Gülay, Arda
Fowler, S. Jane
Tatari, Karolina
Thamdrup, Bo
Albrechtsen, Hans-Jørgen
Al-Soud, Waleed Abu
Sørensen, Søren J.
Smets, Barth F.
author_sort Gülay, Arda
collection PubMed
description Nitrification, the oxidative process converting ammonia to nitrite and nitrate, is driven by microbes and plays a central role in the global nitrogen cycle. Our earlier investigations based on 16S rRNA and amoA amplicon analysis, amoA quantitative PCR and metagenomics of groundwater-fed biofilters indicated a consistently high abundance of comammox Nitrospira. Here, we hypothesized that these nonclassical nitrifiers drive ammonia-N oxidation. Hence, we used DNA and RNA stable isotope probing (SIP) coupled with 16S rRNA amplicon sequencing to identify the active members in the biofilter community when subjected to a continuous supply of NH(4)(+) or NO(2)(−) in the presence of (13)C-HCO(3)(−) (labeled) or (12)C-HCO(3)(−) (unlabeled). Allylthiourea (ATU) and sodium chlorate were added to inhibit autotrophic ammonia- and nitrite-oxidizing bacteria, respectively. Our results confirmed that lineage II Nitrospira dominated ammonia oxidation in the biofilter community. A total of 78 (8 by RNA-SIP and 70 by DNA-SIP) and 96 (25 by RNA-SIP and 71 by DNA-SIP) Nitrospira phylotypes (at 99% 16S rRNA sequence similarity) were identified as complete ammonia- and nitrite-oxidizing, respectively. We also detected significant HCO(3)(−) uptake by Acidobacteria subgroup10, Pedomicrobium, Rhizobacter, and Acidovorax under conditions that favored ammonia oxidation. Canonical Nitrospira alone drove nitrite oxidation in the biofilter community, and activity of archaeal ammonia-oxidizing taxa was not detected in the SIP fractions. This study provides the first in situ evidence of ammonia oxidation by comammox Nitrospira in an ecologically relevant complex microbiome.
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spelling pubmed-68317732019-11-08 DNA- and RNA-SIP Reveal Nitrospira spp. as Key Drivers of Nitrification in Groundwater-Fed Biofilters Gülay, Arda Fowler, S. Jane Tatari, Karolina Thamdrup, Bo Albrechtsen, Hans-Jørgen Al-Soud, Waleed Abu Sørensen, Søren J. Smets, Barth F. mBio Research Article Nitrification, the oxidative process converting ammonia to nitrite and nitrate, is driven by microbes and plays a central role in the global nitrogen cycle. Our earlier investigations based on 16S rRNA and amoA amplicon analysis, amoA quantitative PCR and metagenomics of groundwater-fed biofilters indicated a consistently high abundance of comammox Nitrospira. Here, we hypothesized that these nonclassical nitrifiers drive ammonia-N oxidation. Hence, we used DNA and RNA stable isotope probing (SIP) coupled with 16S rRNA amplicon sequencing to identify the active members in the biofilter community when subjected to a continuous supply of NH(4)(+) or NO(2)(−) in the presence of (13)C-HCO(3)(−) (labeled) or (12)C-HCO(3)(−) (unlabeled). Allylthiourea (ATU) and sodium chlorate were added to inhibit autotrophic ammonia- and nitrite-oxidizing bacteria, respectively. Our results confirmed that lineage II Nitrospira dominated ammonia oxidation in the biofilter community. A total of 78 (8 by RNA-SIP and 70 by DNA-SIP) and 96 (25 by RNA-SIP and 71 by DNA-SIP) Nitrospira phylotypes (at 99% 16S rRNA sequence similarity) were identified as complete ammonia- and nitrite-oxidizing, respectively. We also detected significant HCO(3)(−) uptake by Acidobacteria subgroup10, Pedomicrobium, Rhizobacter, and Acidovorax under conditions that favored ammonia oxidation. Canonical Nitrospira alone drove nitrite oxidation in the biofilter community, and activity of archaeal ammonia-oxidizing taxa was not detected in the SIP fractions. This study provides the first in situ evidence of ammonia oxidation by comammox Nitrospira in an ecologically relevant complex microbiome. American Society for Microbiology 2019-11-05 /pmc/articles/PMC6831773/ /pubmed/31690672 http://dx.doi.org/10.1128/mBio.01870-19 Text en Copyright © 2019 Gülay et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Gülay, Arda
Fowler, S. Jane
Tatari, Karolina
Thamdrup, Bo
Albrechtsen, Hans-Jørgen
Al-Soud, Waleed Abu
Sørensen, Søren J.
Smets, Barth F.
DNA- and RNA-SIP Reveal Nitrospira spp. as Key Drivers of Nitrification in Groundwater-Fed Biofilters
title DNA- and RNA-SIP Reveal Nitrospira spp. as Key Drivers of Nitrification in Groundwater-Fed Biofilters
title_full DNA- and RNA-SIP Reveal Nitrospira spp. as Key Drivers of Nitrification in Groundwater-Fed Biofilters
title_fullStr DNA- and RNA-SIP Reveal Nitrospira spp. as Key Drivers of Nitrification in Groundwater-Fed Biofilters
title_full_unstemmed DNA- and RNA-SIP Reveal Nitrospira spp. as Key Drivers of Nitrification in Groundwater-Fed Biofilters
title_short DNA- and RNA-SIP Reveal Nitrospira spp. as Key Drivers of Nitrification in Groundwater-Fed Biofilters
title_sort dna- and rna-sip reveal nitrospira spp. as key drivers of nitrification in groundwater-fed biofilters
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6831773/
https://www.ncbi.nlm.nih.gov/pubmed/31690672
http://dx.doi.org/10.1128/mBio.01870-19
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