Literature DB >> 16535749

Dissimilatory nitrate reduction in anaerobic sediments leading to river nitrite accumulation.

B Kelso, R V Smith, R J Laughlin, S D Lennox.   

Abstract

Recent studies on Northern Ireland rivers have shown that summer nitrite (NO(inf2)(sup-)) concentrations greatly exceed the European Union guideline of 3 (mu)g of N liter(sup-1) for rivers supporting salmonid fisheries. In fast-flowing aerobic small streams, NO(inf2)(sup-) is thought to originate from nitrification, due to the retardation of Nitrobacter strains by the presence of free ammonia. Multiple regression analyses of NO(inf2)(sup-) concentrations against water quality variables of the six major rivers of the Lough Neagh catchment in Northern Ireland, however, suggested that the high NO(inf2)(sup-) concentrations found in the summer under warm, slow-flow conditions may result from the reduction of NO(inf3)(sup-). This hypothesis was supported by field observations of weekly changes in N species. Here, reduction of NO(inf3)(sup-) was observed to occur simultaneously with elevation of NO(inf2)(sup-) levels and subsequently NH(inf4)(sup+) levels, indicating that dissimilatory NO(inf3)(sup-) reduction to NH(inf4)(sup+) (DNRA) performed by fermentative bacteria (e.g., Aeromonas and Vibrio spp.) is responsible for NO(inf2)(sup-) accumulation in these large rivers. Mechanistic studies in which (sup15)N-labelled NO(inf3)(sup-) in sediment extracts was used provided further support for this hypothesis. Maximal concentrations of NO(inf2)(sup-) accumulation (up to 1.4 mg of N liter(sup-1)) were found in sediments deeper than 6 cm associated with a high concentration of metabolizable carbon and anaerobic conditions. The (sup15)N enrichment of the NO(inf2)(sup-) was comparable to that of the NO(inf3)(sup-) pool, indicating that the NO(inf2)(sup-) was predominantly NO(inf3)(sup-) derived. There is evidence which suggests that the high NO(inf2)(sup-) concentrations observed arose from the inhibition of the DNRA NO(inf2)(sup-) reductase system by NO(inf3)(sup-).

Entities:  

Year:  1997        PMID: 16535749      PMCID: PMC1389305          DOI: 10.1128/aem.63.12.4679-4685.1997

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  12 in total

1.  Capacity for denitrification and reduction of nitrate to ammonia in a coastal marine sediment.

Authors:  J Sørensen
Journal:  Appl Environ Microbiol       Date:  1978-02       Impact factor: 4.792

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Authors:  K Martin; L L Parsons; R E Murray; M S Smith
Journal:  Appl Environ Microbiol       Date:  1988-11       Impact factor: 4.792

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Authors:  A Oren; T H Blackburn
Journal:  Appl Environ Microbiol       Date:  1979-01       Impact factor: 4.792

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Authors:  A C Anthonisen; R C Loehr; T B Prakasam; E G Srinath
Journal:  J Water Pollut Control Fed       Date:  1976-05

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Authors:  M P Gutzmer; J R Tomasso
Journal:  Bull Environ Contam Toxicol       Date:  1985-03       Impact factor: 2.151

Review 6.  Denitrification: ecological niches, competition and survival.

Authors:  J M Tiedje; A J Sexstone; D D Myrold; J A Robinson
Journal:  Antonie Van Leeuwenhoek       Date:  1982       Impact factor: 2.271

Review 7.  Reduction of nitrogenous oxides by microorganisms.

Authors:  W J Payne
Journal:  Bacteriol Rev       Date:  1973-12

8.  Effects of Nitrate Availability and the Presence of Glyceria maxima on the Composition and Activity of the Dissimilatory Nitrate-Reducing Bacterial Community.

Authors:  J W Nijburg; M Coolen; S Gerards; P Gunnewiek; H J Laanbroek
Journal:  Appl Environ Microbiol       Date:  1997-03       Impact factor: 4.792

9.  Biochemical and ultrastructural effects of nitrite in rainbow trout: liver hypoxia as the root of the acute toxicity mechanism.

Authors:  A Arillo; E Gaino; C Margiocco; P Mensi; G Schenone
Journal:  Environ Res       Date:  1984-06       Impact factor: 6.498

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Authors:  H F Kaspar; J M Tiedje; R B Firestone
Journal:  Can J Microbiol       Date:  1981-09       Impact factor: 2.419

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  27 in total

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Authors:  Carsten U Schwermer; Gaute Lavik; Raeid M M Abed; Braden Dunsmore; Timothy G Ferdelman; Paul Stoodley; Armin Gieseke; Dirk de Beer
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3.  Changes in community structure of sediment bacteria along the Florida coastal everglades marsh-mangrove-seagrass salinity gradient.

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4.  The effects of hypoxia on sediment nitrogen cycling in the Baltic Sea.

Authors:  Helena Jäntti; Susanna Hietanen
Journal:  Ambio       Date:  2012-01-14       Impact factor: 5.129

5.  Quantifying the effects of surface conveyance of treated wastewater effluent on groundwater, surface water, and nutrient dynamics in a large river floodplain.

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6.  Impact of habitat heterogeneity on zooplankton assembly in a temperate river-floodplain system.

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7.  Efficiency and detrimental side effects of denitrifying bioreactors for nitrate reduction in drainage water.

Authors:  Gabriele Weigelhofer; Thomas Hein
Journal:  Environ Sci Pollut Res Int       Date:  2015-05-06       Impact factor: 4.223

8.  Nitrite Control over Dissimilatory Nitrate/Nitrite Reduction Pathways in Shewanella loihica Strain PV-4.

Authors:  Sukhwan Yoon; Robert A Sanford; Frank E Löffler
Journal:  Appl Environ Microbiol       Date:  2015-03-13       Impact factor: 4.792

9.  Intracellular conversion of environmental nitrate and nitrite to nitric oxide with resulting developmental toxicity to the crustacean Daphnia magna.

Authors:  Bethany R Hannas; Parikshit C Das; Hong Li; Gerald A LeBlanc
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10.  Effects of carbon substrates on nitrite accumulation in freshwater sediments

Authors: 
Journal:  Appl Environ Microbiol       Date:  1999-01       Impact factor: 4.792

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