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Dissimilatory Nitrate Reduction in Anaerobic Sediments Leading to River Nitrite Accumulation

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Date 2006 Mar 15
PMID 16535749
Citations 30
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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-).

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References
1.
Gutzmer M, Tomasso J . Nitrite toxicity to the crayfish Procambarus clarkii. Bull Environ Contam Toxicol. 1985; 34(3):369-76. DOI: 10.1007/BF01609747. View

2.
Arillo A, Gaino E, Margiocco C, Mensi P, Schenone G . Biochemical and ultrastructural effects of nitrite in rainbow trout: liver hypoxia as the root of the acute toxicity mechanism. Environ Res. 1984; 34(1):135-54. DOI: 10.1016/0013-9351(84)90083-5. View

3.
Tiedje J, Sexstone A, Myrold D, Robinson J . Denitrification: ecological niches, competition and survival. Antonie Van Leeuwenhoek. 1982; 48(6):569-83. DOI: 10.1007/BF00399542. View

4.
Kaspar H, Tiedje J, Firestone R . Denitrification and dissimilatory nitrate reduction to ammonium in digested sludge. Can J Microbiol. 1981; 27(9):878-85. DOI: 10.1139/m81-139. View

5.
Payne W . Reduction of nitrogenous oxides by microorganisms. Bacteriol Rev. 1973; 37(4):409-52. PMC: 413830. DOI: 10.1128/br.37.4.409-452.1973. View