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Estimation of Bacterial Nitrate Reduction Rates at in Situ Concentrations in Freshwater Sediments

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Date 1987 Feb 1
PMID 16347270
Citations 4
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Abstract

A method was developed to follow bacterial nitrate reduction in freshwater sediments by using common high-performance liquid chromatographic equipment. The low detection limit (14 pmol) of the method enabled us to study concentration profiles and reaction kinetics under natural conditions. Significant nitrate concentrations (1 to 27 muM) were observed in the sediment of Lake Vechten during the nonstratified period; the concentration profiles showed a successive depletion of oxygen, nitrate, and sulfate with depth. The profiles were restricted to the upper 3 cm of the sediment which is rich in organics and loosely structured. Nitrate reduction in the sediment-water interface followed first-order reaction kinetics at in situ concentrations. Remarkably high potential nitrate-reducing activity was observed in the part of the sediment in which nitrate did not diffuse. This activity was also observed throughout the whole year. Estimates of K(m) varied between 17 and 100 muM and V(max) varied between 7.2 and 36 mumol cm day for samples taken at different depths. The diffusion coefficient of nitrate ([10 +/- 0.4] x 10 cm s) across the sediment-water interface was estimated by a constant-source technique and applied to a mathematical model to estimate the net nitrate reduction during the nonstratified period. In this period, observed nitrate reduction rates by the model, 0.2 to 0.4 mmol m day, were lower than those found for oxygen (27 mmol m day) and sulfate (0.4 mmol m day). During the summer stratification, nitrate was absent in the sediment and reduction could not be estimated by the model.

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References
1.
Peck Jr H, LeGall J . Biochemistry of dissimilatory sulphate reduction. Philos Trans R Soc Lond B Biol Sci. 1982; 298(1093):443-66. DOI: 10.1098/rstb.1982.0091. View

2.
Kaspar H . Denitrification in marine sediment: measurement of capacity and estimate of in situ rate. Appl Environ Microbiol. 1982; 43(3):522-7. PMC: 241868. DOI: 10.1128/aem.43.3.522-527.1982. 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.
Oren A, Blackburn T . Estimation of sediment denitrification rates at in situ nitrate concentrations. Appl Environ Microbiol. 1979; 37(1):174-6. PMC: 243419. DOI: 10.1128/aem.37.1.174-176.1979. View

5.
Marko-Varga G, Csiky I, Jonsson J . Ion chromatographic determination of nitrate and sulfate in natural waters containing humic substances. Anal Chem. 1984; 56(12):2066-9. DOI: 10.1021/ac00276a020. View