Articles | Volume 12, issue 3
https://doi.org/10.5194/bg-12-769-2015
https://doi.org/10.5194/bg-12-769-2015
Research article
 | 
10 Feb 2015
Research article |  | 10 Feb 2015

Characterization of incubation experiments and development of an enrichment culture capable of ammonium oxidation under iron-reducing conditions

S. Huang and P. R. Jaffé

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Cited articles

Abbassi, R., Yadav, A. K., Huang, S., and Jaffé, P. R.: Laboratory Study of Nitrification, Denitrification and Anammox Processes in Membrane Bioreactors Considering Periodic Aeration, J. Environ. Manage., 142, 53–59, 2014.
Bond, P. L., Druschel, G. K., and Banfield, J. F.: Comparison of Acid Mine Drainage Microbial Communities in Physically and Geochemically Distinct Ecosystems, Appl. Environ. Microbiol., 66, 4962–4971, 2000.
Braker, G., Fesefeldt, A., and Witzel, K. P.: Development of PCR primer systems for amplification of nitrite reductase genes (nirK and nirS) to detect denitrifying bacteria in environmental samples, Appl. Environ. Microbiol., 64, 3769–3775, 1998.
Canfield, D. E., Glazer, A. N., and Falkowski, P. G.: The evolution and future of earth's nitrogen cycle, Science, 330, 192–196, 2010.
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Short summary
Significant changes in the microbial community were observed during 180-day incubations of soil samples from a wetland where Feammox activity has been observed previously, as well as in a continuous flow membrane reactor. Results indicate that the dominant microbial species, an uncultured Acidimicrobiaceae bacterium A6 belonging to the Acidimicrobiaceae family, plays a key role in this anaerobic biological process using ferric iron as an electron acceptor while oxidizing ammonium to nitrite.
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