Diversity, Abundance, and Potential Activity of Nitrifying and Nitrate-Reducing Microbial Assemblages in a Subglacial Ecosystem
Open Access
- 15 July 2011
- journal article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 77 (14), 4778-4787
- https://doi.org/10.1128/aem.00376-11
Abstract
Subglacial sediments sampled from beneath Robertson Glacier (RG), Alberta, Canada, were shown to harbor diverse assemblages of potential nitrifiers, nitrate reducers, and diazotrophs, as assessed by amoA, narG, and nifH gene biomarker diversity. Although archaeal amoA genes were detected, they were less abundant and less diverse than bacterial amoA, suggesting that bacteria are the predominant nitrifiers in RG sediments. Maximum nitrification and nitrate reduction rates in microcosms incubated at 4°C were 280 and 18.5 nmol of N per g of dry weight sediment per day, respectively, indicating the potential for these processes to occur in situ. Geochemical analyses of subglacial sediment pore waters and bulk subglacial meltwaters revealed low concentrations of inorganic and organic nitrogen compounds. These data, when coupled with a C/N atomic ratio of dissolved organic matter in subglacial pore waters of ∼210, indicate that the sediment communities are N limited. This may reflect the combined biological activities of organic N mineralization, nitrification, and nitrate reduction. Despite evidence of N limitation and the detection of nifH, we were unable to detect biological nitrogen fixation activity in subglacial sediments. Collectively, the results presented here suggest a role for nitrification and nitrate reduction in sustaining microbial life in subglacial environments. Considering that ice currently covers 11% of the terrestrial landmass and has covered significantly greater portions of Earth at times in the past, the demonstration of nitrification and nitrate reduction in subglacial environments furthers our understanding of the potential for these environments to contribute to global biogeochemical cycles on glacial-interglacial timescales.Keywords
This publication has 71 references indexed in Scilit:
- Methanogenesis in subglacial sedimentsEnvironmental Microbiology Reports, 2010
- Abundance of Ammonia-Oxidizing Archaea and Bacteria along an Estuarine Salinity Gradient in Relation to Potential Nitrification RatesApplied and Environmental Microbiology, 2010
- Changes in Benthic Denitrification, Nitrate Ammonification, and Anammox Process Rates and Nitrate and Nitrite Reductase Gene Abundances along an Estuarine Nutrient Gradient (the Colne Estuary, United Kingdom)Applied and Environmental Microbiology, 2009
- Changes in ocean denitrification during Late Carboniferous glacial–interglacial cyclesNature Geoscience, 2008
- Isolation, Characterization, and Ecology of Sulfur-Respiring Crenarchaea Inhabiting Acid-Sulfate-Chloride-Containing Geothermal Springs in Yellowstone National ParkApplied and Environmental Microbiology, 2007
- Relative Abundances of Proteobacterial Membrane-Bound and Periplasmic Nitrate Reductases in Selected EnvironmentsApplied and Environmental Microbiology, 2007
- Clustal W and Clustal X version 2.0Bioinformatics, 2007
- Diversity and Abundance of Nitrate Reductase Genes ( narG and napA ), Nitrite Reductase Genes ( nirS and nrfA ), and Their Transcripts in Estuarine SedimentsApplied and Environmental Microbiology, 2007
- Distinct Bacterial Communities Exist beneath a High Arctic Polythermal GlacierApplied and Environmental Microbiology, 2006
- Archaeal nitrification in the oceanProceedings of the National Academy of Sciences, 2006