Characterization of an Autotrophic Nitrogen-Removing Biofilm from a Highly Loaded Lab-Scale Rotating Biological Contactor
- 1 June 2003
- journal article
- research article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 69 (6) , 3626-3635
- https://doi.org/10.1128/aem.69.6.3626-3635.2003
Abstract
In this study, a lab-scale rotating biological contactor (RBC) treating a synthetic NH4+ wastewater devoid of organic carbon and showing high N losses was examined for several important physiological and microbial characteristics. The RBC biofilm removed 89% ± 5% of the influent N at the highest surface load of approximately 8.3 g of N m−2 day−1, with N2 as the main end product. In batch tests, the RBC biomass showed good aerobic and anoxic ammonium oxidation (147.8 ± 7.6 and 76.5 ± 6.4 mg of NH4+-N g of volatile suspended solids [VSS]−1 day−1, respectively) and almost no nitrite oxidation (< 1 mg of N g of VSS−1 day−1). The diversity of aerobic ammonia-oxidizing bacteria (AAOB) and planctomycetes in the biofilm was characterized by cloning and sequencing of PCR-amplified partial 16S rRNA genes. Phylogenetic analysis of the clones revealed that the AAOB community was fairly homogeneous and was dominated by Nitrosomonas-like species. Close relatives of the known anaerobic ammonia-oxidizing bacterium (AnAOB) Kuenenia stuttgartiensis dominated the planctomycete community and were most probably responsible for anoxic ammonium oxidation in the RBC. Use of a less specific planctomycete primer set, not amplifying the AnAOB, showed a high diversity among other planctomycetes, with representatives of all known groups present in the biofilm. The spatial organization of the biofilm was characterized using fluorescence in situ hybridization (FISH) with confocal scanning laser microscopy (CSLM). The latter showed that AAOB occurred side by side with putative AnAOB (cells hybridizing with probe PLA46 and AMX820/KST1275) throughout the biofilm, while other planctomycetes hybridizing with probe PLA886 (not detecting the known AnAOB) were present as very conspicuous spherical structures. This study reveals that long-term operation of a lab-scale RBC on a synthetic NH4+ wastewater devoid of organic carbon yields a stable biofilm in which two bacterial groups, thought to be jointly responsible for the high autotrophic N removal, occur side by side throughout the biofilm.Keywords
This publication has 61 references indexed in Scilit:
- Anaerobic Ammonia Oxidation in the Presence of Nitrogen Oxides (NO
x
) by Two Different LithotrophsApplied and Environmental Microbiology, 2002
- Completely autotrophic nitrogen removal over nitrite in one single reactorWater Research, 2002
- Genetic Diversity among 3-Chloroaniline- and Aniline-Degrading Strains of the ComamonadaceaeApplied and Environmental Microbiology, 2001
- Novel Bacterial Lineages at the (Sub)Division Level as Detected by Signature Nucleotide-Targeted Recovery of 16S rRNA Genes from Bulk Soil and Rice Roots of Flooded Rice MicrocosmsApplied and Environmental Microbiology, 2001
- Community analysis of ammonia-oxidising bacteria, in relation to oxygen availability in soils and root-oxygenated sediments, using PCR, DGGE and oligonucleotide probe hybridisationFEMS Microbiology Ecology, 1998
- Monitoring a widespread bacterial group: in situ detection of planctomycetes with 16S rRNA-targeted probesMicrobiology, 1998
- Community analysis of ammonia-oxidising bacteria, in relation to oxygen availability in soils and root-oxygenated sediments, using PCR, DGGE and oligonucleotide probe hybridisationFEMS Microbiology Ecology, 1998
- Simultaneous nitrification/denitrification in an aerobic biofilm systemWater Science & Technology, 1998
- The planctomycetes: emerging models for microbial ecology, evolution and cell biologyMicrobiology, 1995
- Steam distillation methods for determination of ammonium, nitrate and nitriteAnalytica Chimica Acta, 1965