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Metagenomic insights into mixotrophic denitrification facilitated nitrogen removal in a full-scale A2/O wastewater treatment plant.
- Source :
-
PloS one [PLoS One] 2021 Apr 15; Vol. 16 (4), pp. e0250283. Date of Electronic Publication: 2021 Apr 15 (Print Publication: 2021). - Publication Year :
- 2021
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Abstract
- Wastewater treatment plants (WWTPs) are important for pollutant removal from wastewater, elimination of point discharges of nutrients into the environment and water resource protection. The anaerobic/anoxic/oxic (A2/O) process is widely used in WWTPs for nitrogen removal, but the requirement for additional organics to ensure a suitable nitrogen removal efficiency makes this process costly and energy consuming. In this study, we report mixotrophic denitrification at a low COD (chemical oxygen demand)/TN (total nitrogen) ratio in a full-scale A2/O WWTP with relatively high sulfate in the inlet. Nitrogen and sulfur species analysis in different units of this A2/O WWTP showed that the internal sulfur cycle of sulfate reduction and reoxidation occurred and that the reduced sulfur species might contribute to denitrification. Microbial community analysis revealed that Thiobacillus, an autotrophic sulfur-oxidizing denitrifier, dominated the activated sludge bacterial community. Metagenomics data also supported the potential of sulfur-based denitrification when high levels of denitrification occurred, and sulfur oxidation and sulfate reduction genes coexisted in the activated sludge. Although most of the denitrification genes were affiliated with heterotrophic denitrifiers with high abundance, the narG and napA genes were mainly associated with autotrophic sulfur-oxidizing denitrifiers. The functional genes related to nitrogen removal were actively expressed even in the unit containing relatively highly reduced sulfur species, indicating that the mixotrophic denitrification process in A2/O could overcome not only a shortage of carbon sources but also the inhibition by reduced sulfur of nitrification and denitrification. Our results indicate that a mixotrophic denitrification process could be developed in full-scale WWTPs and reduce the requirement for additional carbon sources, which could endow WWTPs with more flexible and adaptable nitrogen removal.<br />Competing Interests: No authors have competing interests.
- Subjects :
- Aerobiosis genetics
Anaerobiosis genetics
Autotrophic Processes genetics
Bacteria genetics
Bacteria isolation & purification
Bacteria metabolism
Bacteroidetes genetics
Bacteroidetes isolation & purification
Bacteroidetes metabolism
Biological Oxygen Demand Analysis methods
Chloroflexi genetics
Chloroflexi isolation & purification
Chloroflexi metabolism
Gene Expression
Humans
Nitrate Reductase metabolism
Nitrogen chemistry
Oxidation-Reduction
Proteobacteria genetics
Proteobacteria isolation & purification
Proteobacteria metabolism
Sulfur chemistry
Thiobacillus enzymology
Thiobacillus genetics
Water Purification methods
Bacterial Proteins genetics
Denitrification genetics
Metagenome
Nitrate Reductase genetics
Nitrogen metabolism
Sulfur metabolism
Wastewater microbiology
Subjects
Details
- Language :
- English
- ISSN :
- 1932-6203
- Volume :
- 16
- Issue :
- 4
- Database :
- MEDLINE
- Journal :
- PloS one
- Publication Type :
- Academic Journal
- Accession number :
- 33857258
- Full Text :
- https://doi.org/10.1371/journal.pone.0250283