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Evidence of co-metabolic bentazone transformation by methanotrophic enrichment from a groundwater-fed rapid sand filter
- Source :
- Hedegaard, M J, Deliniere, H, Prasse, C, Dechesne, A, Smets, B F & Albrechtsen, H-J 2018, ' Evidence of co-metabolic bentazone transformation by methanotrophic enrichment from a groundwater-fed rapid sand filter ', Water Research, vol. 129, pp. 105-114 . https://doi.org/10.1016/j.watres.2017.10.073
- Publication Year :
- 2018
- Publisher :
- Elsevier BV, 2018.
-
Abstract
- The herbicide bentazone is recalcitrant in aquifers and is therefore frequently detected in wells used for drinking water production. However, bentazone degradation has been observed in filter sand from a rapid sand filter at a waterworks with methane-rich groundwater. Here, the association between methane oxidation and removal of bentazone was investigated with a methanotrophic enrichment culture derived from methane-fed column reactors inoculated with that filter sand. Several independent lines of evidence obtained from microcosm experiments with the methanotrophic enrichment culture, tap water and bentazone at concentrations below 2 mg/L showed methanotrophic co-metabolic bentazone transformation: The culture removed 53% of the bentazone in 21 days in presence of 5 mg/L of methane, while only 31% was removed in absence of methane. Addition of acetylene inhibited methane oxidation and stopped bentazone removal. The presence of bentazone partly inhibited methane oxidation since the methane consumption rate was significantly lower at high (1 mg/L) than at low (1 μg/L) bentazone concentrations. The transformation yield of methane relative to bentazone normalized by their concentration ratio ranged from 58 to 158, well within the range for methanotrophic co-metabolic degradation of trace contaminants calculated from the literature, with normalized substrate preferences varying from 3 to 400. High-resolution mass spectrometry revealed formation of the transformation products (TPs) 6-OH, 8-OH, isopropyl-OH and di-OH-bentazone, with higher abundances of all TPs in the presence of methane. Overall, we found a suite of evidence all showing that bentazone was co-metabolically transformed to hydroxy-bentazone by a methanotrophic culture enriched from a rapid sand filter at a waterworks.
- Subjects :
- 0301 basic medicine
Methane oxidation
Environmental Engineering
Bentazone
Portable water purification
010501 environmental sciences
Benzothiadiazines
01 natural sciences
Enrichment culture
Methane
Water Purification
Degradation
03 medical and health sciences
chemistry.chemical_compound
Bioreactors
Tap water
Rapid sand filter
Pesticides
Groundwater
Waste Management and Disposal
0105 earth and related environmental sciences
Water Science and Technology
Civil and Structural Engineering
Herbicides
Chemistry
Ecological Modeling
Silicon Dioxide
Pollution
Biodegradation, Environmental
030104 developmental biology
Environmental chemistry
Anaerobic oxidation of methane
Co-metabolism
Water treatment
Microcosm
Oxidation-Reduction
Filtration
Subjects
Details
- ISSN :
- 00431354
- Volume :
- 129
- Database :
- OpenAIRE
- Journal :
- Water Research
- Accession number :
- edsair.doi.dedup.....a0055c4ff3b2b92d2c1e751653258ee5
- Full Text :
- https://doi.org/10.1016/j.watres.2017.10.073