Aerobic degradation of 4-fluoroaniline and 2,4-difluoroaniline: performance and microbial community in response to the inocula
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Zhi-Qing Zhao | Xiaoli Shen | Rui Fan | G. Abbas | Xiao-Meng Wei | Yi Jin | Ghulam Abbas
[1] Meng Li,et al. Bioaugmentation of sequencing batch reactor for aniline treatment during start-up period: Investigation of microbial community structure of activated sludge. , 2020, Chemosphere.
[2] Guoliang Zhang,et al. Cometabolic degradation of p-chloroaniline by the genus Brevibacillus bacteria with extra carbon sources. , 2020, Journal of hazardous materials.
[3] Yuan Xu,et al. Highly efficient anaerobic co-degradation of complex persistent polycyclic aromatic hydrocarbons by a bioelectrochemical system. , 2020, Journal of hazardous materials.
[4] Yongjun Zhao,et al. Nutrient and heavy metal removal from piggery wastewater and CH4 enrichment in biogas based on microalgae cultivation technology under different initial inoculum concentration , 2019, Water environment research : a research publication of the Water Environment Federation.
[5] A. Singh,et al. Kinetics of hydrocarbon degradation by a newly isolated heavy metal tolerant bacterium Novosphingobium panipatense P5:ABC. , 2019, Bioresource technology.
[6] G. Abbas,et al. Evaluation of Inoculum Sources for Aerobic Treatment of 2,3,4-Trifluoroaniline During Start-up and Shock , 2019, Water, Air, & Soil Pollution.
[7] R. Guo,et al. Degradation of Bisphenol S by a Bacterial Consortium Enriched from River Sediments , 2019, Bulletin of Environmental Contamination and Toxicology.
[8] Yan-wei Shi,et al. Microbial community assembly in detergent wastewater treatment bioreactors: Influent rather than inoculum source plays a more important role. , 2019, Bioresource technology.
[9] Wen‐Jing Zhang,et al. Degradation of 3-fluoroanilne by Rhizobium sp. JF-3 , 2019, Biodegradation.
[10] Hongyu Wang,et al. Response and recovery of aerobic granular sludge to pH shock for simultaneous removal of aniline and nitrogen. , 2019, Chemosphere.
[11] Hongyu Wang,et al. Investigation of rapid granulation in SBRs treating aniline-rich wastewater with different aniline loading rates. , 2019, The Science of the total environment.
[12] Yongqing Zhang,et al. Evaluation of microbial p-chloroaniline degradation in bioelectrochemical reactors in the presence of easily-biodegrading cosubstrates: Degradation efficiency and bacterial community structure. , 2018, Bioresource technology.
[13] Seockheon Lee,et al. Negligible seeding source effect on the final ANAMMOX community under steady and high nitrogen loading rate after enrichment using poly(vinyl alcohol) gel carriers. , 2018, Chemosphere.
[14] P. Zheng,et al. Effect of inocula on performance of bio-cathode denitrification and its microbial mechanism , 2018, Chemical Engineering Journal.
[15] Qingping Wu,et al. Community Structure Analysis and Biodegradation Potential of Aniline-Degrading Bacteria in Biofilters , 2018, Current Microbiology.
[16] Xiaoyan Fan,et al. Shifts in bacterial community composition and abundance of nitrifiers during aerobic granulation in two nitrifying sequencing batch reactors. , 2018, Bioresource technology.
[17] M. Carvalho,et al. Biodegradation of mono-, di- and trifluoroacetate by microbial cultures with different origins. , 2017, New biotechnology.
[18] J. Xu,et al. Development and application of mixed cultures capable for decolorating and mineralizing azo dyes with an anaerobic-aerobic circle method , 2018 .
[19] T. Hidaka,et al. Effects of microbial activity on perfluorinated carboxylic acids (PFCAs) generation during aerobic biotransformation of fluorotelomer alcohols in activated sludge. , 2018, The Science of the total environment.
[20] C. Broeckling,et al. Impact of inoculum sources on biotransformation of pharmaceuticals and personal care products. , 2017, Water research.
[21] Daizong Cui,et al. Biodegradation of aniline by a novel bacterial mixed culture AC , 2017 .
[22] A. Zdarta,et al. Environmental biodegradation of halophenols by activated sludge from two different sewage treatment plants , 2017, Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering.
[23] J. Bassin,et al. Impact of phenol shock loads on the performance of a combined activated sludge-moving bed biofilm reactor system , 2017 .
[24] J. Tay,et al. Effect of operational strategies on activated sludge's acclimation to phenol, subsequent aerobic granulation, and accumulation of polyhydoxyalkanoates. , 2016, Journal of hazardous materials.
[25] Q. Huang,et al. Characterization of a phenanthrene-degrading microbial consortium enriched from petrochemical contaminated environment , 2016 .
[26] Yongsheng Zhao,et al. Bioaugmentation with GFP-Tagged Pseudomonas migulae AN-1 in Aniline-Contaminated Aquifer Microcosms: Cellular Responses, Survival and Effect on Indigenous Bacterial Community. , 2016, Journal of microbiology and biotechnology.
[27] D. Jiménez,et al. Different inocula produce distinctive microbial consortia with similar lignocellulose degradation capacity , 2016, Applied Microbiology and Biotechnology.
[28] E. Wang,et al. Microbial succession in response to pollutants in batch-enrichment culture , 2016, Scientific Reports.
[29] C. Murphy. Microbial degradation of fluorinated drugs: biochemical pathways, impacts on the environment and potential applications , 2016, Applied Microbiology and Biotechnology.
[30] Qiuxu Wang,et al. Influence of microbial community structure of seed sludge on the properties of aerobic nitrifying granules. , 2015, Journal of environmental sciences.
[31] K. Engesser,et al. The biodegradation vs. biotransformation of fluorosubstituted aromatics , 2015, Applied Microbiology and Biotechnology.
[32] J. Steyer,et al. Similar PAH Fate in Anaerobic Digesters Inoculated with Three Microbial Communities Accumulating Either Volatile Fatty Acids or Methane , 2015, PloS one.
[33] A. Biaz,et al. Fate of the Herbicide Alachlor Exposed to Different Microbial Consortia in Aquatic Systems , 2015, Water, Air, & Soil Pollution.
[34] D. Shen,et al. Aerobic degradation study of three fluoroanilines and microbial community analysis: the effects of increased fluorine substitution , 2015, Biodegradation.
[35] A. Grozea,et al. Assessment of 2,4-difluoroaniline Aquatic Toxicity Using A Zebrafish (Danio rerio) Model , 2014, The Thai Journal of Veterinary Medicine.
[36] J. Vázquez,et al. Inhibition of selected bacterial growth by three hydrocarbons: mathematical evaluation of toxicity using a toxicodynamic equation. , 2014, Chemosphere.
[37] Meizhen Wang,et al. Isolation, identification and characterization of a novel Ralstonia sp. FD-1, capable of degrading 4-fluoroaniline , 2014, Biodegradation.
[38] A. M. F. Orozco,et al. Biodegradation of bisphenol-A (BPA) in activated sludge batch reactors: Analysis of the acclimation process , 2013 .
[39] P. Castro,et al. Biodegradation of fluoroanilines by the wild strain Labrys portucalensis , 2013 .
[40] M. V. van Loosdrecht,et al. 2-fluorophenol degradation by aerobic granular sludge in a sequencing batch reactor. , 2011, Water research.
[41] R. Halden,et al. Fluorinated chemicals and the impacts of anthropogenic use , 2010 .
[42] Robert C. Edgar,et al. BIOINFORMATICS APPLICATIONS NOTE , 2001 .
[43] M. Reis,et al. Biological treatment of propanil and 3,4-dichloroaniline: kinetic and microbiological characterisation. , 2010, Water research.
[44] D. Springael,et al. Proteomic study of linuron and 3,4-dichloroaniline degradation by Variovorax sp. WDL1: evidence for the involvement of an aniline dioxygenase-related multicomponent protein. , 2008, Research in microbiology.
[45] Y. Liu,et al. A novel degradation pathway of chloroaniline in Diaphorobacter sp. PCA039 entails initial hydroxylation , 2009, World Journal of Microbiology and Biotechnology.
[46] H. Attar,et al. EFFECTS OF 4-CHLOROPHENOL LOADINGS ON ACCLIMATION OF BIOMASS WITH OPTIMIZED FIXED TIME SEQUENCING BATCH REACTOR , 2008 .
[47] J. Sipma,et al. Biodegradation of 2-fluorobenzoate and dichloromethane under simultaneous and sequential alternating pollutant feeding. , 2008, Water research.
[48] Yi-Shin Chen,et al. Activated sludge treatment of a xenobiotic with or without a biogenic substrate during start-up and shocks. , 2007, Bioresource technology.
[49] G. Lu,et al. Biodegradability of chlorinated anilines in waters. , 2007, Biomedical and environmental sciences : BES.
[50] B. Moreno,et al. Influence of inocula over start up of a denitrifying submerged filter applied to nitrate contaminated groundwater treatment. , 2005, Journal of hazardous materials.
[51] B. S. Chadha,et al. Decolorization of various azo dyes by bacterial consortium , 2005 .
[52] F. Dilek,et al. Biodegradation of 4-chlorophenol by acclimated and unacclimated activated sludge--evaluation of biokinetic coefficients. , 2005, Environmental research.
[53] P. de Vos,et al. Diversity of 3-chloroaniline and 3,4-dichloroaniline degrading bacteria isolated from three different soils and involvement of their plasmids in chloroaniline degradation. , 2002, FEMS microbiology ecology.
[54] Awwa,et al. Standard Methods for the examination of water and wastewater , 1999 .
[55] P. Warburton,et al. 2,4-Difluoroaniline and 4-fluoroaniline exposure: monitoring by methaemoglobin and urine analyses , 1984, International archives of occupational and environmental health.