Daughton C G, Ternes T A. Pharmaceuticals and personal care products in the environment: Agents of subtle change?[J]. Environmental Health Perspectives, 1999, 107(Suppl 6): 907-938
|
Wang Y F, Huang H O, Wei X M. Influence of wastewater precoagulation on adsorptive filtration of pharmaceutical and personal care products by carbon nanotube membranes[J]. Chemical Engineering Journal, 2018, 333: 66-75
|
Yu X, Sui Q, Lyu S G, et al. Do high levels of PPCPs in landfill leachates influence the water environment in the vicinity of landfills? A case study of the largest landfill in China[J]. Environment International, 2020, 135: 105404
|
Kibuye F A, Gall H E, Elkin K R, et al. Fate of pharmaceuticals in a spray-irrigation system: From wastewater to groundwater[J]. Science of the Total Environment, 2019, 654: 197-208
|
Papaioannou D, Koukoulakis P H, Papageorgiou M, et al. Investigation of pharmaceutical and personal care product interactions of soil and beets (Beta vulgaris L.) under the effect of wastewater reuse[J]. Chemosphere, 2020, 238: 124553
|
Kim H, Homan M. Evaluation of pharmaceuticals and personal care products (PPCPs) in drinking water originating from Lake Erie[J]. Journal of Great Lakes Research, 2020, 46: 1321-1330
|
Lu W W, Wang M, Wu J Q, et al. Spread of chloramphenicol and tetracycline resistance genes by plasmid mobilization in agricultural soil[J]. Environmental Pollution, 2020, 260: 113998
|
Vuckovic D, Tinoco A I, Ling L, et al. Conversion of oxybenzone sunscreen to phototoxic glucoside conjugates by sea anemones and corals[J]. Science, 2022, 376(6593): 644-648
|
Liu F, Zhang Y, Wang F. Environmental relevant concentrations of triclosan affected developmental toxicity, oxidative stress, and apoptosis in zebrafish embryos[J]. Environmental Toxicology, 2022, 37(4): 848-857
|
王建龙. 废水中药品及个人护理用品(PPCPs)的去除技术研究进展[J]. 四川师范大学学报(自然科学版), 2020, 43(2): 143-172, 140 Wang J L. Removal of pharmaceuticals and personal care products (PPCPs) from wastewater: A review[J]. Journal of Sichuan Normal University (Natural Science), 2020, 43(2): 143-172, 140(in Chinese)
|
Schmidt N, Page D, Tiehm A. Biodegradation of pharmaceuticals and endocrine disruptors with oxygen, nitrate, manganese (Ⅳ), iron (Ⅲ) and sulfate as electron acceptors[J]. Journal of Contaminant Hydrology, 2017, 203: 62-69
|
Yang C W, Chen Y E, Chang B. Microbial communities associated with acetaminophen biodegradation from mangrove sediment[J]. Sustainability, 2020, 12(13): 5410
|
Liu Y S, Ying G G, Shareef A, et al. Biodegradation of three selected benzotriazoles under aerobic and anaerobic conditions[J]. Water Research, 2011, 45(16): 5005-5014
|
Carr D L, Morse A N, Zak J C, et al. Microbially mediated degradation of common pharmaceuticals and personal care products in soil under aerobic and reduced oxygen conditions[J]. Water, Air, & Soil Pollution, 2011, 216(1): 633-642
|
Chang B, Chao W, Yeh S, et al. Biodegradation of sulfamethoxazole in milkfish (Chanos chanos) pond sediments[J]. Applied Sciences, 2019, 9(19): 4000
|
Li Y D, Bi E P, Chen H H. Sorption behavior of ofloxacin to kaolinite: Effects of pH, ionic strength, and Cu(Ⅱ)[J]. Water, Air, & Soil Pollution, 2017, 228(1): 46
|
Samaras V G, Stasinakis A S, Mamais D, et al. Fate of selected pharmaceuticals and synthetic endocrine disrupting compounds during wastewater treatment and sludge anaerobic digestion[J]. Journal of Hazardous Materials, 2013, 244-245: 259-267
|
Gornik T, Kovacic A, Heath E, et al. Biotransformation study of antidepressant sertraline and its removal during biological wastewater treatment[J]. Water Research, 2020, 181: 115864
|
Liu Y S, Ying G G, Shareef A, et al. Occurrence and removal of benzotriazoles and ultraviolet filters in a municipal wastewater treatment plant[J]. Environmental Pollution, 2012, 165: 225-232
|
Polesel F, Andersen H R, Trapp S, et al. Removal of antibiotics in biological wastewater treatment systems—A critical assessment using the activated sludge modeling framework for xenobiotics (ASM-X)[J]. Environmental Science & Technology, 2016, 50(19): 10316-10334
|
Wang L, Qiang Z M, Li Y G, et al. An insight into the removal of fluoroquinolones in activated sludge process: Sorption and biodegradation characteristics[J]. Journal of Environmental Sciences, 2017, 56: 263-271
|
Zhang H Q, Jia Y Y, Khanal S K, et al. Understanding the role of extracellular polymeric substances on ciprofloxacin adsorption in aerobic sludge, anaerobic sludge, and sulfate-reducing bacteria sludge systems[J]. Environmental Science & Technology, 2018, 52(11): 6476-6486
|
Jia Y Y, Zhang H Q, Khanal S K, et al. Insights into pharmaceuticals removal in an anaerobic sulfate-reducing bacteria sludge system[J]. Water Research, 2019, 161: 191-201
|
Ashfaq M, Li Y, Wang Y W, et al. Occurrence, fate, and mass balance of different classes of pharmaceuticals and personal care products in an anaerobic-anoxic-oxic wastewater treatment plant in Xiamen, China[J]. Water Research, 2017, 123: 655-667
|
Hou J, Chen Z Y, Gao J, et al. Simultaneous removal of antibiotics and antibiotic resistance genes from pharmaceutical wastewater using the combinations of up-flow anaerobic sludge bed, anoxic-oxic tank, and advanced oxidation technologies[J]. Water Research, 2019, 159: 511-520
|
Vieno N, Tuhkanen T, Kronberg L. Elimination of pharmaceuticals in sewage treatment plants in Finland[J]. Water Research, 2007, 41(5): 1001-1012
|
Martín J, Santos J L, Aparicio I, et al. Pharmaceutically active compounds in sludge stabilization treatments: Anaerobic and aerobic digestion, wastewater stabilization ponds and composting[J]. The Science of the Total Environment, 2015, 503-504: 97-104
|
Falås P, Wick A, Castronovo S, et al. Tracing the limits of organic micropollutant removal in biological wastewater treatment[J]. Water Research, 2016, 95: 240-249
|
Yang J X, Luo Y J, Fu X H, et al. Unexpected degradation and deiodination of diatrizoate by the Cu(Ⅱ)/S(Ⅳ) system under anaerobic conditions[J]. Water Research, 2021, 198: 117137
|
Cheng S S, Ho C Y, Wu J H. Pilot study of UASB process treating PTA manufacturing wastewater[J]. Water Science and Technology, 1997, 36(6-7): 73-82
|
Liu S M, Wu C H, Huang H J. Toxicity and anaerobic biodegradability of pyridine and its derivatives under sulfidogenic conditions[J]. Chemosphere, 1998, 36(10): 2345-2357
|
Musson S E, Campo P, Tolaymat T, et al. Assessment of the anaerobic degradation of six active pharmaceutical ingredients[J]. The Science of the Total Environment, 2010, 408(9): 2068-2074
|
Okey R W, Stensel H D. A QSAR-based biodegradability model—A QSBR[J]. Water Research, 1996, 30(9): 2206-2214
|
Zhang A Q, Han S K, Ma J, et al. Aerobic microbial degradation of aromatic sulfur-containing compounds and effect of chemical structures[J]. Chemosphere, 1998, 36(15): 3033-3041
|
Shin M, Duncan B, Seto P, et al. Dynamics of selected pre-existing polybrominated diphenylethers (PBDEs) in municipal wastewater sludge under anaerobic conditions[J]. Chemosphere, 2010, 78(10): 1220-1224
|
Kim S, Rossmassler K, Broeckling C D, et al. Impact of inoculum sources on biotransformation of pharmaceuticals and personal care products[J]. Water Research, 2017, 125: 227-236
|
Sella C F, Carneiro R B, Sabatini C A, et al. Can different inoculum sources influence the biodegradation of sulfamethoxazole antibiotic during anaerobic digestion?[J]. Brazilian Journal of Chemical Engineering, 2022, 39(1): 35-46
|
Wolfson S J, Porter A W, Villani T S, et al. The antihistamine diphenhydramine is demethylated by anaerobic wastewater microorganisms[J]. Chemosphere, 2018, 202: 460-466
|
Chopra S, Kumar D. Characterization, optimization and kinetics study of acetaminophen degradation by Bacillus drentensis strain S1 and waste water degradation analysis[J]. Bioresources and Bioprocessing, 2020, 7(14): 113-120
|
Ouyang W Y, Birkigt J, Richnow H H, et al. Anaerobic transformation and detoxification of sulfamethoxazole by sulfate-reducing enrichments and Desulfovibrio vulgaris[J]. Environmental Science & Technology, 2021, 55(1): 271-282
|
吴丹, 孙悦宏, 李浩, 等. 有机紫外吸收剂BP-3的厌氧污泥降解特性[J]. 环境科学学报, 2022, 42(10): 254-263
Wu D, Sun Y H, Li H, et al. Anaerobic biodegradation characteristics of organic UV filter BP-3 in sludge[J]. Acta Scientiae Circumstantiae, 2022, 42(10): 254-263(in Chinese)
|
Hart O E, Halden R U. Modeling wastewater temperature and attenuation of sewage-borne biomarkers globally[J]. Water Research, 2020, 172: 115473
|
Carballa M, Omil F, Alder A C, et al. Comparison between the conventional anaerobic digestion of sewage sludge and its combination with a chemical or thermal pre-treatment concerning the removal of pharmaceuticals and personal care products[J]. Water Science and Technology: A Journal of the International Association on Water Pollution Research, 2006, 53(8): 109-117
|
Carballa M, Omil F, Ternes T, et al. Fate of pharmaceutical and personal care products (PPCPs) during anaerobic digestion of sewage sludge[J]. Water Research, 2007, 41(10): 2139-2150
|
Mao F, Liu X H, Wu K, et al. Biodegradation of sulfonamides by Shewanella oneidensis MR-1 and Shewanella sp. strain MR-4[J]. Biodegradation, 2018, 29(2): 129-140
|
Lützow M V, Kögel-Knabner I, Ekschmitt K, et al. Stabilization of organic matter in temperate soils: Mechanisms and their relevance under different soil conditions—A review[J]. European Journal of Soil Science, 2006, 57(4): 426-445
|
Zhang C F, Zhang D D, Xiao Z X, et al. Characterization of humins from different natural sources and the effect on microbial reductive dechlorination of pentachlorophenol[J]. Chemosphere, 2015, 131: 110-116
|
Zhang D D, Zhang C F, Li Z L, et al. Electrochemical stimulation of microbial reductive dechlorination of pentachlorophenol using solid-state redox mediator (humin) immobilization[J]. Bioresource Technology, 2014, 164: 232-240
|
Zhang D D, Zhang C F, Xiao Z X, et al. Humin as an electron donor for enhancement of multiple microbial reduction reactions with different redox potentials in a consortium[J]. Journal of Bioscience and Bioengineering, 2015, 119(2): 188-194
|
Wu C Y, Zhuang L, Zhou S G, et al. Humic substance-mediated reduction of iron(Ⅲ) oxides and degradation of 2,4-D by an alkaliphilic bacterium, Corynebacterium humireducens MFC-5[J]. Microbial Biotechnology, 2013, 6(2): 141-149
|
Lau M P, Sander M, Gelbrecht J, et al. Solid phases as important electron acceptors in freshwater organic sediments[J]. Biogeochemistry, 2015, 123(1): 49-61
|
He K, Yin Q D, Liu A K, et al. Enhanced anaerobic degradation of amide pharmaceuticals by dosing ferroferric oxide or anthraquinone-2,6-disulfonate[J]. Journal of Water Process Engineering, 2017, 18: 192-197
|
Baquero E S, Rodríguez D C, Peñuela G A. Individual and synergic effect of carbamazepine and diclofenac in the removal of organic matter from an expanded granular bed anaerobic reactor[J]. Water Science and Technology: A Journal of the International Association on Water Pollution Research, 2022, 85(5): 1620-1635
|
He Y J, Sutton N B, Rijnaarts H H M, et al. Pharmaceutical biodegradation under three anaerobic redox conditions evaluated by chemical and toxicological analyses[J]. The Science of the Total Environment, 2018, 618: 658-664
|
de Wilt A, He Y J, Sutton N, et al. Sorption and biodegradation of six pharmaceutically active compounds under four different redox conditions[J]. Chemosphere, 2018, 193: 811-819
|
Martins M, Sanches S, Pereira I A C. Anaerobic biodegradation of pharmaceutical compounds: New insights into the pharmaceutical-degrading bacteria[J]. Journal of Hazardous Materials, 2018, 357: 289-297
|
Carneiro R B, Sabatini C A, Santos-Neto Á J, et al. Feasibility of anaerobic packed and structured-bed reactors for sulfamethoxazole and ciprofloxacin removal from domestic sewage[J]. The Science of the Total Environment, 2019, 678: 419-429
|
Jia Y Y, Khanal S K, Zhang H Q, et al. Sulfamethoxazole degradation in anaerobic sulfate-reducing bacteria sludge system[J]. Water Research, 2017, 119: 12-20
|
Mohatt J L, Hu L H, Finneran K T, et al. Microbially mediated abiotic transformation of the antimicrobial agent sulfamethoxazole under iron-reducing soil conditions[J]. Environmental Science & Technology, 2011, 45(11): 4793-4801
|
Barbieri M, Carrera J, Sanchez-Vila X, et al. Microcosm experiments to control anaerobic redox conditions when studying the fate of organic micropollutants in aquifer material[J]. Journal of Contaminant Hydrology, 2011, 126(3-4): 330-345
|
Struk-Sokołowska J, Kotowska U, Piekutin J, et al. Analysis of 1H-benzotriazole removal efficiency from wastewater in individual process phases of a sequencing batch reactor SBR[J]. Water Resources and Industry, 2022, 28: 100182
|
Loos R, Locoro G, Comero S, et al. Pan-European survey on the occurrence of selected polar organic persistent pollutants in ground water[J]. Water Research, 2010, 44(14): 4115-4126
|
Parajulee A, Lei Y D, De Silva A O, et al. Assessing the source-to-stream transport of benzotriazoles during rainfall and snowmelt in urban and agricultural watersheds[J]. Environmental Science & Technology, 2017, 51(8): 4191-4198
|
Asimakopoulos A G, Bletsou A A, Wu Q, et al. Determination of benzotriazoles and benzothiazoles in human urine by liquid chromatography-tandem mass spectrometry[J]. Analytical Chemistry, 2013, 85(1): 441-448
|
Liang X F, Wang M, Chen X, et al. Endocrine disrupting effects of benzotriazole in rare minnow (Gobiocypris rarus) in a sex-dependent manner[J]. Chemosphere, 2014, 112: 154-162
|
Liu Y S, Ying G G, Shareef A, et al. Biodegradation of three selected benzotriazoles in aquifer materials under aerobic and anaerobic conditions[J]. Journal of Contaminant Hydrology, 2013, 151: 131-139
|
Alotaibi M D, Patterson B M, McKinley A J, et al. Fate of benzotriazole and 5-methylbenzotriazole in recycled water recharged into an anaerobic aquifer: Column studies[J]. Water Research, 2015, 70: 184-195
|
Ding T D, Lin K D, Bao L J, et al. Biouptake, toxicity and biotransformation of triclosan in diatom Cyclotella sp. and the influence of humic acid[J]. Environmental Pollution, 2018, 234: 231-242
|
Ying G G, Yu X Y, Kookana R S. Biological degradation of triclocarban and triclosan in a soil under aerobic and anaerobic conditions and comparison with environmental fate modelling[J]. Environmental Pollution, 2007, 150(3): 300-305
|
Gangadharan Puthiya Veetil P, Vijaya Nadaraja A, Bhasi A, et al. Degradation of triclosan under aerobic, anoxic, and anaerobic conditions[J]. Applied Biochemistry and Biotechnology, 2012, 167(6): 1603-1612
|
Gonzalez-Gil L, Carballa M, Lema J M. Cometabolic enzymatic transformation of organic micropollutants under methanogenic conditions[J]. Environmental Science & Technology, 2017, 51(5): 2963-2971
|