Moreno-Bondi M C, Marazuela M D, Herranz S, et al. An overview of sample preparation procedures for LC-MS multiclass antibiotic determination in environmental and food samples[J]. Analytical and Bioanalytical Chemistry, 2009, 365:921-946
|
隋倩雯, 张俊亚, 魏源送, 等. 畜禽养殖过程抗生素使用于耐药病原菌及其抗性基因赋存的研究进展[J]. 生态毒理学报, 2015, 10(5):20-34
Sui Q W, Zhang J Y, Wei Y S, et al. Veterinary antibiotics use, occurrence of antibiotic resistance pathogen and its antibiotic resistance genes in animal production:An overview[J]. Asian Journal of Ecotoxicology, 2015, 10(5):20-34(in Chinese)
|
Suzuki S, Hoa P. Distribution of quinolones, sulfonamides, tetracyclines in aquatic environment and antibiotic resistance in Indochina[J]. Frontiers in Microbiology, 2012, 3:67-68
|
Silva B F D, Jelic A, LopezSerna R, et al. Occurrence and distribution of pharmaceuticals in surface water, suspended solids and sediments of the Ebro River Basin, Spain[J]. Chemosphere, 2011, 85(8):1331-1339
|
Wiegel S, Aulinger A, Brockmeyer R, et al. Pharmaceuticals in the river Elbe and its tributaries[J]. Chemosphere, 2004, 57(2):107-126
|
Tamtam F, Mercier F, Bot L B, et al. Occurrence and fate of antibiotics in the Seine River in various hydrological conditions[J]. Science of the Total Environment, 2008, 393(1):84-95
|
阮悦雯, 陈继淼, 郭昌胜, 等. 天津近郊地区淡水养殖水体的表层水及沉积物中典型抗生素的残留分析[J]. 农业环境科学学报, 2011, 12(30):2586-2593
Ruan Y W, Chen J M, Guo C S, et al. Distribution characteristics of typical antibiotics in surface water and sediments from freshwater aquaculture water in Tianjin suburban areas, China[J]. Journal of Agro-Environment Science, 2011, 12(30):2586-2593(in Chinese)
|
李文最, 陈高水, 郑艳影, 等. 闽江流域福州段水体中抗生素残留污染调查[J]. 实用预防医学, 2018, 12(25):1455-1458
Li W Z, Chen G S, Zheng Y Y, et al. Contamination profiles of antibiotics residues in water bodies of the Fuzhou section of the Minjiang River[J]. Practical Preventive Medicine, 2018, 12(25):1455-1458(in Chinese)
|
Yang W B, Zheng F F, Xue X, et al. Investigation into adsorption mechanisms of sulfonamides onto porous adsorbents[J]. Journal of Colloid and Interface Science, 2011, 362(2):503-509
|
Qiu J R, Zhao T, Liu Q Y, et al. Residual veterinary antibiotics in pig excreta after oral administration of sulfonamides[J]. Environmental Geochemistry and Health, 2016, 38(2):549-556
|
Baran W, Adamek E, Ziemianska J, et al. Effects of the presence of sulfonamides in the environment and their influence on human health[J]. Journal of Hazardous Materials, 2011, 196:1-15
|
Doretto K M, Rath S. Sorption of sulfadiazine on Brazilian soils[J]. Chemosphere, 2013, 90(6):2027-2034
|
许浩浩, 吕伟娅. 人工湿地去除污废水中特殊污染物的研究进展[J]. 人民珠江, 2019, 40(5):110-116
Xu H H, Lv W Y. Research progress of constructed wetland for removal of particular pollutants in wastewater[J]. Pearl River, 2019, 40(5):110-116(in Chinese)
|
Song H L, Zhang S, Guo J H, et al. Vertical up-flow constructed wetlands exhibited efficient antibiotic removal but induced antibiotic resistance genes in effluent[J]. Chemosphere, 2018, 203:434-441
|
Button M, Cosway K, Sui J, et al. Impacts and fate of triclosan and sulfamethoxazole in intensified re-circulating vertical flow constructed wetlands[J]. Science of the Total Environment, 2019, 649:1017-1029
|
Chen J, Ying G G, Wei X D, et al. Removal of antibiotics and antibiotic resistance genes from domestic sewage by constructed wetlands:Effect of flow configuration and plant species[J]. Science of the Total Environment, 2016, 571(15):974-982
|
Dan A, Yang Y, Dai Y, et al. Removal and factors influencing removal of sulfonamides and trimethoprim from domestic sewage in constructed wetlands[J]. Bioresource Technology, 2013, 146:363-370
|
Lin L, Liu Y H, Wang Z, et al. Behavior of tetracycline and sulfamethazine with corresponding resistance genes from swine wastewater in pilot-scale constructed wetlands[J]. Journal of Hazardous Materials, 2014, 278(15):304-310
|
Reinhold D, Vishwanathan S, Park J J, et al. Assessment of plant-driven removal of emerging organic pollutants by duckweed[J]. Chemosphere, 2010, 80(7):687-692
|
Carda-Broch S, Berthod A. Countercurrent chromatography for the measurement of the hydrophobicity of sulfonamide amphoteric compounds[J]. Chromatographia, 2004, 59(1-2):79-87
|
Li L L, Huang L D, Chung R S, et al. Sorption and dissipation of tetracyclines in soils and compost[J]. Pedosphere, 2010, 20(6):807-816
|
Lertpaitoonpan W, Ong S K, Moorman T B. Effect of organic carbon and pH on soil sorption of sulfamethazine[J]. Chemosphere, 2009, 76(4):558-564
|
Kurwadkar S T, Adams C D, Meyer M T, et al. Effects of sorbate speciation on sorption of selected sulfonamides in three loamy soils[J]. Journal of Agriculture and Food Chemistry, 2007, 55(4):1370-1376
|
Kümmerer K. Pharmaceuticals in the Environment[M]. Springer, 2008:1-3
|
Bui T X, Choi H. Influence of ionic strength, anions, cations, and natural organic matter on the adsorption of pharmaceuticals to silica[J]. Chemosphere, 2010, 80(7):681-686
|
Li Y, Zhu G, Ng W J, et al. A review on removing pharmaceutical contaminants from wastewater by constructed wetlands:Design, performance and mechanism[J]. Science of the Total Environment, 2014, 468-469:908-932
|
Thiele-Bruhn S. Adsorption of antibiotic pharmaceutical compound sulfapyridine by a long term differently fertilized loess Chemozem[J]. Journal of Plant Nutrition and Soil Science, 2000, 163(6):589-594
|
Guan Y D, Wang B, Gao Y X, et al. Occurrence and fate of antibiotics in the aqueous environment and their removal by constructed wetlands in China:A review[J]. Pedosphere, 2017, 27(1):42-51
|
Zhang X B, Guo W S, Ngo H H, et al. Performance evaluation of powered activated carbon for removing 28 types of antibiotics from water[J]. Journal of Environmental Management, 2016, 172:193-200
|
韩跃飞. 养猪场废水中抗生素去除技术研究[D]. 上海:华东理工大学, 2019:47-48 Han Y F. Research on treatment technology of antibiotics in swine wastewater[D]. Shanghai:East China University of Science and Technology, 2019:47
-48(in Chinese)
|
Liu L, Liu C, Zheng J, et al. Elimination of veterinary antibiotics and antibiotic resistance genes from swine wastewater in the vertical flow constructed wetlands[J]. Chemosphere, 2013, 91(8):1088-1093
|
Lertpaitoonpan W, Ong S K, Moorman T B. Effect of organic carbon and pH on soil sorption of sulfamethazine[J]. Chemosphere, 2009, 76:558-564
|
程宪伟, 梁银秀, 祝惠, 等. 人工湿地处理水体中抗生素的研究进展[J]. 湿地科学, 2017, 15(1):125-131
Cheng X W, Liang Y X, Zhu H, et al. Progress in the treatment of antibiotics in water by constructed wetlands[J]. Wetland Science, 2017, 15(1):125-131(in Chinese)
|
Yan Q, Feng Y, Gao X, et al. Removal of pharmaceutically active compounds (PHACs) and toxicological response of Cyperus alternifolius exposed to PHACs in microcosm constructed wetlands[J]. Journal of Hazardous Materials, 2016, 301(15):566-575
|
Boonsaner M, Hawker D W. Investigation of the mechanism of uptake and accumulation of zwitterionic tetracyclines by rice (Oryza sativa L.)[J]. Ecotoxicology and Environmental Safety, 2012, 78(1):142-147
|
Liu L, Liu Y H, Liu C X, et al. Potential effect and accumulation of veterinary antibiotics in Phragmites australis under hydroponic conditions[J]. Ecological Engineering, 2013, 53:138-143
|
Dietz A C, Schnoor J L. Supplement 1:Reviews in Environmental Health, 2001||Advances in Phytoremediation[J]. Environmental Health Perspectives, 2001, 109:163-168
|
Dordio A V, Carvalho A J P. Organic xenobiotics removal in constructed wetlands, with emphasis on the importance of the support matrix[J]. Journal of Hazardous Materials, 2013, 252-253:272-292
|
Schröder P, Collins C. Conjugating enzymes involved in xenobiotic metabolism of organic xenobiotics in plants[J]. International Journal of Phytoremediation, 2002, 4(4):247-265
|
Stottmeister U, Wießner A, Kuschk P, et al. Effects of plants and microorganisms in constructed wetlands for wastewater treatment[J]. Biotechnology Advance, 2003, 22(1-2):93-117
|
Bais H P, Weir T L, Perry L G, et al. The role of root exudates in rhizosphere interations with plants and other organisms[J]. Annual Review of Plant Biology, 2006, 57(1):233-266
|
Truu M, Juhanson J, Truu J. Microbial biomass, activity and community composition in constructed wetlands[J]. Science of the Total Environment, 2009, 407(13):3958-3971
|
Torrens A, Molle P, Boutin C, et al. Impact of design and operation variables on the performance of vertical-flow constructed wetlands and intermittent sand filters treating pond effluent[J]. Water Research, 2009, 43(7):1851-1858
|
Kadlec R H, Wallace S D. Treatment Wetlands[M]. Boca Raton:Taylor and Francis, 2009:2-20
|
Fischer K, Majewsky M. Cometabolic degradation of organic wastewater micropollutants by activated sludge and sludge-inherent microorganisms[J]. Applied Microbiology and Biotechnology, 2014, 98(15):6583-6597
|
Hijosa-Valsero M, Fink G, Schlüsener M P, et al. Removal of antibiotics from urban wastewater by constructed wetland optimization[J]. Chemosphere, 2011, 83(5):713-719
|
Alvarino T, Suarez S, Lema J M, et al. Understanding the removal mechanisms of PPCPs and the influence of main technological parameters in anaerobic UASB and aerobic CAS reactors[J]. Journal of Hazardous Materials, 2014, 278(15):506-513
|
Cheng D L, Ngo H H, Guo W S, et al. Bioprocessing for elimination antibiotics and hormones from swine wastewater[J]. Science of the Total Environment, 2018, 621:1664-1682
|
Kümmerer K. The presence of pharmaceuticals in the environment due to human use-present knowledge and future challenges[J]. Environmental Management, 2009, 90(8):2354-2366
|
Ingerslev F, Halling-SΦrensen B. Biodegradability properties of sulfonamides in activated sludge[J]. Environmental Toxicology and Chemistry, 2000, 19(10):2467-2473
|
Perez S, Eichhorn P, Aga D S. Evaluating the biodegradability of sulfamethazine, sulfamethoxazole,sulfathiazole, and trimethoprim at different stages of sewage treatment[J]. Environmental Toxicology and Chemistry, 2005, 24(6):1361-1367
|
黄晓凤, 王启贵, 李静, 等. 人工湿地处理畜禽污水中抗生素及抗性基因效果研究进展[J]. 家畜生态学报, 2017, 38(8):1-6
Huang X F, Wang Q G, Li J, et al. Advances in research on antibiotics and resistance genes in livestock and poultry sewage by constructed wetlands[J]. Acta Ecologia Animalis Domastici, 2017, 38(8):1-6(in Chinese)
|
Saeed T, Sun G. A review on nitrogen and organics removal mechanisms in subsurface flow constructed wetlands:Dependency on environmental parameters, operating conditions and supporting media[J]. Journal of Environmental Management, 2012, 112(15):429-448
|
于慧卿. CWM1模型在人工湿地水体修复及生活污水处理中的应用研究[D]. 西安:长安大学, 2013:152 Yu H Q. The application of constructed wetland model No.1 to water body remediation and domestic wastewater treatment by constructed wetlands[D]. Xi'an:Chang'an University, 2013:152
(in Chinese)
|
Lee C, Fletcher T D, Sun G. Nitrogen removal in constructed wetland systems[J]. Engineering in Life Science, 2009, 9(1):11-22
|