GUO N, WANG Y, TONG T, et al. The fate of antibiotic resistance genes and their potential hosts during bio-electrochemical treatment of high-salinity pharmaceutical wastewater[J]. Water Research, 2018, 133:79-86.
刘奇,魏东斌,陈振斌,等.医药品和个人护理用品(PPCPs)类污染物氯化转化行为研究进展[J].环境化学,2012,31(3):278-286. LIU Q, WEI D B, CHEN Z B, et al. A review on transformation behaviors of PPCPs in chlorination process[J]. Environmental Chemistry, 2012, 31(3):278-286(in Chinese).
RODRIGUEZ-NARVAEZ O M, MANUEL PERALTA-HERNANDEZ J, GOONETILLEKE A, et al. Treatment technologies for emerging contaminants in water:A review[J]. Chemical Engineering Journal, 2017, 323:361-380.
庄榆佳,高阳俊,邓玉君,等.微生物固化曝气技术对养殖废水的深度处理[J].环境化学,2015,34(7):1356-1362. ZHUANG Y J, GAO Y J, DENG Y J, et al. Advanced treatment of swine wastewater by the immobilized-microorganism and aeration technology[J]. Environmental Chemistry, 2015, 34(7):1356-1362(in Chinese).
PETRIE B, BARDEN R, KASPRZYK-HORDERN B. A review on emerging contaminants in wastewaters and the environment:Current knowledge, understudied areas and recommendations for future monitoring[J]. Water Research, 2015, 72:3-27.
RIVERA-UTRILLA J, SANCHEZ-POLO M, ANGELES FERRO-GARCIA M, et al. Pharmaceuticals as emerging contaminants and their removal from water. A review[J]. Chemosphere, 2013, 93:1268-1287.
MARCHLEWICZ A, DOMARADZKA D, GUZIK U, et al.Bacillus thuringiensis B1(2015b) is a gram-positive bacteria able to degrade naproxen and ibuprofen[J]. Water Air and Soil Pollution, 2016, 227(6):197-205.
DOMARADZKA D, GUZIK U, HUPERT-KOCUREK K, et al. Cometabolic degradation of naproxen by Planococcus sp Strain S5[J]. Water Air and Soil Pollution, 2015, 226(9):297-305.
YAN W, XIAO Y, YAN W, et al. The effect of bioelectrochemical systems on antibiotics removal and antibiotic resistance genes:A review[J]. Chemical Engineering Journal, 2019, 358:1421-1437.
梁胜娜,杨俏,高超,等.毒性物质在微生物燃料电池中不同响应的研究进展[J].环境化学, 2018, 37(4):740-752. LIANG S N, YANG Q, GAO C, et al. Different responses of toxic substances in microbial fuel cells[J]. Environmental Chemistry, 2018, 37(4):740-752(in Chinese).
谢静怡,李永峰,孙彩玉,等.微生物燃料电池耦合连续搅拌反应系统(CSTR)低温下处理"糖蜜-电镀"废水[J].环境化学, 2015, 34(4):786-791. XIE J Y, LI Y F, SUN C Y, et al. Microbial fuel cell with continuous stirred reactor system (CSTR) for continuous flow processing of "Molasses-Electroplating" wastewater at low temperatures[J]. Environmental Chemistry, 2015, 34(4):786-791(in Chinese).
FENG H, ZHANG X, GUO K, et al. Electrical stimulation improves microbial salinity resistance and organofluorine removal in bioelectrochemical systems[J]. Applied and Environmental Microbiology, 2015, 81:3737-3744.
ZHANG J, ZHANG Y, QUAN X. Electricity assisted anaerobic treatment of salinity wastewater and its effects on microbial communities[J]. Water Research, 2012, 46:3535-3543.
LOVLEY D R, PHILLIPS E J P. Novel mode of microbial energy-metabolism-organic-carbon oxidation coupled to dissimilatory reduction of iron or manganese[J]. Applied and Environmental Microbiology, 1988, 54:1472-1480.
XIAO Y, WU S, ZHANG F, et al. Promoting electrogenic ability of microbes with negative pressure[J]. Journal of Power Sources, 2013, 229:79-83.
CAMPO R, DI PRIMA N, FRENI G, et al. Start-up of two moving bed membrane bioreactors treating saline wastewater contaminated by hydrocarbons[J]. Water Science and Technology, 2016, 73:716-724.
YAN W, GUO Y, XIAO Y, et al. The changes of bacterial communities and antibiotic resistance genes in microbial fuel cells during long-term oxytetracycline processing[J]. Water Research, 2018, 142:105-114.
KIELY P D, RADER G, REGAN J M, et al. Long-term cathode performance and the microbial communities that develop in microbial fuel cells fed different fermentation endproducts[J]. Bioresource Technology, 2011, 102:361-366.
AMORIM C L, MAIA A S, MESQUITA R B R, et al. Performance of aerobic granular sludge in a sequencing batch bioreactor exposed to ofloxacin, norfloxacin and ciprofloxacin[J]. Water Research, 2014, 50:101-113.
ZHANG Q, ZHANG Y, LI D. Cometabolic degradation of chloramphenicol via a meta-cleavage pathway in a microbial fuel cell and its microbial community[J]. Bioresource Technology, 2017, 229:104-110.
LEFEBVRE O, VASUDEVAN N, THANASEKARAN K, et al. Microbial diversity in hypersaline wastewater:The example of tanneries[J]. Extremophiles, 2006, 10:505-513.
WANG L Q, MESELHY M R, LI Y, et al. The heterocyclic ring fission and dehydroxylation of catechins and related compounds by Eubacterium sp strain SDG-2, a human intestinal bacterium[J]. Chemical&Pharmaceutical Bulletin, 2001, 49:1640-1643.
JIANG Y B, ZHONG W H, HAN C, et al. Characterization of electricity generated by soil in microbial fuel cells and the isolation of soil source exoelectrogenic bacteria[J]. Frontiers in Microbiology, 2016, doi:10.3389/fmicb.2016.01776.
ALEXANDRINO D A M, MUCHA A P, ALMEIDA C M R, et al. Biodegradation of the veterinary antibiotics enrofloxacin and ceftiofur and associated microbial community dynamics[J]. Science of the Total Environment, 2017, 581:359-368.
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.
ZHANG K, LIU Y, LUO H, et al. Bacterial community dynamics and enhanced degradation of di-n-octyl phthalate (DOP) by corncob-sodium alginate immobilized bacteria[J]. Geoderma, 2017, 305:264-274.
JIANG X-W, LIU H, XU Y, et al. Genetic and biochemical analyses of chlorobenzene degradation gene clusters in Pandoraea sp strain MCB032[J]. Archives of Microbiology, 2009, 191:485-492.
HERZOG B, LEMMER H, HORN H, et al. Characterization of pure cultures isolated from sulfamethoxazole-acclimated activated sludge with respect to taxonomic identification and sulfamethoxazole biodegradation potential[J]. Bmc Microbiology, 2013, 13:276-286.
ELABED H, GONZALEZ-TORTUERO E, IBACACHE-QUIROGA C, et al. Seawater salt-trapped pseudomonas aeruginosa survives for years and gets primed for salinity tolerance[J]. Bmc Microbiology, 2019, 19:142-155.
LI X, ZHAO L, ADAM M. Biodegradation of marine crude oil pollution using a salt-tolerant bacterial consortium isolated from Bohai Bay, China[J]. Marine Pollution Bulletin, 2016, 105:43-50.