用户名: 密码: 验证码:
含氟有机废水处理过程活性污泥微生物群落研究进展
详细信息    查看全文 | 推荐本文 |
  • 英文篇名:Research progresses of activated sludge microbial communities in fluorine-containing organic wastewater treatment processes
  • 作者:王彬浩 ; 关晓彤 ; 颜庆云 ; 贺志理
  • 英文作者:WANG Bin-Hao;GUAN Xiao-Tong;YAN Qing-Yun;HE Zhi-Li;Environmental Microbiome Research Center,School of Environmental Science and Engineering,Sun Yat-Sen University;Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai);College of Agronomy,Hunan Agricultural University;
  • 关键词:含氟有机废水 ; 活性污泥 ; 微生物多样性 ; 微生物降解 ; 微生物组学技术
  • 英文关键词:Fluorine-containing organic wastewater;;Activated sludge;;Microbial community diversity;;Microbial degradation;;Microbiome technology
  • 中文刊名:微生物学通报
  • 英文刊名:Microbiology China
  • 机构:中山大学环境科学与工程学院环境微生物组学研究中心;南方海洋科学与工程广东省实验室(珠海);湖南农业大学农学院;
  • 出版日期:2019-06-19 15:54
  • 出版单位:微生物学通报
  • 年:2019
  • 期:08
  • 基金:国家自然科学基金(31770539);; 中山大学百人计划项目(38000-18821107);; “十三五”优先发展领域专项(38000-31650020)~~
  • 语种:中文;
  • 页:164-181
  • 页数:18
  • CN:11-1996/Q
  • ISSN:0253-2654
  • 分类号:X703;X172
摘要
随着有机氟化物在各领域的广泛应用,含氟有机废水处理面临巨大挑战。活性污泥作为有机废水处理的核心技术之一,微生物在其中发挥着极其重要的作用。本综述首先聚焦在活性污泥微生物群落多样性、组成、结构和功能及其与含氟废水类型、处理工艺和处理效率之间的关系,进而讨论了功能微生物降解/转化有机氟化物的途径和作用机制,最后展望了结合分离培养降解有机氟化物的关键微生物,以及微生物组学技术解析活性污泥微生物群落构建、互作、代谢等核心问题,以提高对含氟有机废水微生物降解机理的认识,优化含氟有机废水处理工艺。
        With wide applications of organic fluorides in various fields, fluoride-containing organic wastewater treatment is facing great challenges. Activated sludge technologies are one of core methods for such a wastewater treatment, in which microorganisms play an essential role. This review is focused on the diversity, composition, structure and function of activated sludge microbial communities in the process of fluorinated organic wastewater treatment and their relationships with wastewater types, activated sludge characteristics, treatment efficiency, degradation pathways and mechanisms of organic fluoride compounds by functional microorganisms in fluoride-containing organic wastewater. We also discuss perspectives for addressing key questions related to the assembly and metabolic interaction of activated sludge microbial communities by isolating key functional microorganisms and/or by microbiome technologies, aiming to improve our knowledge about mechanisms for microbial degradation of organic fluoride compounds and optimize fluorinated organic wastewater processes.
引文
[1]Lim XZ.Tainted water:the scientists tracing thousands of fluorinated chemicals in our environment[J].Nature,2019,566(7742):26-29
    [2]Renner R.Growing concern over perfluorinated chemicals[J].Environmental Science&Technology,2001,35(7):154A-160A
    [3]He K,Blaney L.Systematic optimization of an SPE with HPLC-FLD method for fluoroquinolone detection in wastewater[J].Journal of Hazardous Materials,2015,282:96-105
    [4]Carvalho MF,Maia AS,Tiritan ME,et al.Bacterial degradation of moxifloxacin in the presence of acetate as a bulk substrate[J].Journal of Environmental Management,2016,168:219-228
    [5]Lei XN,Lu JJ,Liu ZL,et al.Concentration and distribution of antibiotics in water-sediment system of Bosten Lake,Xinjiang[J].Environmental Science and Pollution Research,2015,22(3):1670-1678
    [6]Gao LH,Shi YL,Li WH,et al.Occurrence and distribution of antibiotics in urban soil in Beijing and Shanghai,China[J].Environmental Science and Pollution Research,2015,22(15):11360-11371
    [7]Zhang HB,Luo YM,Wu LH,et al.Residues and potential ecological risks of veterinary antibiotics in manures and composts associated with protected vegetable farming[J].Environmental Science and Pollution Research,2015,22(8):5908-5918
    [8]Lin AYC,Panchangam SC,Ciou PS.High levels of perfluorochemicals in Taiwan’s wastewater treatment plants and downstream rivers pose great risk to local aquatic ecosystems[J].Chemosphere,2010,80(10):1167-1174
    [9]Prevedouros K,Cousins IT,Buck RC,et al.Sources,fate and transport of perfluorocarboxylates[J].Environmental Science&Technology,2006,40(1):32-44
    [10]Paul AG,Jones KC,Sweetman AJ.A first global production,emission,and environmental inventory for perfluorooctane sulfonate[J].Environmental Science&Technology,2009,43(2):386-392
    [11]Boiteux V,Bach C,Sagres V,et al.Analysis of 29 per-and polyfluorinated compounds in water,sediment,soil and sludge by liquid chromatography-tandem mass spectrometry[J].International Journal of Environmental Analytical Chemistry,2016,96(8):705-728
    [12]Filipovic M,Woldegiorgis A,Norstr?m K,et al.Historical usage of aqueous film forming foam:a case study of the widespread distribution of perfluoroalkyl acids from a military airport to groundwater,lakes,soils and fish[J].Chemosphere,2015,129:39-45
    [13]Lanza HA,Cochran RS,Mudge JF,et al.Temporal monitoring of perfluorooctane sulfonate accumulation in aquatic biota downstream of historical aqueous film forming foam use areas[J].Environmental Toxicology and Chemistry,2017,36(8):2022-2029
    [14]Munoz G,Desrosiers M,Duy SV,et al.Environmental occurrence of perfluoroalkyl acids and novel fluorotelomer surfactants in the freshwater fish catostomus commersonii and sediments following firefighting foam deployment at the Lac-Megantic railway accident[J].Environmental Science&Technology,2017,51(3):1231-1240
    [15]Heydebreck F,Tang JH,Xie ZY,et al.Emissions of per-and polyfluoroalkyl substances in a textile manufacturing plant in China and their relevance for workers’exposure[J].Environmental Science&Technology,2016,50(19):10386-10396
    [16]Zhang T,Li B.Occurrence,transformation,and fate of antibiotics in municipal wastewater treatment plants[J].Critical Reviews in Environmental Science and Technology,2011,41(11):951-998
    [17]Olsen GW,Lange CC,Ellefson ME,et al.Temporal trends of perfluoroalkyl concentrations in american red cross adult blood donors,2000-2010[J].Environmental Science&Technology,2012,46(11):6330-6338
    [18]Grandjean P,Budtz-J?rgensen E.Immunotoxicity of perfluorinated alkylates:calculation of benchmark doses based on serum concentrations in children[J].Environmental Health,2013,12:35
    [19]Fr?mel T,Knepper TP.Biodegradation of fluorinated alkyl substances[A]//De Voogt P.Reviews of Environmental Contamination and Toxicology Volume 208[M].New York,NY:Springer,2010:161-177
    [20]Zhang T,Shao MF,Ye L.454 Pyrosequencing reveals bacterial diversity of activated sludge from 14 sewage treatment plants[J].The ISME Journal,2012,6(6):1137-1147
    [21]Ni BJ,Xie WM,Liu SG,et al.Granulation of activated sludge in a pilot-scale sequencing batch reactor for the treatment of low-strength municipal wastewater[J].Water Research,2009,43(3):751-761
    [22]SzabóE,Liébana R,Hermansson M,et al.Microbial population dynamics and ecosystem functions of anoxic/aerobic granular sludge in sequencing batch reactors operated at different organic loading rates[J].Frontiers in Microbiology,2017,8:770
    [23]Amorim CL,Alves M,Castro PML,et al.Bacterial community dynamics within an aerobic granular sludge reactor treating wastewater loaded with pharmaceuticals[J].Ecotoxicology and Environmental Safety,2018,147:905-912
    [24]Gonzalez-Silva BM,Jonassen KR,Bakke I,et al.Nitrification at different salinities:biofilm community composition and physiological plasticity[J].Water Research,2016,95:48-58
    [25]Nancharaiah YV,Mohan SV,Lens PNL.Recent advances in nutrient removal and recovery in biological and bioelectrochemical systems[J].Bioresource Technology,2016,215:173-185
    [26]Gómez-Acata S,Vital-Jácome M,Pérez-Sandoval MV,et al.Microbial community structure in aerobic and fluffy granules formed in a sequencing batch reactor supplied with4-chlorophenol at different settling times[J].Journal of Hazardous Materials,2018,342:606-616
    [27]Nielsen PH,Saunders AM,Hansen AA,et al.Microbial communities involved in enhanced biological phosphorus removal from wastewater-a model system in environmental biotechnology[J].Current Opinion in Biotechnology,2012,23(3):452-459
    [28]Ju F,Guo F,Ye L,et al.Metagenomic analysis on seasonal microbial variations of activated sludge from a full-scale wastewater treatment plant over 4 years[J].Environmental Microbiology Reports,2014,6(1):80-89
    [29]Marathe NP,Shetty SA,Shouche YS,et al.Limited bacterial diversity within a treatment plant receiving antibiotic-containing waste from bulk drug production[J].PLoS One,2016,11(11):e0165914
    [30]Ouyang EM,Liu Y,Ouyang JT,et al.Effects of different wastewater characteristics and treatment techniques on the bacterial community structure in three pharmaceutical wastewater treatment systems[J].Environmental Technology,2019,40(3):329-341
    [31]Yan WF,Wang SH,Ding R,et al.Long-term operation of electroactive biofilms for enhanced ciprofloxacin removal capacity and anti-shock capabilities[J].Bioresource Technology,2019,275:192-199
    [32]Xu M,Cao JS,Li C,et al.Operational and biological analyses of branched water-adjustment and combined treatment of wastewater from a chemical industrial park[J].Environmental Technology,2018,39(2):253-263
    [33]Wang BH.Study on the influence factors and the dynamic changes of microbial community structure of activated sludge during the treatment of fluoride wastewater[J].Hangzhou:Master’s Thesis of Hangzhou Normal University,2017(in Chinese)王彬浩.活性污泥降解氟化工废水的影响因素及微生物群落结构的动态变化研究[D].杭州:杭州师范大学硕士学位论文,2017
    [34]Zhao FZ,Ju F,Huang KL,et al.Comprehensive insights into the key components of bacterial assemblages in pharmaceutical wastewater treatment plants[J].Science of the Total Environment,2019,651:2148-2157
    [35]Hu J,Zhang LL,Chen JM,et al.Performance and microbial analysis of a biotrickling filter inoculated by a specific bacteria consortium for removal of a simulated mixture of pharmaceutical volatile organic compounds[J].Chemical Engineering Journal,2016,304:757-765
    [36]Zhao X,Chen ZL,Wang XC,et al.Remediation of pharmaceuticals and personal care products using an aerobic granular sludge sequencing bioreactor and microbial community profiling using Solexa sequencing technology analysis[J].Bioresource Technology,2015,179:104-112
    [37]Muter O,P\erkons I,Selga T,et al.Removal of pharmaceuticals from municipal wastewaters at laboratory scale by treatment with activated sludge and biostimulation[J].Science of the Total Environment,2017,584-585:402-413
    [38]Kim S,Rossmassler K,Broeckling CD,et al.Impact of inoculum sources on biotransformation of pharmaceuticals and personal care products[J].Water Research,2017,125:227-236
    [39]Davids M,Gudra D,Radovica-Spalvina I,et al.The effects of ibuprofen on activated sludge:shift in bacterial community structure and resistance to ciprofloxacin[J].Journal of Hazardous Materials,2017,340:291-299
    [40]Kong Q,He X,Feng Y,et al.Pollutant removal and microorganism evolution of activated sludge under ofloxacin selection pressure[J].Bioresource Technology,2017,241:849-856
    [41]Liao XB,Li BX,Zou RS,et al.Biodegradation of antibiotic ciprofloxacin:pathways,influential factors,and bacterial community structure[J].Environmental Science and Pollution Research,2016,23(8):7911-7918
    [42]Wang XC,Shen JM,Chen ZL,et al.Removal of pharmaceuticals from synthetic wastewater in an aerobic granular sludge membrane bioreactor and determination of the bioreactor microbial diversity[J].Applied Microbiology and Biotechnology,2016,100(18):8213-8223
    [43]Ramos C,Amorim CL,Mesquita DP,et al.Simultaneous partial nitrification and 2-fluorophenol biodegradation with aerobic granular biomass:reactor performance and microbial communities[J].Bioresource Technology,2017,238:232-240
    [44]Duque AF,Bessa VS,Castro PML.Bacterial community dynamics in a rotating biological contactor treating2-fluorophenol-containing wastewater[J].Journal of Industrial Microbiology&Biotechnology,2014,41(1):97-104
    [45]Amorim CL,Duque AF,Afonso CMM,et al.Bioaugmentation for treating transient 4-fluorocinnamic acid shock loads in a rotating biological contactor[J].Bioresource Technology,2013,144:554-562
    [46]Zhao ZQ,Tian BH,Zhang X,et al.Aerobic degradation study of three fluoroanilines and microbial community analysis:the effects of increased fluorine substitution[J].Biodegradation,2015,26(1):1-14
    [47]Duque AF,Bessa VS,Castro PML.Characterization of the bacterial communities of aerobic granules in a 2-fluorophenol degrading process[J].Biotechnology Reports,2015,5:98-104
    [48]Mejia-Avenda?o S,Duy SV,SauvéS,et al.Generation of perfluoroalkyl acids from aerobic biotransformation of quaternary ammonium polyfluoroalkyl surfactants[J].Environmental Science&Technology,2016,50(18):9923-9932
    [49]Harding-Marjanovic KC,Houtz EF,Yi S,et al.Aerobic biotransformation of fluorotelomer thioether amido sulfonate(Lodyne)in AFFF-amended microcosms[J].Environmental Science&Technology,2015,49(13):7666-7674
    [50]Lewis M,Kim MH,Wang N,et al.Engineering artificial communities for enhanced FTOH degradation[J].Science of the Total Environment,2016,572:935-942
    [51]Lewis M,Kim MH,Liu EJ,et al.Biotransformation of 6:2polyfluoroalkyl phosphates(6:2 PAPs):effects of degradative bacteria and co-substrates[J].Journal of Hazardous Materials,2016,320:479-486
    [52]Figueroa M,Del Río AV,Campos JL,et al.Filamentous bacteria existence in aerobic granular reactors[J].Bioprocess and Biosystems Engineering,2015,38(5):841-851
    [53]Li YC,Hao W,Lv JP,et al.The role of N-acyl homoserine lactones in maintaining the stability of aerobic granules[J].Bioresource Technology,2014,159:305-310
    [54]Werner JJ,Knights D,Garcia ML,et al.Bacterial community structures are unique and resilient in full-scale bioenergy systems[J].Proceedings of the National Academy of Sciences of the United States of America,2011,108(10):4158-4163
    [55]Ju F,Zhang T.Bacterial assembly and temporal dynamics in activated sludge of a full-scale municipal wastewater treatment plant[J].The ISME Journal,2015,9(3):683-695
    [56]Liu F,Hu XM,Zhao X,et al.Microbial community structures’response to seasonal variation in a full-scale municipal wastewater treatment plant[J].Environmental Engineering Science,2019,36(2):172-179
    [57]Pala-Ozkok I,Rehman A,Kor-Bicakci G,et al.Effect of sludge age on population dynamics and acetate utilization kinetics under aerobic conditions[J].Bioresource Technology,2013,143:68-75
    [58]Zhang B,Yu QW,Yan GQ,et al.Seasonal bacterial community succession in four typical wastewater treatment plants:correlations between core microbes and process performance[J].Scientific Reports,2018,8(1):4566
    [59]Xue J,Schmitz BW,Caton K,et al.Assessing the spatial and temporal variability of bacterial communities in two Bardenpho wastewater treatment systems via Illumina MiSeq sequencing[J].Science of the Total Environment,2019,657:1543-1552
    [60]Purser S,Moore PR,Swallow S,et al.Fluorine in medicinal chemistry[J].Chemical Society Reviews,2008,37(2):320-330
    [61]Liu JX,Wang N,Buck RC,et al.Aerobic biodegradation of[14C]6:2 fluorotelomer alcohol in a flow-through soil incubation system[J].Chemosphere,2010,80(7):716-723
    [62]Longstaffe JG,Simpson MJ,Maas W,et al.Identifying components in dissolved humic acid that bind organofluorine contaminants using 1H{19F}reverse heteronuclear saturation transfer difference NMR spectroscopy[J].Environmental Science&Technology,2010,44(14):5476-5482
    [63]Mardani G,Mahvi AH,Hashemzadeh-Chaleshtori M,et al.Application of genetically engineered dioxygenase producing Pseudomonas putida on decomposition of oil from spiked soil[J].Journal of Natural Pharmaceutical Products,2017,12(S3):e64313
    [64]Zhang R,Xu XJ,Chen WL,et al.Genetically engineered Pseudomonas putida X3 strain and its potential ability to bioremediate soil microcosms contaminated with methyl parathion and cadmium[J].Applied Microbiology and Biotechnology,2016,100(4):1987-1997
    [65]Zhang S,Lu XX,Wang N,et al.Biotransformation potential of 6:2 fluorotelomer sulfonate(6:2 FTSA)in aerobic and anaerobic sediment[J].Chemosphere,2016,154:224-230
    [66]Dasu K,Liu JX,Lee LS.Aerobic soil biodegradation of 8:2fluorotelomer stearate monoester[J].Environmental Science&Technology,2012,46(7):3831-3836
    [67]Tu QC,He ZL,Wu LY,et al.Metagenomic reconstruction of nitrogen cycling pathways in a CO2-enriched grassland ecosystem[J].Soil Biology and Biochemistry,2017,106:99-108
    [68]Feng JJ,Penton CR,He ZL,et al.Long-term warming in Alaska enlarges the diazotrophic community in deep soils[J].m Bio,2019,10(1):e02521-18
    [69]He ZL,Zhang P,Wu LW,et al.Microbial functional gene diversity predicts groundwater contamination and ecosystem functioning[J].mBio,2018,9(1):e02435-17
    [70]Chai ZY,He ZL,Deng YY,et al.Cultivation of seaweed Gracilaria lemaneiformis enhanced biodiversity in a eukaryotic plankton community as revealed via metagenomic analyses[J].Molecular Ecology,2018,27(4):1081-1093
    [71]Li B,Wu WM,Watson DB,et al.Bacterial community shift and coexisting/coexcluding patterns revealed by network analysis in a uranium-contaminated site after bioreduction followed by reoxidation[J].Applied and Environmental Microbiology,2018,84(9):e02885-17
    [72]Shu DT,Yue H,He YL,et al.Divergent assemblage patterns of abundant and rare microbial sub-communities in response to inorganic carbon stresses in a simultaneous anammox and denitrification(SAD)system[J].Bioresource Technology,2018,257:249-259
    [73]Zhang ZM,Yu ZD,Wang ZH,et al.Understanding of aerobic sludge granulation enhanced by sludge retention time in the aspect of quorum sensing[J].Bioresource Technology,2019,272:226-234
    [74]Xia Y,Wang XH,Wen XH,et al.Overall functional gene diversity of microbial communities in three full-scale activated sludge bioreactors[J].Applied Microbiology and Biotechnology,2014,98(16):7233-7242
    [75]Zhang Y,Xie JP,Liu MM,et al.Microbial community functional structure in response to antibiotics in pharmaceutical wastewater treatment systems[J].Water Research,2013,47(16):6298-6308
    [76]Wu LW,Ning DL,Zhang B,et al.Global diversity and biogeography of bacterial communities in wastewater treatment plants[J].Nature Microbiology,2019:4(7):1183.
    [77]Lu HJ,Chandran K,Stensel D.Microbial ecology of denitrification in biological wastewater treatment[J].Water Research,2014,64:237-254
    [78]Wang P,Yu ZS,Zhao JH,et al.Seasonal changes in bacterial communities cause foaming in a wastewater treatment plant[J].Microbial Ecology,2016,71(3):660-671
    [79]Ramola B,Singh A.Heavy metal concentrations in pharmaceutical effluents of industrial area of Dehradun(Uttarakhand),India[J].Journal of Environmental&Analytical Toxicology,2013,3(3):173
    [80]Salinas MB,Fardeau ML,Cayol JL,et al.Petrobacter succinatimandens gen.nov.,sp.nov.,a moderately thermophilic,nitrate-reducing bacterium isolated from an Australian oil well[J].International Journal of Systematic and Evolutionary Microbiology,2004,54(3):645-649
    [81]Ju F,Xia Y,Guo F,et al.Taxonomic relatedness shapes bacterial assembly in activated sludge of globally distributed wastewater treatment plants[J].Environmental Microbiology,2014,16(8):2421-2432
    [82]Kalyuhznaya MG,Martens-Habbena W,Wang TS,et al.Methylophilaceae link methanol oxidation to denitrification in freshwater lake sediment as suggested by stable isotope probing and pure culture analysis[J].Environmental Microbiology Reports,2009,1(5):385-392
    [83]Kaparullina EN,Doronina NV,Ezhov VA,et al.EDTAdegradation by cells of Chelativorans oligotrophicus immobilized on a biofilter[J].Applied Biochemistry and Microbiology,2012,48(4):396-400
    [84]Jayamani I,Cupples AM.Stable isotope probing and high-throughput sequencing implicate Xanthomonadaceae and Rhodocyclaceae in ethylbenzene degradation[J].Environmental Engineering Science,2015,32(3):240-249
    [85]Pérez-Pantoja D,Donoso R,AgullóL,et al.Genomic analysis of the potential for aromatic compounds biodegradation in Burkholderiales[J].Environmental Microbiology,2012,14(5):1091-1117
    [86]Ji JY,Xing YJ,Ma ZT,et al.Toxicity assessment of anaerobic digestion intermediates and antibiotics in pharmaceutical wastewater by luminescent bacterium[J].Journal of Hazardous Materials,2013,246-247:319-323
    [87]Boente RF,Ferreira LQ,Falc?o LS,et al.Detection of resistance genes and susceptibility patterns in Bacteroides and Parabacteroides strains[J].Anaerobe,2010,16(3):190-194
    [88]Colombo S,Arioli S,Guglielmetti S,et al.Virome-associated antibiotic-resistance genes in an experimental aquaculture facility[J].FEMS Microbiology Ecology,2016,92(3):fiw003
    [89]Li B,Zhang XX,Guo F,et al.Characterization of tetracycline resistant bacterial community in saline activated sludge using batch stress incubation with high-throughput sequencing analysis[J].Water Research,2013,47(13):4207-4216
    [90]Huang KL,Tang JY,Zhang XX,et al.A comprehensive insight into tetracycline resistant bacteria and antibiotic resistance genes in activated sludge using next-generation sequencing[J].International Journal of Molecular Sciences,2014,15(6):10083-10100
    [91]Qiu JG,Liu B,Zhao LL,et al.A novel degradation mechanism for pyridine derivatives in Alcaligenes faecalis JQ135[J].Applied and Environmental Microbiology,2018,84(15):e00910-18
    [92]Zhang HH,Wang Y,Zhao C,et al.Biodegradation of ochratoxin A by Alcaligenes faecalis isolated from soil[J].Journal of Applied Microbiology,2017,123(3):661-668
    [93]Li T,Deng XP,Wang JJ,et al.Biodegradation of 3,4-dichloroaniline by a novel Myroides odoratimimus strain LWD09 with moderate salinity tolerance[J].Water,Air,&Soil Pollution,2012,223(6):3271-3279
    [94]Zhou YQ,Wang TY,Jiang ZZ,et al.Ecological effect and risk towards aquatic plants induced by perfluoroalkyl substances:bridging natural to culturing flora[J].Chemosphere,2017,167:98-106
    [95]Chen SQ,Zhou YQ,Meng J,et al.Seasonal and annual variations in removal efficiency of perfluoroalkyl substances by different wastewater treatment processes[J].Environmental Pollution,2018,242:2059-2067
    [96]Kim MH,Wang N,McDonald T,et al.Biodefluorination and biotransformation of fluorotelomer alcohols by two alkane-degrading Pseudomonas strains[J].Biotechnology and Bioengineering,2012,109(12):3041-3048
    [97]Kim MH,Wang N,Chu KH.6:2 Fluorotelomer alcohol(6:2FTOH)biodegradation by multiple microbial species under different physiological conditions[J].Applied Microbiology and Biotechnology,2014,98(4):1831-1840
    [98]Zhang S,Merino N,Wang N,et al.Impact of 6:2 fluorotelomer alcohol aerobic biotransformation on a sediment microbial community[J].Science of the Total Environment,2017,575:1361-1368
    [99]Nguyen LN,Nghiem LD,Oh S.Aerobic biotransformation of the antibiotic ciprofloxacin by Bradyrhizobium sp.isolated from activated sludge[J].Chemosphere,2018,211:600-607
    [100]Pan LJ,Li J,Li CX,et al.Study of ciprofloxacin biodegradation by a Thermus sp.isolated from pharmaceutical sludge[J].Journal of Hazardous Materials,2018,343:59-67
    [101]Caracciolo AB,Grenni P,Rauseo J,et al.Degradation of a fluoroquinolone antibiotic in an urbanized stretch of the River Tiber[J].Microchemical Journal,2018,136:43-48
    [102]Moreira IS,Ribeiro AR,Afonso CM,et al.Enantioselective biodegradation of fluoxetine by the bacterial strain Labrys portucalensis F11[J].Chemosphere,2014,111:103-111
    [103]Gao N,Liu CX,Xu QM,et al.Simultaneous removal of ciprofloxacin,norfloxacin,sulfamethoxazole by co-producing oxidative enzymes system of Phanerochaete chrysosporium and Pycnoporus sanguineus[J].Chemosphere,2018,195:146-155
    [104]Santos F,Mucha AP,Alexandrino DAM,et al.Biodegradation of enrofloxacin by microbial consortia obtained from rhizosediments of two estuarine plants[J].Journal of Environmental Management,2019,231:1145-1153
    [105]Bright TV,Clark BR,O’Brien E,et al.Bacterial production of hydroxylated and amidated metabolites of flurbiprofen[J].Journal of Molecular Catalysis B:Enzymatic,2011,72(3/4):116-121
    [106]Kim DW,Heinze TM,Kim BS,et al.Modification of norfloxacin by a Microbacterium sp.strain isolated from a wastewater treatment plant[J].Applied and Environmental Microbiology,2011,77(17):6100-6108
    [107]Rusch M,Kauschat A,Spielmeyer A,et al.Biotransformation of the antibiotic danofloxacin by Xylaria longipes leads to an efficient reduction of its antibacterial activity[J].Journal of Agricultural and Food Chemistry,2015,63(31):6897-6904
    [108]Saccomanno M,Hussain S,O’Connor NK,et al.Biodegradation of pentafluorosulfanyl-substituted aminophenol in Pseudomonas spp.[J].Biodegradation,2018,29(3):259-270
    [109]Hasan SA,Ferreira MIM,Koetsier MJ,et al.Complete Biodegradation of 4-fluorocinnamic acid by a consortium comprising Arthrobacter sp.strain G1 and Ralstonia sp.strain H1[J].Applied and Environmental Microbiology,2011,77(2):572-579
    [110]Song EX,Wang MZ,Shen DS.Isolation,identification and characterization of a novel Ralstonia sp.FD-1,capable of degrading 4-fluoroaniline[J].Biodegradation,2014,25(1):85-94
    [111]Cao WL,Song EX,Shen DS,et al.Cometabolism of fluoroanilines in the presence of 4-fluoroaniline by Ralstonia sp.FD-1[J].Journal of Chemistry,2015,2015:206150
    [112]Misiak K,Casey E,Murphy CD.Factors influencing4-fluorobenzoate degradation in biofilm cultures of Pseudomonas knackmussii B13[J].Water Research,2011,45(11):3512-3520
    [113]Amorim CL,Ferreira ACS,Carvalho MF,et al.Mineralization of4-fluorocinnamic acid by a Rhodococcus strain[J].Applied Microbiology and Biotechnology,2014,98(4):1893-1905
    [114]Eppinger E,Bürger S,Stolz A.Spontaneous release of fluoride during the dioxygenolytic cleavage of 5-fluorosalicylate by the salicylate 1,2-dioxygenase from Pseudaminobacter salicylatoxidans BN12[J].FEMS Microbiology Letters,2016,363(1):fnv211
    [115]Tiedt O,Mergelsberg M,Eisenreich W,et al.Promiscuous defluorinating enoyl-CoA hydratases/hydrolases allow for complete anaerobic degradation of 2-fluorobenzoate[J].Frontiers in Microbiology,2017,8:2579
    [116]Kwon BG,Lim HJ,Na SH,et al.Biodegradation of perfluorooctanesulfonate(PFOS)as an emerging contaminant[J].Chemosphere,2014,109:221-225
    [117]Liu JX,Lee LS,Nies LF,et al.Biotransformation of 8:2fluorotelomer alcohol in soil and by soil bacteria isolates[J].Environmental Science&Technology,2007,41(23):8024-8030
    [118]Shaw DMJ,Munoz G,Bottos EM,et al.Degradation and defluorination of 6:2 fluorotelomer sulfonamidoalkyl betaine and6:2 fluorotelomer sulfonate by Gordonia sp.strain NB4-1Y under sulfur-limiting conditions[J].Science of the Total Environment,2019,647:690-698
    [119]Van Hamme JD,Bottos EM,Bilbey NJ,et al.Genomic and proteomic characterization of Gordonia sp.NB4-1Y in relation to6:2 fluorotelomer sulfonate biodegradation[J].Microbiology,2013,159(8):1618-1628
    [120]Merino N,Wang M,Ambrocio R,et al.Fungal biotransformation of 6:2 fluorotelomer alcohol[J].Remediation Journal,2018,28(2):59-70
    [121]Tseng N,Wang N,Szostek B,et al.Biotransformation of 6:2fluorotelomer alcohol(6:2 FTOH)by a wood-rotting fungus[J].Environmental Science&Technology,2014,48(7):4012-4020
    [122]Amorim CL,Moreira IS,Maia AS,et al.Biodegradation of ofloxacin,norfloxacin,and ciprofloxacin as single and mixed substrates by Labrys portucalensis F11[J].Applied Microbiology and Biotechnology,2014,98(7):3181-3190
    [123]Kavanagh E,Winn M,Gabhann CN,et al.Microbial biotransformation of aryl sulfanylpentafluorides[J].Environmental Science and Pollution Research,2014,21(1):753-758
    [124]Krah D,Ghattas AK,Wick A,et al.Micropollutant degradation via extracted native enzymes from activated sludge[J].Water Research,2016,95:348-360
    [125]Tiedt O,Mergelsberg M,Boll K,et al.ATP-dependent C-F bond cleavage allows the complete degradation of 4-fluoroaromatics without oxygen[J].mBio,2016,7(4):e00990-16
    [126]Zhou JZ,He ZL,Yang YF,et al.High-throughput metagenomic technologies for complex microbial community analysis:open and closed formats[J].mBio,2015,6(1):e02288-14
    [127]Tu QC,Yu H,He ZL,et al.GeoChip 4:a functional gene-array-based high-throughput environmental technology for microbial community analysis[J].Molecular Ecology Resources,2014,14(5):914-928
    [128]Yin XL,Jiang XT,Chai BL,et al.ARGs-OAP v2.0 with an expanded SARG database and Hidden Markov Models for enhancement characterization and quantification of antibiotic resistance genes in environmental metagenomes[J].Bioinformatics,2018,34(13):2263-2270
    [129]Pope PB,Smith W,Denman SE,et al.Isolation of Succinivibrionaceae implicated in low methane emissions from Tammar wallabies[J].Science,2011,333(6042):646-648
    [130]Prasse C,Stalter D,Schulte-Oehlmann U,et al.Spoilt for choice:a critical review on the chemical and biological assessment of current wastewater treatment technologies[J].Water Research,2015,87:237-270
    [131]Pomiès M,Choubert JM,Wisniewski C,et al.Modelling of micropollutant removal in biological wastewater treatments:a review[J].Science of the Total Environment,2013,443:733-748
    [132]Liu D,Hoynes-O’Connor A,Zhang FZ.Bridging the gap between systems biology and synthetic biology[J].Frontiers in Microbiology,2013,4:211

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700