Citation: | XU Lan, ZHOU Zhen-chao, ZHU Lin, LIU Yang, SHUAI Xin-yi, LIN Ze-jun, CHEN Hong. REMOVAL EFFICIENCY OF ANTIBIOTIC RESISTOME IN ACTIVATED CARBON DRINKING WATER PURIFIERS[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(6): 27-33. doi: 10.13205/j.hjgc.202106005 |
[1] |
TANG J,WANG L L,XI Y F,et al.A three-year survey of the antimicrobial resistance of microorganisms at a Chinese hospital[J].Experimental and Therapeutic Medicine,2016,11(3):731-736.
|
[2] |
FANG H,WANG H F,CAI L,et al.Prevalence of antibiotic resistance genes and bacterial pathogens in long-term manured greenhouse soils as revealed by metagenomic survey[J].Environmental Science & Technology,2015,49(2):1095-1104.
|
[3] |
MANAIA C M,ROCHA J,SCACCIA N,et al.Antibiotic resistance in wastewater treatment plants:tackling the black box[J].Environment International,2018,115:312-324.
|
[4] |
STOLL C,SIDHU J P S,TIEHM A,et al.Prevalence of clinically relevant antibiotic resistance genes in surface water samples collected from Germany and Australia[J].Environmental Science & Technology,2012,46(17):9716-9726.
|
[5] |
JIANG L,HU X L,XU T,et al.Prevalence of antibiotic resistance genes and their relationship with antibiotics in the Huangpu River and the drinking water sources,Shanghai,China[J].Science of the Total Environment,2013,458-460:267-272.
|
[6] |
ZHENG J,CHEN T,CHEN H,et al.Antibiotic resistome promotion in drinking water during biological activated carbon treatment:is it influenced by quorum sensing?[J].Science of the Total Environment,2018,612:1-8.
|
[7] |
XU L K,OUYANG W Y,QIAN Y Y,et al.High-throughput profiling of antibiotic resistance genes in drinking water treatment plants and distribution systems[J].Environmental Pollution,2016,213:119-126.
|
[8] |
WU C C,GHOSH S,MARTIN K J,et al.The microbial colonization of activated carbon block point-of-use (PoU) filters with and without chlorinated phenol disinfection by-products[J].Environmental Science-Water Research & Technology,2017,3(5):830-843.
|
[9] |
KOROTTA-GAMAGE S M,SATHASIVAN A.A review:potential and challenges of biologically activated carbon to remove natural organic matter in drinking water purification process[J].Chemosphere,2017,167:120-138.
|
[10] |
COOK D,NEWCOMBE G.Comparison and modeling of the adsorption of two microcystin analogues onto powdered activated carbon[J].Environmental technology,2008,29(5):525-534.
|
[11] |
LO S F,WANG S Y,TSAI M J,et al.Adsorption capacity and removal efficiency of heavy metal ions by Moso and Ma bamboo activated carbons[J].Chemical Engineering Research and Design,2012,90(9):1397-1406.
|
[12] |
CHAIDEZ C,GERBA C P.Comparison of the microbiologic quality of point-of-use (POU)-treated water and tap water[J].International Journal of Environmental Health Research,2004,14(4):253-260.
|
[13] |
SU F Y,LUO M F,ZHANG F,et al.Performance of microbiological control by a point-of-use filter system for drinking water purification[J].Journal of Environmental Sciences,2009,21(9):1237-1246.
|
[14] |
FARKAS A,BUTIUC-KEUL A,CIATARAS D,et al.Microbiological contamination and resistance genes in biofilms occurring during the drinking water treatment process[J].Science of the Total Environment,2013,443:932-938.
|
[15] |
BAI X H,MA X L,XU F M,et al.The drinking water treatment process as a potential source of affecting the bacterial antibiotic resistance[J].Science of the Total Environment,2015,533:24-31.
|
[16] |
SUHAS,GUPTA V K,CARROTT P J M,et al.Cellulose:a review as natural,modified and activated carbon adsorbent[J].Bioresource Technology,2016,216:1066-1076.
|
[17] |
KLAPPENBACH J A,SAXMAN P R,COLE J R,et al.Rrndb:the ribosomal RNA operon copy number database[J].Nucleic Acids Research,2001,29(1):181-184.
|
[18] |
ZHANG Y,GU A Z,CEN T Y,et al.Sub-inhibitory concentrations of heavy metals facilitate the horizontal transfer of plasmid-mediated antibiotic resistance genes in water environment[J].Environmental Pollution,2018,237:74-82.
|
[19] |
ZHANG Y,GU A Z,HE M,et al.Subinhibitory concentrations of disinfectants promote the horizontal transfer of multidrug resistance genes within and across Genera[J].Environmental Science & Technology,2016,51(1):570-580.
|
[20] |
SU J Q,WEI B,OU-YANG W Y,et al.Antibiotic resistome and its association with bacterial communities during sewage sludge composting[J].Environmental Science & Technology,2015,49(12):7356-7363.
|
[21] |
JIA S Y,SHI P,HU Q,et al.Bacterial community shift drives antibiotic resistance promotion during drinking water chlorination[J].Environmental Science & Technology,2015,49(20):12271-12279.
|
[22] |
CHEN H,ZHANG M M.Occurrence and removal of antibiotic resistance genes in municipal wastewater and rural domestic sewage treatment systems in eastern China[J].Environment International,2013,55:9-14.
|
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