鄱阳湖流域袁河水体典型抗生素分布特征及生态风险评价
Distribution Characteristics and Ecological Risk Assessment of Typical Antibiotics in Yuanhe River of Poyang Lake Basin
-
摘要: 以鄱阳湖流域的袁河为研究区,以常用的磺胺类、四环素类、喹诺酮类、硝基咪唑类和大环内酯类等五大类抗生素,共计27种抗生素为研究对象,采用优化后的固相萃取前处理-液质联用仪检测法检测抗生素,对袁河流域典型抗生素的分布、来源及生态风险进行研究。结果表明,袁河水体中抗生素广泛存在,有20种抗生素被不同程度地检测出,其中磺胺类和硝基咪唑类的检出率达到了100%,养殖废水和生活污水是袁河流域抗生素的主要来源。研究区抗生素的分布特征与区域内的养殖业发展和社会活动存在一定联系。对袁河水体的12种抗生素进行了生态风险评价,结果表明,克拉霉素处于高风险,红霉素、土霉素、恩诺沙星和磺胺噻唑处于中等风险,其余为低风险或无风险。Abstract: This paper chooses Yuanhe River in the Poyang Lake basin as study area. 27 types of commonly-used antibiotics, including sulfonamides, tetracyclines, quinolones, nitroimidazoles and macrolides, were selected as research objects. The presences of the antibiotics were detected by employing an optimized solid-phase extraction pretreating-liquid mass spectrometry method, and the distribution, origin and ecologic risk of the typical antibiotics were investigated. Results showed that antibiotics widely occurred in Yuanhe River with 20 kinds of antibiotics being detected at various levels. Among them, sulfonamides and nitroimidazoles had a detection rate reaching 100%. Breeding wastewater and domestic sewage were determined to be the main sources of antibiotics in the Yuanhe River basin. The distribution characteristics of antibiotics were related to the prosperity of breeding industries and social activities in this region. Results of ecological risk assessment of 12 types of antibiotics in the Yuanhe River water body showed that clarithromycin would pose a high risk; erythromycin, oxytetracycline, enrofloxacin and sulfathiazole would pose a medium risk; the rest antibiotics would pose low risk or no risk.
-
Key words:
- antibiotics /
- Yuanhe River /
- ecological risk assessment /
- distribution characteristics /
- source
-
-
Bai Y W, Meng W, Xu J, et al. Occurrence, distribution and bioaccumulation of antibiotics in the Liao River Basin in China[J]. Environmental Science Processes & Impacts, 2014, 16(3):586-593 焦彦朝. 动物性食物中的抗生素残留对人体健康的影响[J]. 当代畜牧, 1994(3):37 Haller M Y, Müller S R, McArdell C S, et al. Quantification of veterinary antibiotics (sulfonamides and trimethoprim) in animal manure by liquid chromatography-mass spectrometry[J]. Journal of Chromatography A, 2002, 952(1-2):111-120 Halling-Sørensen B. Inhibition of aerobic growth and nitrification of bacteria in sewage sludge by antibacterial agents[J]. Archives of Environmental Contamination and Toxicology, 2001, 40(4):451-460 Li X W, Xie Y F, Wang J F, et al. Influence of planting patterns on fluoroquinolone residues in the soil of an intensive vegetable cultivation area in Northern China[J]. The Science of the Total Environment, 2013, 458-460:63-69 Xie Y F, Li X W, Wang J F, et al. Spatial estimation of antibiotic residues in surface soils in a typical intensive vegetable cultivation area in China[J]. The Science of the Total Environment, 2012, 430:126-131 Shao S C, Hu Y Y, Cheng J H, et al. Research progress on distribution, migration, transformation of antibiotics and antibiotic resistance genes (ARGs) in aquatic environment[J]. Critical Reviews in Biotechnology, 2018, 38(8):1195-1208 王云鹏, 马越. 养殖业抗生素的使用及其潜在危害[J]. 中国抗生素杂志, 2008, 33(9):519-523 Wang Y P, Ma Y. Potential public hazard of using antibiotics in livestock industry[J]. Chinese Journal of Antibiotics, 2008, 33(9):519-523(in Chinese)
应光国. 中国抗生素使用与流域污染[C]//中国化学会. 中国化学会第30届学术年会摘要集-第二十六分会:环境化学. 大连:中国化学会第30届学术年会, 2016:144 李振, 王云建. 畜禽养殖中抗生素使用的现状、问题及对策[J]. 中国动物保健, 2009, 11(7):55-57 姚建华, 牛德奎, 李兆君, 等. 抗生素土霉素对小麦根际土壤酶活性和微生物生物量的影响[J]. 中国农业科学, 2010, 43(4):721-728 Yao J H, Niu D K, Li Z J, et al. Effects of antibiotics oxytetracycline on soil enzyme activities and microbial biomass in wheat rhizosphere[J]. Scientia Agricultura Sinica, 2010, 43(4):721-728(in Chinese)
Barnes K K, Kolpin D W, Furlong E T, et al. A national reconnaissance of pharmaceuticals and other organic wastewater contaminants in the United States-Ⅰ) groundwater[J]. The Science of the Total Environment, 2008, 402(2-3):192-200 Batt A L, Bruce I B, Aga D S. Evaluating the vulnerability of surface waters to antibiotic contamination from varying wastewater treatment plant discharges[J]. Environmental Pollution, 2006, 142(2):295-302 Cheng D M, Liu X H, Wang L, et al. Seasonal variation and sediment-water exchange of antibiotics in a shallower large lake in North China[J]. Science of the Total Environment, 2014, 476-477:266-275 郭晓, 李国良, 刘孝利, 等. 梅江流域沉积物中四环素类抗生素的空间分布特征及其迁移转化规律[J]. 环境科学学报, 2015, 35(10):3202-3209 Guo X, Li G L, Liu X L, et al. Spatial distribution, transportation and transformation of tetracyclines antibiotics in Meijiang River Catchment[J]. Acta Scientiae Circumstantiae, 2015, 35(10):3202-3209(in Chinese)
Zhang Q Q, Ying G G, Pan C G, et al. Comprehensive evaluation of antibiotics emission and fate in the river basins of China:Source analysis, multimedia modeling, and linkage to bacterial resistance[J]. Environmental Science & Technology, 2015, 49(11):6772-6782 Li J L, Dong Y H, Hu F W, et al. Occurrence of antibiotics in water in Xiaodian sewage irrigation area, Northern China[J]. IOP Conference Series Earth and Environmental Science, 2018, 146(1):012028 Jiang Y H, Li M X, Guo C S, et al. Distribution and ecological risk of antibiotics in a typical effluent-receiving river (Wangyang River) in North China[J]. Chemosphere, 2014, 112:267-274 魏红, 王嘉玮, 杨小雨, 等. 渭河关中段表层水中抗生素污染特征与风险[J]. 中国环境科学, 2017, 37(6):2255-2262 Wei H, Wang J W, Yang X Y, et al. Contamination characteristic and ecological risk of antibiotics in surface water of the Weihe Guanzhong section[J]. China Environmental Science, 2017, 37(6):2255-2262(in Chinese)
Murata A, Takada H, Mutoh K, et al. Nationwide monitoring of selected antibiotics:Distribution and sources of sulfonamides, trimethoprim, and macrolides in Japanese Rivers[J]. The Science of the Total Environment, 2011, 409(24):5305-5312 Zuccato E, Castiglioni S, Bagnati R, et al. Source, occurrence and fate of antibiotics in the Italian aquatic environment[J]. Journal of Hazardous Materials, 2010, 179(1-3):1042-1048 Tamtam F, Mercier F, Le Bot B, et al. Occurrence and fate of antibiotics in the Seine River in various hydrological conditions[J]. The Science of the Total Environment, 2008, 393(1):84-95 熊小群, 杨荣清. 主编. 江西省水文局编. 江西水系[M]. 武汉:长江出版社, 2007:73-74 姜凌霄. 鄱阳湖区典型养猪场废水抗生素污染特征及催化降解研究[D]. 南昌:南昌航空大学, 2012:21-56 Jiang L X. Pollution characteristics of typical antibiotics in livestock wastewater from Poyang-lake District and its photocatalytic degradation[D]. Nanchang:Nanchang Hangkong University, 2012:21 -56(in Chinese)
孙秋根. 太湖平原河网典型抗生素的时空分布和风险评价[D]. 重庆:重庆交通大学, 2018:12-59 廖杰, 魏晓琴, 肖燕琴, 等. 莲花水库水体中抗生素污染特征及生态风险评价[J]. 环境科学, 2020, 41(9):4081-4087 Liao J, Wei X Q, Xiao Y Q, et al. Pollution characteristics and risk assessment of antibiotics in Lianhua Reservoir[J]. Environmental Science, 2020, 41(9):4081-4087(in Chinese)
张晓娇, 柏杨巍, 张远, 等. 辽河流域地表水中典型抗生素污染特征及生态风险评估[J]. 环境科学, 2017, 38(11):4553-4561 Zhang X J, Bai Y W, Zhang Y, et al. Occurrence, distribution, and ecological risk of antibiotics in surface water in the Liaohe River Basin, China[J]. Environmental Science, 2017, 38(11):4553-4561(in Chinese)
刘瀚阳. 典型抗生素在淮河流域(安徽段)水生生态系统中的分布特征、沉降趋势及其风险评估[D]. 芜湖:安徽师范大学, 2020:11-80 Liu H Y. Occurrence, deposition trend and risk assessment of typical antibiotics in the aquatic environment of the Anhui section of Huaihe River Basin[D]. Wuhu:Anhui Normal University, 2020:11 -80(in Chinese)
徐维海, 张干, 邹世春, 等. 香港维多利亚港和珠江广州河段水体中抗生素的含量特征及其季节变化[J]. 环境科学, 2006, 27(12):2458-2462 Xu W H, Zhang G, Zou S C, et al. Occurrence and seasonal changes of antibiotics in the Victoria harbour and the Pearl River, South China[J]. Environmental Science, 2006, 27(12):2458-2462(in Chinese)
胡发旺. 鄱阳湖流域典型抗生素分布规律及吸附行为研究[D]. 南昌:东华理工大学, 2020:11-27 Hu F W. Study on the distribution and adsorption behavior of typical antibiotics in Poyang Lake Basin[D]. Nanchang:East China Institute of Technology, 2020:11 -27(in Chinese)
黎燕平, 刘澄宇. 袁河新余段水质状况及防治对策[J]. 新余学院学报, 2015, 20(1):13-15 Li Y P, Liu C Y. The Current situation of water quality in Xinyu section of Yuanhe River and its prevention[J]. Journal of Xinyu University, 2015, 20(1):13-15(in Chinese)
冯栋梁, 封林玉, 张倚剑, 等. 猪粪堆肥过程中四环素类抗生素的生物转化及降解研究进展[J]. 生态毒理学报, 2020, 15(4):45-55 Feng D L, Feng L Y, Zhang Y J, et al. Advances in biotransformation and degradation of tetracycline antibiotics during composting of pig manure[J]. Asian Journal of Ecotoxicology, 2020, 15(4):45-55(in Chinese)
李伟明, 鲍艳宇, 周启星. 四环素类抗生素降解途径及其主要降解产物研究进展[J]. 应用生态学报, 2012, 23(8):2300-2308 Li W M, Bao Y Y, Zhou Q X. Degradation pathways and main degradation products of tetracycline antibiotics:Research progress[J]. Chinese Journal of Applied Ecology, 2012, 23(8):2300-2308(in Chinese)
罗方园, 潘根兴, 李恋卿, 等. 洪泽湖沉积物中四环素土霉素及相关抗性基因的分布特征及潜在风险分析[J]. 农业环境科学学报, 2017, 36(2):369-375 Luo F Y, Pan G X, Li L Q, et al. The distribution characteristics and potential risk of tetracycline, oxytetracycline and their corresponding genes pollution in sediment of Hongze Lake[J]. Journal of Agro-Environment Science, 2017, 36(2):369-375(in Chinese)
Duong H A, Pham N H, Nguyen H T, et al. Occurrence, fate and antibiotic resistance of fluoroquinolone antibacterials in hospital wastewaters in Hanoi, Vietnam[J]. Chemosphere, 2008, 72(6):968-973 Figueroa R A, MacKay A A. Sorption of oxytetracycline to iron oxides and iron oxide-rich soils[J]. Environmental Science & Technology, 2005, 39(17):6664-6671 秦延文, 张雷, 时瑶, 等. 大辽河表层水体典型抗生素污染特征与生态风险评价[J]. 环境科学研究, 2015, 28(3):361-368 Qin Y W, Zhang L, Shi Y, et al. Contamination characteristics and ecological risk assessment of typical antibiotics in surface water of the Daliao River, China[J]. Research of Environmental Sciences, 2015, 28(3):361-368(in Chinese)
Lin T, Yu S L, Chen W. Occurrence, removal and risk assessment of pharmaceutical and personal care products (PPCPs) in an advanced drinking water treatment plant (ADWTP) around Taihu Lake in China[J]. Chemosphere, 2016, 152:1-9 Deo R P. Pharmaceuticals in the surface water of the USA:A review[J]. Current Environmental Health Reports, 2014, 1(2):113-122 钟振兴. 磺胺抗生素在湖泊沉积物中的吸附和降解行为研究[D]. 重庆:西南大学, 2012:1-12 Zhong Z X. Adsorption and degradation of sulfonamides in lake sediments[D]. Chongqing:Southwest University, 2012:1 -12(in Chinese)
Radua S, Ling O W, Srimontree S, et al. Characterization of Burkholderia pseudomallei isolated in Thailand and Malaysia[J]. Diagnostic Microbiology and Infectious Disease, 2000, 38(3):141-145 薛保铭. 广西邕江水体典型抗生素污染特征与生态风险评估[D]. 南宁:广西大学, 2013:28-42 Xue B M. Contamination and risks assessment of typical antibiotics in the Yongjiang River, Guangxi Province[D]. Nanning:Guangxi University, 2013:28 -42(in Chinese)
岳俊涛, 欧阳涛. 仙女湖水质变化特征及富营养化分析与评价[J]. 水电能源科学, 2021, 39(11):81-83 , 9 Yue J T, Ouyang T. Analysis and evaluation of water quality change characteristics and eutrophication of Xiannv Lake[J]. Water Resources and Power, 2021, 39(11):81-83, 9(in Chinese)
Ferrari B, Mons R, Vollat B, et al. Environmental risk assessment of six human pharmaceuticals:Are the current environmental risk assessment procedures sufficient for the protection of the aquatic environment?[J]. Environmental Toxicology and Chemistry, 2004, 23(5):1344-1354 Lützhøft H C H, Halling-Sørensen B, Jørgensen S E. Algal toxicity of antibacterial agents applied in Danish fish farming[J]. Archives of Environmental Contamination and Toxicology, 1999, 36(1):1-6 石浩. 沉积物中20种抗生素残留的分析方法及其应用[D]. 上海:华东师范大学, 2014:48-53 Shi H. The analysis method of twenty antibiotics in the sediment and its application[D]. Shanghai:East China Normal University, 2014:48 -53(in Chinese)
Kolar B, Arnuš L, Jeretin B, et al. The toxic effect of oxytetracycline and trimethoprim in the aquatic environment[J]. Chemosphere, 2014, 115:75-80 González-Pleiter M, Gonzalo S, Rodea-Palomares I, et al. Toxicity of five antibiotics and their mixtures towards photosynthetic aquatic organisms:Implications for environmental risk assessment[J]. Water Research, 2013, 47(6):2050-2064 Backhaus T, Scholze M, Grimme L H. The single substance and mixture toxicity of quinolones to the bioluminescent bacterium Vibrio fischeri[J]. Aquatic Toxicology, 2000, 49(1-2):49-61 Białk-Bielińska A, Stolte S, Arning J, et al. Ecotoxicity evaluation of selected sulfonamides[J]. Chemosphere, 2011, 85(6):928-933 Grung M, Källqvist T, Sakshaug S, et al. Environmental assessment of Norwegian priority pharmaceuticals based on the EMEA guideline[J]. Ecotoxicology and Environmental Safety, 2008, 71(2):328-340 Eguchi K, Nagase H, Ozawa M, et al. Evaluation of antimicrobial agents for veterinary use in the ecotoxicity test using microalgae[J]. Chemosphere, 2004, 57(11):1733-1738 -

计量
- 文章访问数: 2467
- HTML全文浏览数: 2467
- PDF下载数: 80
- 施引文献: 0