Professional Committee of Rock and Mineral Testing Technology of the Geological Society of China, National Geological Experiment and Testing CenterHost
2021 Vol. 40, No. 6
Article Contents

MA Jian-sheng, WANG Zhuo, ZHANG Ze-yu, LIU Qiang, LI Li-jun. Distribution Characteristics of 29 Antibiotics in Groundwater in Harbin[J]. Rock and Mineral Analysis, 2021, 40(6): 944-953. doi: 10.15898/j.cnki.11-2131/td.202101040001
Citation: MA Jian-sheng, WANG Zhuo, ZHANG Ze-yu, LIU Qiang, LI Li-jun. Distribution Characteristics of 29 Antibiotics in Groundwater in Harbin[J]. Rock and Mineral Analysis, 2021, 40(6): 944-953. doi: 10.15898/j.cnki.11-2131/td.202101040001

Distribution Characteristics of 29 Antibiotics in Groundwater in Harbin

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  • BACKGROUND

    At present, the supervision of antibiotic abuse and its research is being strengthened. In recent years, antibiotics have been detected in varying degrees in water in central China. This reinforces the concern of the pollution of antibiotics in surface and groundwater.

    OBJECTIVES

    To investigate the distribution characteristics of 29 antibiotics in groundwater in Harbin.

    METHODS

    A total of 26 groups of groundwater samples were collected in Harbin, and the sampling scope included habitation and production areas such as densely populated, industrial production, agricultural districts and animal husbandry. The ultra-performance liquid chromatography-triple quadrupole mass spectrometry method was used to analyze 29 kinds of antibiotics covering six types, including sulfonamides, quinolones, macrolides, β-lactams, tetracyclines, and lincosamides.

    RESULTS

    Antibiotics in the groundwater of Harbin were mainly composed of sulfonamides, quinolones, macrolides and tetracyclines and the detection rates were 61.5%, 46.2%, 42.3% and 38.5%, respectively. The content of antibiotics detected ranged from 0.02 to 681ng/L, and the highest contents of sulfathiazole, sulfadiazine, and lincomycin were more than 100ng/L. The average content of quinolones was low compared with some domestic and international areas (such as Beijing, Tianjin, and Barcelona). Sampling sites with higher antibiotic levels were mainly found in the central, southern and eastern regions of the city. These areas are also relatively densely populated and are generally distributed around pharmaceutical factories, urban sewage outlets, and poultry and livestock farms.

    CONCLUSIONS

    The distribution characteristics of antibiotics in groundwater in Harbin are strongly related to the impact of human production and living activities.

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