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Spatiotemporal distributions of Cu, Zn, metribuzin, atrazine, and their transformation products in the surface water of a small plain stream in eastern China

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Abstract

The intensive use of fertilizers and pesticides in agriculture has led to widespread nonpoint source pollution in surface waterbodies. In this work, the occurrence and distribution of nonpoint source metals (Cu and Zn) and herbicides (metribuzin; atrazine; and its degradates, including desethyl atrazine (DEA), desisoproylatrazine (DIA), and deethyldeisopropylatrazine (DEDIA)) in the surface water of the Baima River, which is located in a region noted for its intense agricultural activities, were investigated during a high water period in August and a low water period in October. The results showed that the heavy metals and herbicides investigated were detected frequently in the surface water of the river during the two periods. The average concentrations of Cu during the high water period and low water period were 9.3 (0–20.7) and 8.7 (0–15.55) μg/L, and the average concentrations of Zn during the two periods were 11.4 (6.65–22.15) and 10.6 (7.55–15.15) μg/L, respectively. The concentrations of atrazine were higher than those of metribuzin, which ranged from 0.07 to 1.12 μg/L during the high water period and 0.01–0.74 μg/L during the low water period. The total concentrations of atrazine and its transformation products in 60.00% of the samples during the high water period exceeded the maximum contaminant level (MCL) of 3 μg/L for the drinking water criteria in the USA, and 33.33% of the samples exceeded the MCL during the low water period. The spatial and temporal distributions of nonpoint source pollutants along the Baima River were influenced by land use and hydrogeomorphic settings. The ecotoxicological risk assessment indicated that atrazine and DIA have moderate risks to aquatic environment in Baima River.

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References

  • Amaral, B.d., Araujo, J. A.d., Peralta-Zamora, P. G., & Nagata, N. (2014). Simultaneous determination of atrazine and metabolites (DIA and DEA) in natural water by multivariate electronic spectroscopy. Microchemical Journal, 117, 262–267.

  • Barchanska, H., Sajdak, M., Szczypka, K., Swientek, A., Tworek, M., & Kurek, M. (2017). Atrazine, triketone herbicides, and their degradation products in sediment, soil and surface water samples in Poland. Environmental Science & Pollution Research, 24, 644–658.

    Article  CAS  Google Scholar 

  • Chen, F., Hou, L., Liu, M., Zheng, Y., Yin, G., Lin, X., Li, X., Zong, H., Deng, F., Gao, J., & Jiang, X. (2016a). Net anthropogenic nitrogen inputs (NANI) into the Yangtze River basin and the relationship with riverine nitrogen export. Journal of Geophysical Research – Biogeosciences, 121, 451–465.

    Article  CAS  Google Scholar 

  • Chen, H., Zhu, J., Li, Z., Chen, A., & Zhang, Q. (2016b). The occurrence and risk assessment of five organophosphorus pesticides in river water from Shangyu, China. Environmental Monitoring and Assessment, 188, 614.

    Article  Google Scholar 

  • CSEPB (Chinese State Environmental Protection Bureau) and CGQSIQB (Chinese General Quality Supervision, Inspection and Quarantine Bureau). (2002). Environmental quality standards for surface water. Beijing: Standards Press of China.

    Google Scholar 

  • CSEPA(Chinese State Environmental Protection Administration). (2002). The monitoring and analysis methods of water and waste water (pp. 45–60). Beijing: Environmental Science Press in China.

    Google Scholar 

  • ECC (European Community Commission). (2003). Technical guidance document on risk assessment. Part II. Joint Research Centre, Brussels, Belgium.

  • Fenelon, J. M., & Moore, R. C. (1998). Transport of agrichemicals to ground and surface water in a small Central Indiana watershed. Journal of Environmental Quality, 27, 884–894.

    Article  CAS  Google Scholar 

  • Fu, Z., Wu, F., Chen, L., Xu, B., Feng, C., Bai, Y., Liao, H., Sun, S., Giesy, J. P., & Guo, W. (2016). Copper and zinc, but not other priority toxic metals, pose risks to native aquatic species in a large urban lake in Eastern China. Environmental Pollution, 219, 1069–1076.

    Article  CAS  Google Scholar 

  • Gao, J., Su, F., & Meng, F. (2015). Distribution characteristics rules of Cu in Dahuofang Reservoir Basin. Journal of Soil and Water Conservation, 29, 235–262.

    Google Scholar 

  • Ge, J., Cong, J., Sun, Y., Li, G. X., Zhou, Z. Q., Qian, C. F., et al. (2010). Determination of endocrine disrupting chemicals in surface water and industrial wastewater from Beijing, China. Bulletin of Environmental Contamination and Toxicology, 84, 401–405.

    Article  CAS  Google Scholar 

  • Gfrerer, M., Martens, D., Gawlik, B. M., Wenzl, T., Zhang, A., Quan, X., Sun, C., Chen, J., Platzer, B., Lankmayr, E., & Kettrup, A. (2002a). Triazines in the aquatic systems of the Eastern Chinese Rivers Liao-He and Yangtse. Chemosphere, 47, 455–466.

    Article  CAS  Google Scholar 

  • Gfrerer, M., Wenzl, T., Quan, X., Platzer, B., & Lankmayr, E. (2002b). Occurrence of triazines in surface and drinking water of Liaoning Province in Eastern China. Journal of Biochemical and Biophysical Methods, 53, 217–228.

    Article  CAS  Google Scholar 

  • Han, F., Chen, J., Jiang, Z., Chen, L., & Ji, W. (2013). Volatile and semi-volatile organic compounds in the lower Yangtze River and surface waters of three Chinese provinces. Polish Journal of Environmental Studies, 22, 683–690.

    CAS  Google Scholar 

  • Han, F. A., Chen, J., & Jiang, Z. F. (2011). Investigation of VOCs and SVOCs in surface water source in Jiangsu, Zhejiang, Shandong Province, China. Journal of Environmental Health, 28, 890–894.

    CAS  Google Scholar 

  • Jablonowski, N. D., Schäffer, A., & Burauel, P. (2011). Still present after all these years: persistence plus potential toxicity raise questions about the use of atrazine. Environmental Science & Pollution Research, 18, 328–331.

    Article  CAS  Google Scholar 

  • Jin, R., & Ke, J. (2002). Impact of atrazine disposal on the water resources of the Yang river in Zhangjiakou area in China. Bulletin of Environmental Contamination and Toxicology, 68, 893–900.

    Article  CAS  Google Scholar 

  • Li, A. (2006). Characteristics and significances of trace elements in rivers flowing into Taihu Lake. Hohai University, Nanjing.

  • Li, M., Liu, Q., & Zhou, W. (2010). Assessment on health risks associated with heavy metal pollutants for water environment of watersheds of Poyang Lake. Journal of Anhui agricultural science, 38, 18278–18280.

    CAS  Google Scholar 

  • Li, Q., Luo, Y., Song, J., & Wu, L. (2007). Risk assessment of atrazine polluted farmland and drinking water: A case study. Bulletin of Environmental Contamination and Toxicology, 78, 187–190.

    Article  CAS  Google Scholar 

  • Na, T., Jianfang, F., Cheng, S., & Fang, Z. (2005). Determination of atrazine in water of Taihu Meiliang Bay by capillary gas chromatography. Environmental Pollution & Control, 27, 634–636.

    Google Scholar 

  • National Bureau of Statistics in China. (2015). China’s statistic yearbook on environment-2015. Beijing: China Statistics Press.

    Google Scholar 

  • Office of the South-to-North Water Diversion Project Construction Committee in China (SNWTPCC). (2016). The south-to-north water diversion project. Engineering, 2, 265–267.

    Article  Google Scholar 

  • Papadakis, E. N., Tsaboula, A., Kotopoulou, A., Kintzikoglou, K., Vryzas, Z., & Papadopoulou-Mourkidou, E. (2015). Pesticides in the surface waters of Lake Vistonis Basin, Greece: occurrence and environmental risk assessment. Science of the Total Environment, 536, 793–802.

    Article  CAS  Google Scholar 

  • PPDB. (2018). Pesticide Properties Database (PPDB). University of Hertfordshire Available online. https://sitem.herts.ac.uk/aeru/ppdb/en/Reports/1295.htm. Accessed 05/02/2019

  • Qi, W., Müller, B., Pernet-Coudrier, B., Singer, H., Liu, H., Qu, J., & Berg, M. (2014). Organic micropollutants in the Yangtze River: seasonal occurrence and annual loads. Science of the Total Environment, 472, 789–799.

    Article  CAS  Google Scholar 

  • Ralston-Hooper, K., Hardy, J., Hahn, L., Ochoa-Acuña, H., Lee, L. S., Mollenhauer, R., & Sepúlveda, M. S. (2009). Acute and chronic toxicity of atrazine and its metabolites deethylatrazine and deisopropylatrazine on aquatic organisms. Ecotoxicology, 18(7), 899–905.

    Article  CAS  Google Scholar 

  • Ren, W., Wang, M., & Zhou, Q. (2011). Effect of soil pH and organic matter on desorption hysteresis of chlorimuron-ethyl in two typical Chinese soils. Journal of Soils and Sediments, 11(4), 552–561.

    Article  CAS  Google Scholar 

  • Ryberg, K. R., & Gilliom, R. J. (2015). Trends in pesticide concentrations and use for major rivers of the United States. Science of the Total Environment, 538, 431–444.

    Article  CAS  Google Scholar 

  • Sun, X., Zhou, Q., & Ren, W. (2013a). Herbicide occurrence in riparian soils and its transporting risk in the Songhua River Basin, China. Agronomy for Sustainable Development, 33, 777–785.

    Article  CAS  Google Scholar 

  • Sun, X., Zhou, Q., Wang, Y., & Ren, W. (2013b). Influence of hydro-geomorphology, land-use and riparian zone characteristics on herbicide occurrence and distribution in sediments in Songhua River Basin, northeastern China. Geoderma, 193, 156–164.

    Article  Google Scholar 

  • Švorc, Ľ., Rievaj, M., & Bustin, D. (2013). Green electrochemical sensor for environmental monitoring of pesticides: determination of atrazine in river waters using a boron-doped diamond electrode. Sensors and Actuators B: Chemical, 181, 294–300.

    Article  Google Scholar 

  • Toccalino, P. L., Gilliom, R. J., Lindsey, B. D., & Rupert, M. G. (2014). Pesticides in groundwater of the United States: decadal-scale changes, 1993–2011. Groundwater, 52, 112–125. https://doi.org/10.1111/gwat.12176.

    Article  CAS  Google Scholar 

  • Tu, J. (2009). Combined impact of climate and land use changes on streamflow and water quality in eastern Massachusetts, USA. Journal of Hydrology, 379, 268–283. https://doi.org/10.1016/j.jhydrol.2009.10.009.

    Article  CAS  Google Scholar 

  • Tu, J., & Xia, Z. G. (2009). Examining spatially varying relationships between land use and water quality using geographically weighted regression I: model design and evaluation. Science of the Total Environment, 407, 358–378.

    Article  Google Scholar 

  • Wang, M., & Li, S. (2014). Heavy metals in fertilizers and effect of the fertilization on heavy metal accumulation in soils and crops. Journal of Plant Nutrition & Fertilizer, 20, 466–480.

    CAS  Google Scholar 

  • Xu, R., Wei, F., Wang, Y., Hu, W., Ye, X., & Xu, G. (2007). Determination of atrazine and its metabolites in human urines using gas chromatography. Chinese Journal of Chromatography, 25, 758–761.

    CAS  Google Scholar 

  • Yan, D., He, Y., & Wang, H. (2005). Environmental characteristics of the atrazine in the waters in east Liaohe River basin. Environmental Sciences, 26, 203–208.

    CAS  Google Scholar 

  • Yan, J., Guo, X., Li, W., & Niu, J. (2014). Determination of heavy metals in fertilizer. Guangdong Chemical Industry, 20, 466–480.

    Google Scholar 

  • Yang, M., Ma, Y., Lin, Z., & Yao, Z. W. (2008). Determination of trazine and acetamide herbicides in environmental water by solid phase extraction/gas chromatography-mass spectrometry. Journal of Instrumental Analysis, 27, 38–41.

    Google Scholar 

  • Yu, T., Zhang, Y., Hu, X., & Meng, W. (2012). Distribution and bioaccumulation of heavy metals in aquatic organisms of different trophic levels and potential health risk assessment from Taihu lake, China. Ecotoxicology and Environmental Safety, 81, 55–64.

    Article  Google Scholar 

  • Zhao, Z., liu, Y., Sun, C., & Li, B. (2014). Distribution and pollution assessment of heavy metals in the water of Yihe River in Shandong Province. Journal of Anhui Agricultural Science, 42, 2429–2431.

    CAS  Google Scholar 

  • Zijian, W., Yibing, L., Yi, W., & Mei, M. (2002). Assessing the ecological risk of substituted benzenes in Huaihe River, China. Acta Scientiae Circumstantiae, 22, 300–304.

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Acknowledgments

We thank the editor and the two anonymous reviewers for their valuable comments. We thank our river sampling participants, the junior students from the geography specialty at Qufu Normal University, including Xingyuan Zhang, Xing Liu, Fei Zhao, and Xiaoqi Sun.

Funding

This research was funded by the National Natural Science Foundation of China (Project Nos. 41471389 and 41501542) and the Scientific and Technological Projects of the College in Shandong Province (Project No. J13LF02).

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Correspondence to Xiaoyin Sun.

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Sun, X., Liu, F., Shan, R. et al. Spatiotemporal distributions of Cu, Zn, metribuzin, atrazine, and their transformation products in the surface water of a small plain stream in eastern China. Environ Monit Assess 191, 433 (2019). https://doi.org/10.1007/s10661-019-7556-3

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