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畜禽养殖场周边土壤和地下水中抗生素的残留特征和风险评价
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Abstract:
抗生素的出现,加快了畜禽养殖业的发展,但抗生素滥用导致的环境问题日益显现。本研究选取了一个规模较大的养猪场,在其周边环境中布设了8个点位,研究土壤及地下水中抗生素的残留情况,并采用不同的评估方法对地下水中抗生素进行人体健康风险评估。研究发现,在土壤样品中,磺胺嘧啶和恩诺沙星未检出,四环素和金霉素仅在S6点位检出且浓度较低,磺胺甲噁唑检出率较高。在地下水样品中,四环素类抗生素的检出率最高,磺胺类抗生素次之,恩诺沙星虽低,但浓度很高。总体上,在土壤和地下水样品中,污染集中于S6、S7、S8点位。在人体健康风险评估方面,使用饮水当量法进行评价时,有50%点位为中等风险,且仅针对低龄儿童,而使用平均每日潜在剂量法评价时,大部分点位的风险都可接受,仅有S7点位的风险不可接受。因此,抗生素污染问题不可忽视,需加大对抗生素的监管力度,更需要研究抗生素在环境中的去除方法,降低环境中抗生素对人体及生态的影响。
The advent of antibiotics has accelerated the development of livestock and poultry farming, but the environmental problems caused by the misuse of antibiotics have become increasingly apparent. In this study, a large-scale pig farm was selected and eight sites in its vicinity were used to investigate the antibiotic residues in soil and groundwater, and different evaluation methods were used to assess the human health risk of antibiotics in groundwater. It was found that in soil samples, sulfadiazine and enrofloxacin were not detected, tetracycline and chlortetracycline were detected only at point S6 and at low concentrations, and sulfamethoxazole was detected at a high rate. In groundwater samples, tetracycline antibiotics had the highest detection rate, sulfonamide antibiotics were next highest, and enrofloxacin was detected at low but high concentrations. Overall, contamination in soil and groundwater samples was concentrated at points S6, S7 and S8. In terms of human health risk assessment, when evaluated using the drinking water equivalent method, 50% of the points were of moderate risk and only for younger children, whereas when evaluated using the average potential daily dose method, most of the points were of acceptable risk and only point S7 was of unacceptable risk. Therefore, the problem of antibiotic contamination cannot be ignored, and there is a need to strengthen the regulation of antibiotics, and there is a greater need to study methods of removing antibiotics from the environment to reduce the human and ecological impact of antibiotics in the environment.
[1] | 邓玉英, 陈桂先. 滥用饲用抗生素现状及对生态环境的影响[J]. 现代畜牧兽医, 2009(10): 35-36. |
[2] | Ayodele, O.B., Auta, H.S. and Nor, N.M. (2012) Artificial Neural Networks, Optimization and Kinetic Modeling of Amoxicillin Degradation in Photo-Fenton Process Using Aluminum Pillared Montmorillonite-Supported Ferrioxalate Catalyst. Industrial & Engineering Chemistry Research, 51, 16311-16319. https://doi.org/10.1021/ie302390b |
[3] | 张慧, 郭文建, 朱晨, 李红莉, 王桂勋, 岳太星, 丁波涛. 山东省主要河流中抗生素污染组成及空间分布特征[J]. 中国环境监测, 2019, 35(1): 89-94. |
[4] | Jia, W., Song, C., He, L., Wang, B., Gao, F., Zhang, M., et al. (2023) Antibiotics in Soil and Water: Occurrence, Fate, and Risk. Current Opinion in Environmental Science & Health, 32, Article 100437. https://doi.org/10.1016/j.coesh.2022.100437 |
[5] | Pan, Z., Yang, S., Zhao, L., Li, X., Weng, L., Sun, Y., et al. (2021) Temporal and Spatial Variability of Antibiotics in Agricultural Soils from Huang-Huai-Hai Plain, Northern China. Chemosphere, 272, Article 129803. https://doi.org/10.1016/j.chemosphere.2021.129803 |
[6] | Jia, W., Song, C., He, L., Wang, B., Gao, F., Zhang, M., et al. (2023) Antibiotics in Soil and Water: Occurrence, Fate, and Risk. Current Opinion in Environmental Science & Health, 32, Article 100437. https://doi.org/10.1016/j.coesh.2022.100437 |
[7] | Wang, J., Zhang, C., Xiong, L., Song, G. and Liu, F. (2022) Changes of Antibiotic Occurrence and Hydrochemistry in Groundwater under the Influence of the South-to-North Water Diversion (The Hutuo River, China). Science of the Total Environment, 832, Article 154779. https://doi.org/10.1016/j.scitotenv.2022.154779 |
[8] | Xiao, W., Zhao, X., Teng, Y., Wu, J. and Zhang, T. (2023) Review on Biogeochemical Characteristics of Typical Antibiotics in Groundwater in China. Sustainability, 15, Article 6985. https://doi.org/10.3390/su15086985 |
[9] | Grenni, P., Ancona, V. and Barra Caracciolo, A. (2018) Ecological Effects of Antibiotics on Natural Ecosystems: A Review. Microchemical Journal, 136, 25-39. https://doi.org/10.1016/j.microc.2017.02.006 |
[10] | Hu, Y. and Cheng, H. (2015) Use of Veterinary Antimicrobials in China and Efforts to Improve Their Rational Use. Journal of Global Antimicrobial Resistance, 3, 144-146. https://doi.org/10.1016/j.jgar.2015.03.003 |
[11] | 王晓洁, 赵蔚, 张志超, 程和发, 陶澍. 兽用抗生素在土壤中的环境行为、生态毒性及危害调控[J]. 中国科学: 技术科学, 2021, 51(6): 615-636. |
[12] | Cycoń, M., Mrozik, A. and Piotrowska-Seget, Z. (2019) Antibiotics in the Soil Environment—Degradation and Their Impact on Microbial Activity and Diversity. Frontiers in Microbiology, 10, Article 338. https://doi.org/10.3389/fmicb.2019.00338 |
[13] | Liu, X., Lv, Y., Gao, S. and Xu, K. (2021) Ofloxacin Induces Etiolation in Welsh Onion Leaves. Chemosphere, 267, Article 128918. https://doi.org/10.1016/j.chemosphere.2020.128918 |
[14] | Xu, L., Zhang, H., Xiong, P., Zhu, Q., Liao, C. and Jiang, G. (2021) Occurrence, Fate, and Risk Assessment of Typical Tetracycline Antibiotics in the Aquatic Environment: A Review. Science of the Total Environment, 753, Article 141975. https://doi.org/10.1016/j.scitotenv.2020.141975 |
[15] | Zhang, K., Li, K., Hu, F., Xin, R., Fan, P., Lu, Y., et al. (2024) Occurrence Characteristics and Influencing Factors of Antibiotic Resistance Genes in Rural Groundwater in Henan Province. Environmental Science and Pollution Research, 31, 16685-16695. https://doi.org/10.1007/s11356-024-32258-5 |
[16] | Shi, J., Dong, Y., Shi, Y., Yin, T., He, W., An, T., et al. (2022) Groundwater Antibiotics and Microplastics in a Drinking-Water Source Area, Northern China: Occurrence, Spatial Distribution, Risk Assessment, and Correlation. Environmental Research, 210, Article 112855. https://doi.org/10.1016/j.envres.2022.112855 |
[17] | Meng, T., Cheng, W., Wan, T., Wang, M., Ren, J., Li, Y., et al. (2019) Occurrence of Antibiotics in Rural Drinking Water and Related Human Health Risk Assessment. Environmental Technology, 42, 671-681. https://doi.org/10.1080/09593330.2019.1642390 |
[18] | Lyu, J., Yang, L.S., Chen, Y.Y., Ye, B.X., Zhang, L. and Wang, L. (2021) Risk Assessment of Antibiotic Prevalence in Drinking Water and Its Impacts on Human Health in China. Applied Ecology and Environmental Research, 19, 219-236. https://doi.org/10.15666/aeer/1901_219236 |
[19] | de Jesus Gaffney, V., Almeida, C.M.M., Rodrigues, A., Ferreira, E., Benoliel, M.J. and Cardoso, V.V. (2015) Occurrence of Pharmaceuticals in a Water Supply System and Related Human Health Risk Assessment. Water Research, 72, 199-208. https://doi.org/10.1016/j.watres.2014.10.027 |
[20] | Zhang, X., Gong, Z., Allinson, G., Xiao, M., Li, X., Jia, C., et al. (2022) Environmental Risks Caused by Livestock and Poultry Farms to the Soils: Comparison of Swine, Chicken, and Cattle Farms. Journal of Environmental Management, 317, Article 115320. https://doi.org/10.1016/j.jenvman.2022.115320 |
[21] | Daliri, M., Martinez-Morcillo, S., Sharifinia, M., Javdan, G. and Keshavarzifard, M. (2022) Occurrence and Ecological Risk Assessment of Antibiotic Residues in Urban Wastewater Discharged into the Coastal Environment of the Persian Gulf (the Case of Bandar Abbas). Environmental Monitoring and Assessment, 194, Article No. 905. https://doi.org/10.1007/s10661-022-10579-7 |
[22] | 中华人民共和国农业农村部. GB 31650-2019食品安全国家标准 食品中兽药最大残留限量[S]. 北京: 中国标准出版社, 2019. |
[23] | Spielmeyer, A., Breier, B., Groißmeier, K. and Hamscher, G. (2015) Elimination Patterns of Worldwide Used Sulfonamides and Tetracyclines during Anaerobic Fermentation. Bioresource Technology, 193, 307-314. https://doi.org/10.1016/j.biortech.2015.06.081 |
[24] | Zhang, R., Zhang, G., Zheng, Q., Tang, J., Chen, Y., Xu, W., et al. (2012) Occurrence and Risks of Antibiotics in the Laizhou Bay, China: Impacts of River Discharge. Ecotoxicology and Environmental Safety, 80, 208-215. https://doi.org/10.1016/j.ecoenv.2012.03.002 |
[25] | 李威, 李佳熙, 李吉平, 吕宝玲, 张银龙. 我国不同环境介质中的抗生素污染特征研究进展[J]. 南京林业大学学报(自然科学版), 2020, 44(1): 205-214. |