[1] 张根, 陈宝锐, 潘璐璐, 等. 农产品抗生素残留现状及快速检测方法研究进展. 应用生态学报, 2024, 35(5): 1408-1418 [2] 张锶, 王英刚, 薛晨阳, 等. 一种耐低温固定化产碱杆菌对恩诺沙星的降解. 生态学杂志, 2025, 44(9): 3143-3151 [3] 吕磊. 猪粪沼液浇灌对土壤质量和四种蔬菜作物生长的影响. 硕士论文. 扬州: 扬州大学, 2022 [4] Martínez JL. Antibiotics and antibiotic resistance genes in natural environments. Science, 2008, 321: 365-367 [5] Mulla SI, Bagewadi ZK, Faniband B, et al. Various strategies applied for the removal of emerging micropollutant sulfamethazine: A systematic review. Environmental Science and Pollution Research, 2023, 30: 71599-71613 [6] 汪庆, 邱靖昊, 孙岩, 等. 河口微塑料对抗生素抗性基因的影响研究进展. 应用生态学报, 2024, 35(10): 2916-2924 [7] Zhang D, Pan B, Zhang H, et al. Contribution of different sulfamethoxazole species to their overall adsorption on functionalized carbon nanotubes. Environmental Science & Technology, 2010, 44: 3806-3811 [8] Li S, Liu Y, Wu Y, et al. Antibiotics in global rivers. National Science Open, 2022, 1: 20220029 [9] Zhu YG, Zhao Y, Li B, et al. Continental-scale pollution of estuaries with antibiotic resistance genes. Nature Microbiology, 2017, 2: 16270 [10] Yin GY, Hou LJ, Liu M, et al. Effects of multiple antibiotics exposure on denitrification process in the Yangtze Estuary sediments. Chemosphere, 2017, 171: 118-125 [11] Wei RC, Ge F, Huang SY, et al. Occurrence of veterinary antibiotics in animal wastewater and surface water around farms in Jiangsu Province, China. Chemosphere, 2011, 82: 1408-1414 [12] 宋玉芳, 许华夏, 任丽萍, 等. 土壤重金属对白菜种子发芽与根伸长抑制的生态毒性效应. 环境科学, 2002, 23(1): 103-107 [13] 栾江, 仇焕广, 井月, 等. 我国化肥施用量持续增长的原因分解及趋势预测. 自然资源学报, 2013, 28 (11): 1869-1878 [14] Fan HN, Wu SH, Dong WX, et al. Characterization of tetracycline-resistant microbiome in soil-plant systems by combination of H218O-based DNA-Stable isotope probing and metagenomics. Journal of Hazardous Materials, 2021, 420: 126440 [15] Yang Y, Jia JT, Han T, et al. Comprehensive analysis of metabolites and biological endpoints providing new insights into the tolerance of wheat under sulfamethoxazole stress. International Journal of Molecular Sciences, 2025, 26: 4257 [16] Li SN, Show PL, Ngo HH, et al. Algae-mediated antibiotic wastewater treatment: A critical review. Environmental Science & Ecotechnology, 2022, 9: 100145 [17] Granitto M, Lopez ME, Fuentes ALB, et al. Relationship between riparian zones and water quality in the main watersheds of Ushuaia City, Tierra del Fuego (Argentina). Ecological Processes, 2025, 14: 18 [18] Sharma GK, Khan SA, Shrivastava M, et al. Circular economy fertilization: Phycoremediated algal biomass as biofertilizers for sustainable crop production. Journal of Environmental Management, 2021, 287: 112295 [19] Ronga D, Biazzi E, Parati K, et al. Microalgal biostimu-lants and biofertilisers in crop productions. Agronomy, 2019, 9: 192 [20] 边建文, 崔岩, 杨宋琪, 等. 微藻生物肥料的农业应用研究进展. 中国土壤与肥料, 2020(5): 1-9 [21] 张效铭, 刘颖颖, 崔红利, 等. 化学吸收剂单乙醇胺强化小球藻生长代谢及固碳效应的研究. 激光生物学报, 2022, 31(4): 311-320 [22] Lorenzo R, Ávila H, Escolà Casas M, et al. Assessment of a novel microalgae-cork based technology for removing antibiotics, pesticides and nitrates from groundwater. Chemosphere, 2022, 301: 134777 [23] 雷春燕, 李亚男, 梁梦静, 等. 莱茵衣藻活细胞制剂缓解小麦幼苗镉胁迫的效应与机制. 环境科学, 2025, 46(3): 1795-1805 [24] 李炯珊, 杨泽, 闫星, 等. 四尾栅藻提高大豆草甘膦抗性及促生效应分析. 生物技术通报, 2024, 40 (11): 236-247 [25] Wang Q, Geng LL, Gao Z, et al. Microalgae enhances the adaptability of epiphytic bacteria to sulfamethoxazole stress and proliferation of antibiotic resistance genes mediated by integron. Environmental Science & Technology, 2024, 58: 19397-19407 [26] 农业部. 水产品中17种磺胺类及15种喹诺酮类药物残留量的测定: 液相色谱-串联质谱法. 北京: 中国标准出版社, 2008 [27] 罗丹, 张玲玲, 闫正, 等. 固相萃取-高效液相色谱法测定蔬菜中8种磺胺类抗生素. 化学分析计量, 2017, 26(5): 50-54 [28] 孙阳, 黄金秀, 吕利群. 淡水小球藻分离培养及其对水体辛硫磷的降解功能研究. 微生物学杂志, 2022, 42(4): 21-28 [29] Li HT, Pan Y, Wang ZZ, et al. An algal process treatment combined with the Fenton reaction for high concentrations of amoxicillin and cefradine. RSC Advances, 2015, 5: 100775-100782 [30] Bai XL, Acharya K. Removal of trimethoprim, sulfamethoxazole, and triclosan by the green alga Nannochloris sp. Journal of Hazardous Materials, 2016, 315: 70-75 [31] Wu S, Zhang JM, Xia A, et al. Microalgae cultivation for antibiotic oxytetracycline wastewater treatment. Environmental Research, 2022, 214: 113850 [32] Mao YF, Ye KL, Yang SF, et al. Repeated exposure enhanced toxicity of clarithromycin on Microcystis aeruginosa versus single exposure through photosynthesis, oxidative stress, and energy metabolism shift. Environmental Science & Technology, 2024, 58: 4070-4082 [33] 谭海玲, 杨顺航, 余佳妮, 等. 磺胺类抗生素对普通小球藻的单一及联合毒性效应评估. 淡水渔业, 2025, 55(3): 80-91 [34] Xiong JQ, Kurade MB, Patil DV, et al. Biodegradation and metabolic fate of levofloxacin via a freshwater green alga, Scenedesmus obliquus in synthetic saline wastewater. Algal Research, 2017, 25: 54-61 [35] Chu YH, Zhang CF, Wang RP, et al. Biotransformation of sulfamethoxazole by microalgae: Removal efficiency, pathways, and mechanisms. Water Research, 2022, 221: 118834 [36] 初宇昊. 小球藻对水中典型抗生素的防御与生物降解机制研究. 博士论文. 哈尔滨: 哈尔滨工业大学, 2024 [37] 王磊, 王金花, 王军, 等. 四种抗生素对小麦玉米高粱三种作物种子芽与根伸长的影响. 农业环境科学学报, 2017, 36(2): 216-222 [38] 黄婷婷, 茹吉, 陆子辰, 等. 禽畜抗生素污染对粮食安全的潜在威胁评估. 吉林农业, 2013(1): 43 [39] 金彩霞, 陈秋颖, 刘军军, 等. 两种常用兽药对作物发芽的生态毒性效应. 环境科学学报, 2009, 29(3): 619-625 [40] Zhang YB, Wan J, Li Z, et al. Enhanced removal efficiency of sulfamethoxazole by acclimated microalgae: Tolerant mechanism, and transformation products and pathways. Bioresource Technology, 2022, 347: 126461 [41] Wogene S, Mutum L, Janda T, et al. Potential benefit of microalgae and their interaction with bacteria to sustainable crop production. Plant Growth Regulation, 2023, 101: 53-65 [42] 赵江, 侯琤, 沈峥, 等. 微藻在农业可持续发展中的应用研究进展. 农业工程学报, 2024, 40(3): 14-25 [43] Huynh K, Dawn R. Metabolism of sulfamethoxazole by the model plant Arabidopsis thaliana. Environmental Science & Technology, 2019, 53: 4901-4911 [44] Pan M, Lee LSH, Sham YT, et al. Phytoremediation of diclofenac and sulfamethoxazole in Arabidopsis thaliana cells and seedlings. Chemosphere, 2024, 364: 142989 [45] Dudley S, Sun C, Jiang J, et al. Metabolism of sulfamethoxazole in Arabidopsis thaliana cells and cucumber seedlings. Environmental Pollution, 2018, 242: 1748-1757 [46] Huynh K, Reinhold D. Uptake, translocation, and metabolism of sulfamethazine by Arabidopsis thaliana: Distinguishing between phytometabolites and abiotic transformation products in the media. International Journal of Phytoremediation, 2020, 22: 412-419 |