Thabit T M A, Abdelkareem E M, Bouqellah N A, et al. Triazole fungicide residues and their inhibitory effect on some trichothecenes mycotoxin excretion in wheat grains[J]. Molecules, 2021, 26(6): 1784
|
Ahonsi M O, Ames K A, Gray M E, et al. Biomass reducing potential and prospective fungicide control of a new leaf blight of Miscanthus×giganteus caused by Leptosphaerulina chartarum[J]. BioEnergy Research, 2013, 6(2): 737-745
|
Zhang C Y, Wang W W, Xue M, et al. The combination of a biocontrol agent Trichoderma asperellum SC012 and hymexazol reduces the effective fungicide dose to control Fusarium wilt in cowpea[J]. Journal of Fungi, 2021, 7(9): 685
|
De Nardo E A B, Grewal P S. Compatibility of Steinernema feltiae (Nematoda: Steinernematidae) with pesticides and plant growth regulators used in glasshouse plant production[J]. Biocontrol Science and Technology, 2003, 13(4): 441-448
|
Feng Q S, Han L, Wu Q, et al. Dissipation, residue and dietary risk assessment of difenoconazole in Rosa roxburghii[J]. Journal of Environmental Science and Health Part B, Pesticides, Food Contaminants, and Agricultural Wastes, 2023, 58(11): 651-658
|
Battaglin W A, Sandstrom M W, Kuivila K M, et al. Occurrence of azoxystrobin, propiconazole, and selected other fungicides in US streams, 2005–2006[J]. Water, Air, & Soil Pollution, 2011, 218(1): 307-322
|
Coscollà C, Yusà V, Beser M I, et al. Multi-residue analysis of 30 currently used pesticides in fine airborne particulate matter (PM2.5) by microwave-assisted extraction and liquid chromatography-tandem mass spectrometry[J]. Journal of Chromatography A, 2009, 1216(51): 8817-8827
|
Zhang J, Zhang J, Huang X H, et al. Combined toxicity and adverse outcome pathways of common pesticides on Chlorella pyrenoidosa[J]. Environmental Science Processes & Impacts, 2024, 26(3): 611-621
|
Christen V, Crettaz P, Fent K. Additive and synergistic antiandrogenic activities of mixtures of azol fungicides and vinclozolin[J]. Toxicology and Applied Pharmacology, 2014, 279(3): 455-466
|
Wang Y H, Zhu Y C, Li W H. Interaction patterns and combined toxic effects of acetamiprid in combination with seven pesticides on honey bee (Apis mellifera L.)[J]. Ecotoxicology and Environmental Safety, 2020, 190: 110100
|
Wang R K, Liu N, Huang N, et al. Combined toxicity assessment of a naturally occurring toxin and a triazole fungicide on different biological processes through toxicogenomic data mining with mixtures[J]. Pesticide Biochemistry and Physiology, 2023, 193: 105440
|
Organization for Economic Co-operation and Development (OECD). Test No. 201: Freshwater alga and cyanobacteria, growth inhibition test. OECD guidelines for the testing of chemicals, section 2[R]. Paris: OECD, 2011
|
Altenburger R, Backhaus T, Boedeker W, et al. Predictability of the toxicity of multiple chemical mixtures to Vibrio fischeri: Mixtures composed of similarly acting chemicals[J]. Environmental Toxicology and Chemistry, 2000, 19(9): 2341-2347
|
刘树深, 张瑾, 张亚辉, 等. APTox: 化学混合物毒性评估与预测[J]. 化学学报, 2012, 70(14): 1511-1517
Liu S S, Zhang J, Zhang Y H, et al. APTox: Assessment and prediction on toxicity of chemical mixtures[J]. Acta Chimica Sinica, 2012, 70(14): 1511-1517(in Chinese)
|
刘雪, 刘树深, 刘海玲. 构建三元混合污染物的三维等效图[J]. 环境科学, 2015, 36(12): 4574-4581
Liu X, Liu S S, Liu H L. Construction of three-dimensional isobologram for ternary pollutant mixtures[J]. Environmental Science, 2015, 36(12): 4574-4581(in Chinese)
|
王滔, 班龙科, 张瑾, 等. 三嗪类农药复合污染物对蛋白核小球藻的联合毒性作用评估[J]. 农业环境科学学报, 2020, 39(3): 482-495
Wang T, Ban L K, Zhang J, et al. Evaluation of combined toxicity of triazine pesticide contaminants against Chlorella pyrenoidosa[J]. Journal of Agro-Environment Science, 2020, 39(3): 482-495(in Chinese)
|
董玉瑛, 雷炳莉, 柏丽杰, 等. 环境化合物联合作用及其研究方法评价[J]. 大连民族学院学报, 2006, 8(5): 39-41
, 48 Dong Y Y, Lei B L, Bai L J, et al. Joint toxicity effects of environmental chemicals and the evaluation of present research methods[J]. Journal of Dalian Minzu University, 2006, 8(5): 39-41, 48(in Chinese)
|
吴宗凡, 刘兴国, 王高学. 重金属与有机磷农药二元混合物对卤虫联合毒性的评价及预测[J]. 生态毒理学报, 2013, 8(4): 602-608
Wu Z F, Liu X G, Wang G X. Evaluating and modeling the toxicity of binary mixtures of heavy metals and organophosphate pesticides to Artemia salina[J]. Asian Journal of Ecotoxicology, 2013, 8(4): 602-608(in Chinese)
|
Assress H A, Nyoni H, Mamba B B, et al. Occurrence and risk assessment of azole antifungal drugs in water and wastewater[J]. Ecotoxicology and Environmental Safety, 2020, 187: 109868
|
Bundschuh M, Goedkoop W, Kreuger J. Evaluation of pesticide monitoring strategies in agricultural streams based on the toxic-unit concept: Experiences from long-term measurements[J]. Science of the Total Environment, 2014, 484: 84-91
|
Cao C W, Niu F, Li X P, et al. Acute and joint toxicity of twelve substituted benzene compounds to Propsilocerus akamusi Tokunaga[J]. Central European Journal of Biology, 2014, 9(5): 550-558
|
唐柱云, 陆光华. 苯酚、2, 4-二氯酚与苯胺类化合物联合毒性效应[J]. 环境科技, 2014, 27(4): 18-22
, 51 Tang Z Y, Lu G H. Joint toxicity effect of phenol or 2,4-dichlorophenol and anilines[J]. Environmental Science and Technology, 2014, 27(4): 18-22, 51(in Chinese)
|
Knauert S, Knauer K. The role of reactive oxygen species in copper toxicity to two freshwater green algae[J]. Journal of Phycology, 2008, 44(2): 311-319
|
Chou T C, Talalay P. Quantitative analysis of dose-effect relationships: The combined effects of multiple drugs or enzyme inhibitors[J]. Advances in Enzyme Regulation, 1984, 22: 27-55
|
Howard P H, Muir D C G. Identifying new persistent and bioaccumulative organics among chemicals in commerce Ⅱ: Pharmaceuticals[J]. Environmental Science & Technology, 2011, 45(16): 6938-6946
|
Gao Y F, Feng J F, Kang L L, et al. Concentration addition and independent action model: Which is better in predicting the toxicity for metal mixtures on zebrafish larvae[J]. Science of the Total Environment, 2018, 610: 442-450
|
Cedergreen N, Christensen A M, Kamper A, et al. A review of independent action compared to concentration addition as reference models for mixtures of compounds with different molecular target sites[J]. Environmental Toxicology and Chemistry, 2008, 27(7): 1621-1632
|
Fraser T R. An experimental research on the antagonism between the actions of physostigma and atropia[J]. Proceedings of the Royal Society of Edinburgh, 1872, 7: 506-511
|
Huang R Y, Pei L L, Liu Q J, et al. Isobologram analysis: A comprehensive review of methodology and current research[J]. Frontiers in Pharmacology, 2019, 10: 1222
|
孟庆俊, 肖昕. 不同方法对联合毒性作用的评价[J]. 污染防治技术, 2004, 17(1): 33-35
|
Boobis A, Budinsky R, Collie S, et al. Critical analysis of literature on low-dose synergy for use in screening chemical mixtures for risk assessment[J]. Critical Reviews in Toxicology, 2011, 41(5): 369-383
|
莫凌云, 梁丽营, 覃礼堂, 等. 定性与定量评估4种重金属及2种农药混合物对费氏弧菌的毒性相互作用[J]. 生态毒理学报, 2018, 13(1): 251-260
Mo L Y, Liang L Y, Qin L T, et al. Qualitative and quantitative assessment for the toxicity interaction of mixtures of four heavy metals and two pesticides on Vibrio fischeri[J]. Asian Journal of Ecotoxicology, 2018, 13(1): 251-260(in Chinese)
|
More S J, Bampidis V, Benford S H, et al. Guidance on harmonised methodologies for human health, animal health and ecological risk assessment of combined exposure to multiple chemicals[J]. EFSA Journal European Food Safety Authority, 2019, 17(3): 5634
|
Macacu A, Guillot G. Dose-response analysis of toxicological and pharmacological mixtures with the model deviation ratio method: Problems and solutions[J]. Toxicology Letters, 2020, 325: 62-66
|
Sprague J B, Ramsay B A. Lethal levels of mixed copper: Zinc solutions for juvenile salmon[J]. Journal of the Fisheries Research Board of Canada, 1965, 22(2): 425-432
|
Jin Y, Mo L Y, Qin L T, et al. Study on the joint toxicity of multi-component mixtures of quaternary ammonium compounds[J]. Nature Environment and Pollution Technology, 2021, 20(4): 1643-51
|
Mori I C, Arias-Barreiro C R, Koutsaftis A, et al. Toxicity of tetramethylammonium hydroxide to aquatic organisms and its synergistic action with potassium iodide[J]. Chemosphere, 2015, 120: 299-304
|
Chou T C, Talalay P. Quantitative analysis of dose-effect relationships: The combined effects of multiple drugs or enzyme inhibitors[J]. Advances in Enzyme Regulation, 1984, 22: 27-55
|
Bjergager M A, Dalhoff K, Kretschmann A, et al. Determining lower threshold concentrations for synergistic effects[J]. Aquatic Toxicology, 2017, 182: 79-90
|
Zhou X, Seto S W, Chang D, et al. Synergistic effects of Chinese herbal medicine: A comprehensive review of methodology and current research[J]. Frontiers in Pharmacology, 2016, 7: 201
|
Greco W R, Bravo G, Parsons J C. The search for synergy: A critical review from a response surface perspective[J]. Pharmacological Reviews, 1995, 47(2): 331-385
|
Syberg K, Elleby A, Pedersen H, et al. Mixture toxicity of three toxicants with similar and dissimilar modes of action to Daphnia magna[J]. Ecotoxicology and Environmental Safety, 2008, 69(3): 428-436
|
Nørgaard K B, Cedergreen N. Pesticide cocktails can interact synergistically on aquatic crustaceans[J]. Environmental Science and Pollution Research International, 2010, 17(4): 957-967
|
Mora-Navarro C, Caraballo-León J, Torres-Lugo M, et al. Synthetic antimicrobial β-peptide in dual-treatment with fluconazole or ketoconazole enhances the in vitro inhibition of planktonic and biofilm Candida albicans[J]. Journal of Peptide Science, 2015, 21(12): 853-861
|
Matzke M, Stolte S, Böschen A, et al. Mixture effects and predictability of combination effects of imidazolium based ionic liquids as well as imidazolium based ionic liquids and cadmium on terrestrial plants (Triticum aestivum) and limnic green algae (Scenedesmus vacuolatus)[J]. Green Chemistry, 2008, 10(7): 784-792
|
张瑾, 董欣琪, 陈敏, 等. 五元氨基甲酸酯类农药混合物体系对青海弧菌的毒性特点[J]. 生态毒理学报, 2017, 12(4): 138-145
Zhang J, Dong X Q, Chen M, et al. Toxicity characteristics of five-carbamate pesticide mixture system towards Vibrio qinghaiensis sp. Q67[J]. Asian Journal of Ecotoxicology, 2017, 12(4): 138-145(in Chinese)
|
Liu S S, Song X Q, Liu H L, et al. Combined Photobacterium toxicity of herbicide mixtures containing one insecticide[J]. Chemosphere, 2009, 75(3): 381-388
|
王滔, 张瑾, 卞志强, 等. 2种经典模型对抗生素与重金属锌的蛋白核小球藻时间依赖联合毒性作用的评估比较[J]. 生态毒理学报, 2019, 14(4): 130-139
Wang T, Zhang J, Bian Z Q, et al. Comparative evaluation on the time-dependent joint toxicity of antibiotics and heavy metal zinc towards Chlorella pyrenoidosa between two classical models[J]. Asian Journal of Ecotoxicology, 2019, 14(4): 130-139(in Chinese)
|
Fai P B A, Tsobgny Kinfack J S, Tala Towa Y J. Acute effects of binary mixtures of TypeⅡ pyrethroids and organophosphate insecticides on Oreochromis niloticus[J]. Ecotoxicology, 2017, 26(7): 889-901
|
Altenburger R, Nendza M, Schüürmann G. Mixture toxicity and its modeling by quantitative structure-activity relationships[J]. Environmental Toxicology and Chemistry, 2003, 22(8): 1900-1915
|
Rider C V, LeBlanc G A. An integrated addition and interaction model for assessing toxicity of chemical mixtures[J]. Toxicological Sciences, 2005, 87(2): 520-528
|