Padmasri A, Srinivas C, Vijaya Lakshmi K, et al. Evaluation of novel insecticides as seed treatments to control rice weevil[Sitophilus oryzae (Linnaeus)] on maize seeds[J]. International Journal of Current Microbiology and Applied Sciences, 2019, 8(9): 765-774
|
Deore J S, Borikar P S, Yadav G A, et al. Efficacy of newer insecticides against bollworm complex in cotton[J]. Pestology, 2010(2): 34
|
Jyoshna M, Yadav U. Efficacy of selected insecticides with botanicals and bio-agents against diamondback moth, Plutella xylostella (L.) in cabbage, Brassica oleracea var capitata (L.)[J]. International Journal of Environment and Climate Change, 2023, 13(9): 2129-2134
|
Ruiu L, Lentini A. Sustainable silage maize integrated protection against the European corn borer Ostrinia nubilalis and the corn earworm Helicoverpa armigera employing the farm irrigation system[J]. Agronomy, 2022, 12(2): 362
|
程世兴. 东至县胜利镇水稻“一种两收”栽培技术要点[J]. 南方农业, 2023, 17(16): 12-14
Cheng S X. Key points of rice cultivation techniques of “one kind and two harvests” in Shengli Town, Dongzhi County[J]. South China Agriculture, 2023, 17(16): 12-14(in Chinese)
|
王宁, 王俪澜, 葛亚菲, 等. 2种种子处理悬浮剂防治小麦蛴螬的田间药效评价[J]. 农药, 2023, 62(9): 689-692
Wang N, Wang L L, Ge Y F, et al. Efficacy evaluation of 2 suspension concentrates for seed treatment to control wheat grubs in the field[J]. Agrochemicals, 2023, 62(9): 689-692(in Chinese)
|
Liu P P, Zhang J X, Shen H F, et al. Efficacy of transplant insecticides against black cutworm Agrotis ipsilon (Lepidoptera: Noctuidae) in tobacco[J]. Crop Protection, 2023, 171: 106283
|
于居龙, 张国, 张新凤, 等. 氯虫苯甲酰胺与杀虫单复配处理水稻种子对稻纵卷叶螟的防效及持效机理[J]. 农药学学报, 2024, 26(1): 114-122
Yu J L, Zhang G, Zhang X F, et al. Control efficacy and long-term mechanism of chlorantraniliprole and monosultap co-treatment on rice seeds against Cnaphalocrocis medinalis[J]. Chinese Journal of Pesticide Science, 2024, 26(1): 114-122(in Chinese)
|
李红红, 王彦辉, 韦典, 等. 氯虫苯甲酰胺在甘蔗及土壤中的残留消解动态[J]. 农药学学报, 2016, 18(1): 101-106
Li H H, Wang Y H, Wei D, et al. Residues and dissipation of chlorantraniliprole in sugarcane and soil[J]. Chinese Journal of Pesticide Science, 2016, 18(1): 101-106(in Chinese)
|
方晓航, 仇荣亮. 农药在土壤环境中的行为研究[J]. 土壤与环境, 2002, 11(1): 94-97
Fang X H, Qiu R L. Behavior of pesticide in soil environment[J]. Ecology and Environmental Sciences, 2002, 11(1): 94-97(in Chinese)
|
Lavtižar V, Berggren K, Trebše P, et al. Comparative ecotoxicity of chlorantraniliprole to non-target soil invertebrates[J]. Chemosphere, 2016, 159: 473-479
|
翟华博. 200克/升氯虫苯甲酰胺悬浮剂[J]. 农业知识(乡村季风), 2014(8): 42
-43
|
毛赛飞, 吴振我, 潘育东, 等. 夏季香菇防治菇蚊的高效安全药剂筛选[J]. 食药用菌, 2017, 25(1): 65-66
Mao S F, Wu Z W, Pan Y D, et al. Screening of high-efficient and safe pesticides for mushrooms to control mushroom mosquitoes in summer[J]. Edible and Medicinal Mushrooms, 2017, 25(1): 65-66(in Chinese)
|
Yu S M, Wang Z K, Zhang L Y, et al. Possible changes in trade-off strategy in female lizards (Eremias argus) during hibernation following exposure to chlorantraniliprole: Impact on the HPG axis and the energy mobilization[J]. Pesticide Biochemistry and Physiology, 2022, 184: 105059
|
Meng Z Y, Cui J J, Liu L, et al. Toxicity effects of chlorantraniliprole in zebrafish (Danio rerio) involving in liver function and metabolic phenotype[J]. Pesticide Biochemistry and Physiology, 2022, 187: 105194
|
Kumar R, Singh D. Insecticide-tolerant bacterial population in Eisenia fetida’s gut and vermicast exposed to chlorantraniliprole and fipronil[J]. Applied Biological Research, 2022, 24(3): 273-279
|
Liu T, Chen D, Li Y Q, et al. Enantioselective bioaccumulation and toxicity of the neonicotinoid insecticide dinotefuran in earthworms (Eisenia fetida)[J]. Journal of Agricultural and Food Chemistry, 2018, 66(17): 4531-4540
|
Lanno R, Wells J, Conder J, et al. The bioavailability of chemicals in soil for earthworms[J]. Ecotoxicology and Environmental Safety, 2004, 57(1): 39-47
|
陈国峰, 刘峰, 张晓波, 等. 氯虫苯甲酰胺在大豆和土壤中的残留及降解行为[J]. 农业环境科学学报, 2016, 35(5): 894-900
Chen G F, Liu F, Zhang X B, et al. Residue analysis and degradation dynamics of chlorantraniliprole in soybean and soil[J]. Journal of Agro-Environment Science, 2016, 35(5): 894-900(in Chinese)
|
隋晓斐, 马延军, 崔巧利. 氯虫苯甲酰胺在室内土壤中的降解动态研究[J]. 中华卫生杀虫药械, 2015, 21(3): 251-253
Sui X F, Ma Y J, Cui Q L. Degradation of chlorantraniliprole in soil under laboratory conditions[J]. Chinese Journal of Hygienic Insecticides & Equipments, 2015, 21(3): 251-253(in Chinese)
|
王廷廷, 余向阳, 沈燕, 等. 生物质炭施用对土壤中氯虫苯甲酰胺吸附及消解行为的影响[J]. 环境科学, 2012, 33(4): 1339-1345
Wang T T, Yu X Y, Shen Y, et al. Impact of biochar amendment on the sorption and dissipation of chlorantraniliprole in soils[J]. Environmental Science, 2012, 33(4): 1339-1345(in Chinese)
|
Lankadurai B P, Nagato E G, Simpson M J. Environmental metabolomics: An emerging approach to study organism responses to environmental stressors[J]. Environmental Reviews, 2013, 21(3): 180-205
|
Sinclair C J, Boxall A B A. Assessing the ecotoxicity of pesticide transformation products[J]. Environmental Science & Technology, 2003, 37(20): 4617-4625
|
Boxall A B A, Sinclair C J, Fenner K, et al. When synthetic chemicals degrade in the environment[J]. Environmental Science & Technology, 2004, 38(19): 368A-375A
|
Pietrzak D, Kania J, Kmiecik E, et al. Fate of selected neonicotinoid insecticides in soil-water systems: Current state of the art and knowledge gaps[J]. Chemosphere, 2020, 255: 126981
|
Organization for Economic Co-operation and Development (OECD). Test No. 222: Earthworm reproduction test (Eisenia fetida/Eisenia andrei)[R]. Paris: OECD, 2004
|
Malhat F M. Determination of chlorantraniliprole residues in grape by high-performance liquid chromatography[J]. Food Analytical Methods, 2012, 5(6): 1492-1496
|
Dong F S, Xu J, Liu X G, et al. Determination of chlorantraniliprole residues in corn and soil by UPLC-ESI-MS/MS and its application to a pharmacokinetic study[J]. Chromatographia, 2011, 74(5): 399-406
|
Zhang J M, Chai W G, Wu Y L. Residues of chlorantraniliprole in rice field ecosystem[J]. Chemosphere, 2012, 87(2): 132-136
|
Sack M N, Fyhrquist F Y, Saijonmaa O J, et al. Basic biology of oxidative stress and the cardiovascular system: Part 1 of a 3-part series[J]. Journal of the American College of Cardiology, 2017, 70(2): 196-211
|
Manna S, Ray A, Mukherjee S, et al. Nano zinc oxide induced lipid peroxidation, oxidative stress, genotoxicity, phagocytic alteration, and detoxification response in the coelomocytes of an anecic earthworm of India[J]. Applied Soil Ecology, 2023, 190: 105024
|
He F L, Wan J Q, Chu S S, et al. Toxic mechanism on phenanthrene-triggered cell apoptosis, genotoxicity, immunotoxicity and activity changes of immunity protein in Eisenia fetida: Combined analysis at cellular and molecular levels[J]. Science of the Total Environment, 2022, 819: 153167
|
Zhong W J, Zhu L Y, Chen P Y, et al. The combined effects of graphene oxide and bisphenol A on oxidative damage in early development of zebrafish[J]. Chinese Science Bulletin, 2019, 64(21): 2199-2206
|
Dromard Y, Arango-Lievano M, Fontanaud P, et al. Dual imaging of dendritic spines and mitochondria in vivo reveals hotspots of plasticity and metabolic adaptation to stress[J]. Neurobiology of Stress, 2021, 15: 100402
|
Liu T, Wang X G, Chen D, et al. Growth, reproduction and biochemical toxicity of chlorantraniliprole in soil on earthworms (Eisenia fetida)[J]. Ecotoxicology and Environmental Safety, 2018, 150: 18-25
|
Feng W R, Su S Y, Song C Y, et al. Effects of copper exposure on oxidative stress, apoptosis, endoplasmic reticulum stress, autophagy and immune response in different tissues of Chinese mitten crab (Eriocheir sinensis)[J]. Antioxidants, 2022, 11(10): 2029
|
Kelly K A, Havrilla C M, Brady T C, et al. Oxidative stress in toxicology: Established mammalian and emerging piscine model systems[J]. Environmental Health Perspectives, 1998, 106(7): 375-384
|
Zhang W J, Xia X M, Wang J H, et al. Oxidative stress and genotoxicity of nitenpyram to earthworms (Eisenia foetida)[J]. Chemosphere, 2021, 264(Pt 2): 128493
|
Zhu L, Li B, Wu R L, et al. Acute toxicity, oxidative stress and DNA damage of chlorpyrifos to earthworms (Eisenia fetida): The difference between artificial and natural soils[J]. Chemosphere, 2020, 255: 126982
|
Soula M, Weber R A, Zilka O, et al. Metabolic determinants of cancer cell sensitivity to canonical ferroptosis inducers[J]. Nature Chemical Biology, 2020, 16(12): 1351-1360
|
Qiao Z H, Zhang F W, Yao X F, et al. Growth, DNA damage and biochemical toxicity of cyantraniliprole in earthworms (Eisenia fetida)[J]. Chemosphere, 2019, 236: 124328
|
白桂芬, 李冰, 霍树政. 多菌灵对蚯蚓体内3种解毒酶活性的影响[J]. 贵州农业科学, 2014, 42(12): 177-179
Bai G F, Li B, Huo S Z. Effect of carbendazim on activity of three detoxifying enzymes in earthworm[J]. Guizhou Agricultural Sciences, 2014, 42(12): 177-179(in Chinese)
|
Ma L L, Ma C, Shi Z M, et al. Effects of fluoranthene on the growth, bioavailability and anti-oxidant system of Eisenia fetida during the ageing process[J]. European Journal of Soil Biology, 2012, 50: 21-27
|
郭子毓, 徐玉艳, 代恒美, 等. 常见环境污染物致斑马鱼机体氧化应激的研究进展[J]. 环境化学, 2024, 43(1): 33-46
Guo Z Y, Xu Y Y, Dai H M, et al. Research progress on oxidative stress of zebrafish caused by common environmental pollutants[J]. Environmental Chemistry, 2024, 43(1): 33-46(in Chinese)
|
Luberda Z. The role of glutathione in mammalian gametes[J]. Reproductive Biology, 2005, 5(1): 5-17
|
Zhao W T, Teng M M, Zhang J, et al. Insights into the mechanisms of organic pollutant toxicity to earthworms: Advances and perspectives[J]. Environmental Pollution, 2022, 303: 119120
|
Xiao N W, Song Y, Ge F, et al. Biomarkers responses of the earthworm Eisenia fetida to acetochlor exposure in OECD soil[J]. Chemosphere, 2006, 65(6): 907-912
|
Muangphra P, Tharapoom K, Euawong N, et al. Chronic toxicity of commercial chlorpyrifos to earthworm Pheretima peguana[J]. Environmental Toxicology, 2016, 31(11): 1450-1459
|
Gao Y H, Li X M, Guo J J, et al. Reproductive responses of the earthworm (Eisenia fetida) to antiparasitic albendazole exposure[J]. Chemosphere, 2015, 120: 1-7
|
Huslystyi A O, Gasso V Y, Yermolenko S V, et al. Characteristics of the toxic effect of imidacloprid on the state of Eisenia fetida (Annelida, Clitellata, Lumbricidae)[J]. Ecology and Noospherology, 2021, 32(1): 41-46
|
Babić S, Barišić J, Bielen A, et al. Multilevel ecotoxicity assessment of environmentally relevant bisphenol A concentrations using the soil invertebrate Eisenia fetida[J]. Journal of Hazardous Materials, 2016, 318: 477-486
|
王凯. 新烟碱类杀虫剂对蚯蚓毒性及作用机制研究[D]. 北京: 中国农业大学, 2015: 80-81 Wang K. Study on toxicity and mechanism of neonicotinoid insecticides to earthworm[D]. Beijing: China Agricultural University, 2015: 80
-81(in Chinese)
|
姜继韶, 侯睿, 崔慧林, 等. 基于Meta分析的蚯蚓堆肥对堆肥质量和重金属的影响效应[J]. 环境科学, 2024, 45(5): 3047-3058
Jiang J S, Hou R, Cui H L, et al. Effects of vermicomposting on compost quality and heavy metals: A meta-analysis[J]. Environmental Science, 2024, 45(5): 3047-3058(in Chinese)
|