Message Board

Dear readers, authors and reviewers,you can add a message on this page. We will reply to you as soon as possible!

2021 Volume 34 Issue 4
Article Contents

PAN Rundong, LIU Xiangrui, LI Peizheng. Bioassay of 8 Insecticides Against Tirathaba rufivena and Synergy Test of Different Mixtures of the Two Best Ones[J]. PLANT HEALTH AND MEDICINE, 2021, (4): 31-35. doi: 10.13718/j.cnki.zwys.2021.04.007
Citation: PAN Rundong, LIU Xiangrui, LI Peizheng. Bioassay of 8 Insecticides Against Tirathaba rufivena and Synergy Test of Different Mixtures of the Two Best Ones[J]. PLANT HEALTH AND MEDICINE, 2021, (4): 31-35. doi: 10.13718/j.cnki.zwys.2021.04.007

Bioassay of 8 Insecticides Against Tirathaba rufivena and Synergy Test of Different Mixtures of the Two Best Ones

More Information
  • Received Date: 06/07/2021
  • MSC: S433.4

  • Tirathaba rufivena is a serious pest on Areca catechu. This study aims to evaluate effective insecticides and synergy effect of the best mixture for controlling this pest. It is important to reduce the application and increase the efficiency of insecticides, reduce insecticide residue, and delay the development pf drug resistancein the pest.In an experiment reported herein, the toxicities of 8 insecticides (emamectin benzoate, chlorantraniliprole,beta cypermethrin, indoxacarb, monosultap, thiamethoxam, pirimiphos-methyl and imidacloprid) against the T. rufivena were tested through bioassay. The results showed that emamectin benzoate (LC50:0.54mg/L) and chlorantraniliprole (LC50:1.34 mg/L) were the best choices. Then, the synergy effect of different mixtures of the two was tested. Emamectin benzoate and chlorantraniliprole showed additive or synergistic effects at different mixing ratios, and the mixture with a mass ratio of 1:3 had the most significant synergistic effect. Its LC50 was 0.70 mg/L, and CTC was 139.68, which could be used as the best formula.
  • 加载中
  • [1] 黄玉林, 王铭, 张欣英, 等. 槟榔果中活性物质的研究进展[J]. 农产品加工(学刊), 2007(7):16-18.

    Google Scholar

    [2] 祁静, 黄玉林, 陈卫军, 等. 槟榔酚类物质生理活性研究进展[J]. 热带作物学报, 2010, 31(6):1050-1055.

    Google Scholar

    [3] 于同月, 徐坤元, 马将. 槟榔的临床应用及其用量探究[J]. 长春中医药大学学报, 2021, 37(2):274-277.

    Google Scholar

    [4] CAWTE J. Psychoactive Substances of the South Seas:Betel, Kava and Pituri[J]. Australian and New Zealand Journal of Psychiatry, 1985, 19(1):83-87.

    Google Scholar

    [5] KATIYAR S, HEDAU S, JAIN N, et al. P53 Gene Mutation and Human Papillomavirus (HPV) Infection in Esophageal Carcinoma from Three Different Endemic Geographic Regions of India[J]. Cancer Letters, 2005, 218(1):69-79.

    Google Scholar

    [6] BRATT A M, KELLY M E, DOMENEY A M, et al. Acute and Chronic Arecoline:Effects on a Scopolamine-Induced Deficit in Complex Maze Learning[J]. Pharmacology Biochemistry and Behavior, 1996, 53(3):713-721.

    Google Scholar

    [7] 叶育才. 海南槟榔产业可持续发展思路[J]. 中国热带农业, 2007(3):12-13.

    Google Scholar

    [8] 杨光融, 林延谋, 符悦冠. 槟榔红脉穗螟的生物学特性[J]. 热带作物学报, 1986, 7(2):107-110.

    Google Scholar

    [9] 樊瑛, 甘炳春, 陈思亮, 等. 槟榔红脉穗螟的生物学特性及其防治[J]. 昆虫知识, 1991, 28(3):146-148.

    Google Scholar

    [10] 常静, 张薇, 李海平, 等. 吡虫啉与三种拟除虫菊酯杀虫剂对马铃薯桃蚜的联合毒力[J]. 植物保护, 2016, 42(6):225-228.

    Google Scholar

    [11] 吕朝军, 钟宝珠, 孙晓东, 等. 印楝素与啶虫脒对椰心叶甲生物活性及混配增效作用[J]. 江西农业学报, 2011, 23(2):99-101.

    Google Scholar

    [12] 钟宝珠, 冯焕德, 张中润, 等. 阿维菌素和高效氯氰菊酯混配对红脉穗螟的增效作用[J]. 生物安全学报, 2017, 26(4):323-326.

    Google Scholar

    [13] SUN Y P, JOHNSON E R. Analysis of Joint Action of Insecticides Against House Flies[J]. Journal of Economic Entomology, 1960, 53(5):887-892.

    Google Scholar

    [14] DIONISIO A C, RATH S. Abamectin in Soils:Analytical Methods, Kinetics, Sorption and Dissipation[J]. Chemosphere, 2016, 151:17-29.

    Google Scholar

    [15] BIAN Y L, WANG B N, LIU F M, et al. Residue Behaviour and Dietary Risk Assessment of Emamectin Benzoate in Mango under Field Condition Using Modified QuEChERS Method Combined with HPLC-MS/MS[J]. International Journal of Environmental Analytical Chemistry, 2020, 100(3):333-345.

    Google Scholar

    [16] SAEED R, ABBAS N, MEHMOOD Z. Emamectin Benzoate Resistance Risk Assessment in Dysdercus coenigii:Cross-Resistance and Inheritance Patterns[J]. Crop Protection, 2020, 130:105069.

    Google Scholar

    [17] 王迪轩. 甲氨基阿维菌素苯甲酸盐[J]. 农业知识, 2020(22):17-18.

    Google Scholar

    [18] 陈昊楠, 张喆, 徐翔, 等. 多种药剂对草地贪夜蛾田间防治效果评价[J]. 四川农业科技, 2020(1):42-45.

    Google Scholar

    [19] 高庆远, 杨石有, 张贝贝. 甲维盐与四氯虫酰胺复配对草地贪夜蛾的室内生物活性及田间防效[J]. 农药, 2021, 60(4):306-309.

    Google Scholar

    [20] 刘旭, 姚晨涛, 汪岩, 等. 氯虫苯甲酰胺对草地贪夜蛾的田间防效评价[J]. 四川农业科技, 2020(9):30-32.

    Google Scholar

    [21] WU M, LI G L, LI P F, et al. Assessing the Ecological Risk of Pesticides should not Ignore the Impact of Their Transformation Byproducts the Case of Chlorantraniliprole[J]. Journal of Hazardous Materials, 2021, 418:126270.

    Google Scholar

    [22] PENG Y C, ZHAO J, SUN Y, et al. Insights into Chlorantraniliprole Resistance of Chilo Suppressalis:Expression Profiles of ATP-Binding Cassette Transporter Genes in Strains Ranging from Low-to High-Level Resistance[J]. Journal of Asia-Pacific Entomology, 2021, 24(2):224-231.

    Google Scholar

    [23] 王佳林, 罗学良, 李艳华, 等. 氯虫苯甲酰胺对草地贪夜蛾防效试验[J]. 湖北植保, 2021(1):22-23.

    Google Scholar

    [24] 胡飞, 苏贤岩, 胡本进, 等. 甲维盐·氯虫苯甲酰胺组合物对草地贪夜蛾室内毒力测定及田间防治效果[J]. 植物保护, 2020, 46(3):303-307.

    Google Scholar

  • 加载中
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Article Metrics

Article views(532) PDF downloads(308) Cited by(0)

Access History

Other Articles By Authors

Bioassay of 8 Insecticides Against Tirathaba rufivena and Synergy Test of Different Mixtures of the Two Best Ones

Abstract: Tirathaba rufivena is a serious pest on Areca catechu. This study aims to evaluate effective insecticides and synergy effect of the best mixture for controlling this pest. It is important to reduce the application and increase the efficiency of insecticides, reduce insecticide residue, and delay the development pf drug resistancein the pest.In an experiment reported herein, the toxicities of 8 insecticides (emamectin benzoate, chlorantraniliprole,beta cypermethrin, indoxacarb, monosultap, thiamethoxam, pirimiphos-methyl and imidacloprid) against the T. rufivena were tested through bioassay. The results showed that emamectin benzoate (LC50:0.54mg/L) and chlorantraniliprole (LC50:1.34 mg/L) were the best choices. Then, the synergy effect of different mixtures of the two was tested. Emamectin benzoate and chlorantraniliprole showed additive or synergistic effects at different mixing ratios, and the mixture with a mass ratio of 1:3 had the most significant synergistic effect. Its LC50 was 0.70 mg/L, and CTC was 139.68, which could be used as the best formula.

Reference (24)

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return