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369 results for “insecticides”
Fig. 3 in Appraisal of the impact of three insecticides on the principal rice pests and their predators in China
Fig. 3. Temporal dynamics of total numbers of predators per 50 hills where insecticide was applied (a) as a single application or (b) as 2 applications to rice plots.
Fig. 5 in Appraisal of the impact of three insecticides on the principal rice pests and their predators in China
Fig. 5. Temporal dynamics of predator insect diversity (a, diversity index; b, evenness index; c, dominance index; and d, species richness) in rice plots with various treatments (2 applications per season).
Fig. 2 in Appraisal of the impact of three insecticides on the principal rice pests and their predators in China
Fig. 2. Effects of Virtako on rice leaffolder abundance (mean number ± SE). Means followed by the same lowercase letter are not significantly different (ANOVA and Tukey's HSD test, P> 0.05).
Fig. 1 in Population variability of Spodoptera frugiperda (Lepidoptera: Noctuidae) in maize (Poales: Poaceae) associated with the use of chemical insecticides
Fig. 1. Spodoptera frugiperda populations in cultivated maize in various parts of Mexico from which larvae were collected to study molecular genetic variation.
Fig. 2 in Population variability of Spodoptera frugiperda (Lepidoptera: Noctuidae) in maize (Poales: Poaceae) associated with the use of chemical insecticides
Fig. 2. Dendrogram of genetic distance among Spodoptera frugiperda populations analyzed using ISSR molecular markers.
Fig. 1 in Regional susceptibilities of Rhopalosiphum padi (Hemiptera: Aphididae) to ten insecticides
Fig. 1. SaMpliNG reGioNs of Rhopalosiphum padi iN ChiNa. The reGioNs iNcluded BaicheNG of JiliN ProviNce (the populatioN code was NaMed as JLB), BaodiNG of Hebei ProviNce (HEB), LaNzhou of GaNsu ProviNce (GSL), TaiGu of ShaNxi ProviNce (SXT), Zibo of ShaNGdoNG ProviNce (SDZ), TaiaN of ShaNGdoNG ProviNce (SDT), XiaNyaNG of Shaaxi ProviNce (SAX), NaNyaNG of HeNaN ProviNce (HNN), Chuzhou of ANhui ProviNce (AHC), WuhaN of Hubei ProviNce (HBW), Beibei of ChoNGqiNG ProviNce (CQB), aNd GuiyaNG of Guizhou ProviNce (GZG).
Fig. 2 in Insecticidal activity of the methanol extract of Pronephrium megacuspe (Thelypteridaceae) and its active component on Solenopsis invicta (Hymenoptera: Formicidae)
Fig. 2. The effect of methanol extract, ethyl acetate fraction, and compound 26 293 (phenol-3-O-beta-D-glucoside) from Pronephrium megacuspe on the walking ability of 294 Solenopsis invicta micrergates. Each data point represents the mean ± SE of 3 replicates. Each 295 replicate contained 10 tested ants. CK = control.
Fig. 3 in Insecticidal activity of the methanol extract of Pronephrium megacuspe (Thelypteridaceae) and its active component on Solenopsis invicta (Hymenoptera: Formicidae)
Fig. 3. The effect of methanol extract, ethyl acetate fraction, and compound 26 298 (phenol-3-O-beta-D-glucoside) from Pronephrium megacuspe on the clinging ability of 299 Solenopsis invicta macrergates. Each data point represents the mean ± SE of 3 replicates. Each 300 replicate contained 10 tested ants. CK = control.
Fig. 1 in Insecticidal activity of the methanol extract of Pronephrium megacuspe (Thelypteridaceae) and its active component on Solenopsis invicta (Hymenoptera: Formicidae)
Fig. 1. The effect of methanol extract, ethyl acetate fraction, and compound 26 288 (phenol-3-O-beta-D-glucoside) from Pronephrium megacuspe on the walking ability of 289 Solenopsis invicta macrergates. Each data point represents the mean ± SE of 3 replicates. Each 290 replicate contained 10 tested ants. CK = control.
Fig. 1 in Efficacy of five insecticides targeting spring and fall populations of sugarcane beetle adults
Fig. 1. Adjusted percentage of mortality of fall and spring populations of sugarcane beetles by active ingredient at low label rate. Treatment means with different upper case letters are significantly different (P ≤ 0.05; ANOVA and LSD test) for the fall population. Treatment means with different lower case letters are significantly different (P ≤ 0.05; ANOVA and LSD test) for the spring population.
Fig. 2 in Efficacy of five insecticides targeting spring and fall populations of sugarcane beetle adults
Fig. 2. Adjusted percentage of mortality of spring sugarcane beetles by active ingredient at both low and high label rate. Treatment means with different upper case letters are significantly different (P ≤ 0.05; ANOVA and LSD test) at the low rate. Treatment means with different lower case letters are significantly different (P ≤ 0.05; ANOVA and LSD test) at the high rate.
Fig. 3 in Rapid detection of insecticide resistance in Diaphorina citri (Hemiptera: Liviidae) populations, using a bottle bioassay
Fig. 3. Susceptibility of laboratory and field-collected populations of Diaphorina citri to imidacloprid tested at the diagnostic exposure time–concentration combination (A: Lake Alfred 1; B: Winter Garden; C: Lake Alfred 2; D: Frostproof; LB: laboratory strain, FL: Florida field population). Each bar represents mean ± SE. An asterisk (*) indicates significant difference between laboratory and field population at a time period based on a Bonferroni test (P ≤ 0.05).
Fig. 2 in Rapid detection of insecticide resistance in Diaphorina citri (Hemiptera: Liviidae) populations, using a bottle bioassay
Fig. 2. Susceptibility of laboratory and field-collected populations of Diaphornia citri to dimethoate tested at the diagnostic exposure time–concentration combination (A: Lake Alfred 1; B: Winter Garden; C: Lake Alfred 2; D: Frostproof; LB: laboratory strain, FL: Florida field population). Each bar represents mean ± SE. An asterisk (*) indicates significant difference between laboratory and field population based on a Bonferroni test (P ≤ 0.05).
Fig. 1 in Rapid detection of insecticide resistance in Diaphorina citri (Hemiptera: Liviidae) populations, using a bottle bioassay
Fig. 1. Susceptibility of laboratory and field-collected populations of Diaphorina citri of bifenthrin tested at the diagnostic exposure time–concentration combination (A: Lake Alfred 1; B: Winter Garden; C: Lake Alfred 2; D: Frostproof;LB:laboratory strain, FL: Florida field population). Each bar represents mean ± SE.An asterisk (*) indicates significant difference between laboratory and field population at a time period based on a Bonferroni test (P ≤ 0.05).
Fig. 4 in Rapid detection of insecticide resistance in Diaphorina citri (Hemiptera: Liviidae) populations, using a bottle bioassay
Fig. 4. Susceptibility of laboratory and field-collected populations of Diaphorina citri to fenpropathrin tested at the diagnostic exposure time–concentration combination (A: Lake Alfred 1; B: Winter Garden; C: Lake Alfred 2; Frostproof; LB: Laboratory strain, FL: Florida Field strain). Each bar represents mean ± SE. An asterisk (*) indicates significant difference between laboratory and field population at a time period based on a Bonferroni test (P ≤ 0.05).
Fig. 2 in Evaluation of insecticides for curative, preventive, and rotational use on Scirtothrips dorsalis South Asia 1 (Thysanoptera: Thripidae)
Fig. 2. Mean numbers of Scirtothrips dorsalis adults per 10 leaf samples of Jalapeno pepper treated with different insecticides. Solid lines represent treatments where 1 insecticide was applied alone, and dashed lines show treatments of 2 insecticides applied in rotation. Same color solid and dashed lines represent same insecticide applied alone or in rotation with spinetoram.
Fig. 1 in Evaluation of insecticides for curative, preventive, and rotational use on Scirtothrips dorsalis South Asia 1 (Thysanoptera: Thripidae)
Fig. 1. Mean numbers of Scirtothrips dorsalis larvae per 10 leaf samples of Jalapeno pepper treated with different insecticides. Solid lines represent treatments where 1 insecticide was applied alone, and dashed lines show treatments of 2 insecticides applied in rotation. Same color solid and dashed lines represent same insecticide applied alone or in rotation with spinetoram.
Figure 3 in Insecticide resistance of Stegomyia aegypti (Diptera: Culicidae) population from Paranaguá a port city in southern Brazil
Figure 3. Relative gene expression of the (A) acetylcholinesterase (ace-1), (B) α-esterase (CCEae3A), and (C) cytochrome P 450 (CYP6N12) genes in S. aegypti females. C1_R: Rockefeller control group (n=10); C2_Pr: Paranaguá control group (n=14); C3_Pr: Paranaguá solvent control group (n=10); T1: Paranaguá resistant females after exposure to malathion at a concentration of 3.41% (n=24). Data are presented as median ± interquartile range. Different letters indicate significant difference at p <0.05, according to Dunn's post hoc tests.
Figure 2 in Insecticide resistance of Stegomyia aegypti (Diptera: Culicidae) population from Paranaguá a port city in southern Brazil
Figure 2. Mortality curve showing the upper and lower limits for each concentration of malathion exposure for S. aegypti of the Rockefeller strain.
Figure 1 in Insecticide resistance of Stegomyia aegypti (Diptera: Culicidae) population from Paranaguá a port city in southern Brazil
Figure 1. (A) Location of the city of Paranaguá, and (B) location of ovitraps containing the eggs obtained during the June 2018 monitoring cycle in the city. Colors depict the representativeness of each point in the establishment of the S. aegypti insectary used to obtain the F and F generations.
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International Brain Laboratory public data
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OpenNeuro
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