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153 results for “Tetranychus urticae”
Fig. 1 in Incorporation of biorational insecticides with neonicotinoids to combat resurgence of Tetranychus urticae (Prostigmata: Tetranychidae) on rose
Fig. 1. Preference and non-preference test for spider mites by pro- viding imidacloprid (IMD)-or acetamiprid (ACT)-treated and untreated rose leaves as 2 choices at different days afer treatment (DAT) and observing the percentage of spider mites reaching a specific choice. Asterisk indicates significant difference between treatment and untreated control (P = 0.05, χ2 goodness of fit).
Figure 1 in Interaction between biological aspects of Tetranychus urticae Koch (Acari: Tetranychidae) and some chemical composition in two colored Acalypha wilkesiana Müll. Arg. (Malpighiales: Euphorbiaceae) leaves
Figure 1. Graph of Pearson's correlation analysis among the different studied leaf parameters including the chemical analysis of Acalypha leaves and the T. urticae female characteristics. The colors represent variations in the obtained data. * indicates the significant at P-value <0.05.
Fig. 3 in Evaluation of a lignin-encapsulated nootkatone formulation against Tetranychus urticae (Acari: Tetranychidae)
Fig. 3. Mean (± SEM) percent of Tetranychus urticae egg hatch at 7 and 9 d afer treatment with water (control), surfactant control (1 mL per L EZ-Mulse), 1 g per L lignin-encapsulated (LE) nootkatone, or a 1 g per L lignin-encapsulated nootkatone/surfactant mixture on lima bean leaf discs. Treatments within a date with different letters were significantly different (P <0.05), with Tukey's test.
Fig. 2 in Evaluation of a lignin-encapsulated nootkatone formulation against Tetranychus urticae (Acari: Tetranychidae)
Fig. 2. Percent (± SEM) inactive Tetranychus urticae adults on leaf discs treat- ed with lignin-encapsulated (LE) nootkatone: (A) 1 g per L lignin-encapsulated nootkatone solution (webbing not present); (B) 1 g per L and 2 g per L ligninencapsulated nootkatone solution (webbing present); (C) 1 g per L lignin-encapsulated nootkatone + 0.1% carvacrol solution (webbing present). Treatment means at 48 h with different letters were significantly different (P <0.05), with Tukey's test.
Fig. 1 in Evaluation of a lignin-encapsulated nootkatone formulation against Tetranychus urticae (Acari: Tetranychidae)
Fig. 1. Choice-test bioassay arena design with parallel treatment filter paper arms and a filter paper bridge.
Fig. 6 in Multiple infestations induce direct defense of maize to Tetranychus urticae (Acari: Tetranychidae)
Fig. 6. Number (mean ± SE) of live females (A, C2 = 7.39; df = 37; P <0.001), immature individuals (B, C2 = 2.14; df = 36; P <0.001), eggs (C, C2 = 2.14; df = 36; P <0.001), and dead females (D, C2 = 7.7; df = 36; P <0.001) of the two-spotted spider mite Tetranychus urticae on conspecific plus Spodoptera frugiperda infested conventional (white bars) and Bt (gray bars) maize plants. M = mite, C = caterpillar. *** = statistically significant (P <0.01).
Fig. 5 in Multiple infestations induce direct defense of maize to Tetranychus urticae (Acari: Tetranychidae)
Fig. 5. Number (mean ± SE) of live females (A, C2 = 29.5; df =37; P = 0.195), immature individuals (B, C2 = 39.1; df = 36; P = 0.670), eggs (C, C2 = 31.7; df = 36; P = 0.326), and dead females (D, C2 = 22.0; df = 37; P = 0.024) of the two-spotted spider mite Tetranychus urticae on conspecific (white bars) and conspecific plus Spodoptera frugiperda infested (gray bars) Bt maize plants. M = mite, C = caterpillar. ns = statistically insignificant, * = statistically significant (P <0.05).
Fig. 4 in Multiple infestations induce direct defense of maize to Tetranychus urticae (Acari: Tetranychidae)
Fig. 4. Number (mean ± SE) of live females (A, C2 = 7.65; df = 37; P <0.001), immature individuals (B, C2 = 2.60; df = 36; P <0.001), eggs (C, C2 = 2.14; df = 36; P <0.001), and dead females (D, C2 = 5.38; df = 37; P <0.001) of the two-spotted spider mite Tetranychus urticae on conspecific (white bars) and conspecific plus Spodoptera frugiperda infested (gray bars) conventional maize plants. M = mite, C = caterpillar. *** = statistically significant (P <0.01).
Fig. 3 in Multiple infestations induce direct defense of maize to Tetranychus urticae (Acari: Tetranychidae)
Fig. 3. Number (mean ± SE) of live females (A, C2 = 31.11; df = 37; P = 0.259), immature individuals (B, C2 = 27.67; df = 37; P = 0.133), eggs (C, C2 = 27.67; df = 36; P = 0.240), and dead females (D, C2 = 23.58; df = 37; P = 0.042) of the two-spotted spider mite Tetranychus urticae on infested conventional (30F35) (white bars) and Bt (30F35Hx) (gray bars) maize plants. ns = statistically insignificant, * = statistically significant (P <0.05).
Fig. 1 in Multiple infestations induce direct defense of maize to Tetranychus urticae (Acari: Tetranychidae)
Fig. 1. Number (mean ± SE) of live females (A, C2 = 45.2; df = 36; P = 0.861), immature individuals (B, C2 = 38.7; df = 37; P = 0.608), eggs (C, C2 = 38.1; df = 36; P = 0.624), and dead females (D, C2 = 29.7; df = 37; P = 0.203) of the two-spotted spider mite Tetranychus urticae on clean (white bars) and co-specific re-infested (gray bars) conventional maize plants (30F35). ns = statistically insignificant.
Fig. 7 in Multiple infestations induce direct defense of maize to Tetranychus urticae (Acari: Tetranychidae)
Fig. 7. Projection to principal component analysis based on the ions detected by electrospray ionization mass spectrometry of uninfested (C = o) and infested with Tetranychus urticae (C + Tu = ●) conventional maize; uninfested (Bt = Z) and infested with T. urticae (Bt + Tu = ■) Bt maize; infested with T. urticae and Spodoptera frungiperda (C + Tu + Sf = Δ) conventional maize; and infested with T. urticae and S. frungiperda (Bt + Tu + Sf = ▲) Bt maize, using the first 2 principal components (Dim) with explained variance in brackets
Fig. 2 in Multiple infestations induce direct defense of maize to Tetranychus urticae (Acari: Tetranychidae)
Fig. 2. Number (mean ± SE) of live females (A, C2 = 21.9; df = 37; P = 0.02), immature individuals (B, C2 = 40.9; df = 37; P = 0.698), eggs (C, C2 = 30.5; df = 37; P = 0.235), and dead females (D, C2 = 21.9; df = 37; P = 0.383) of the two-spotted spider mite, Tetranychus urticae, on clean (light gray bars) and co-specific re-infested (dark gray bars) Bt maize plants (30F35Hx). ns = statistically insignificant, * = statistically significant (P <0.05).
Fig. 2 in Resistance of four rose varieties to Tetranychus urticae (Acari: Tetranychidae) under greenhouse conditions
Fig. 2. Average (± SE) of the percentage of chlorophyll loss caused by the feeding of Tetranychus urticae. Varieties with different letters were significantly different (Tukey test, P <0.05).
Fig. 1 in Resistance of four rose varieties to Tetranychus urticae (Acari: Tetranychidae) under greenhouse conditions
Fig. 1. Box-plot comparing growth rate (r) of Tetranychus urticae on 4 rose varieties. Varieties with different letters were significantly different (Nemenyi test, P <0.05).
Figure 3 in Seasonal abundance of Tetranychus urticae and Amblyseius swirskii (Acari: Tetranychidae and Phytoseiidae) on four strawberry cultivars
Figure 3. Overall mean numbers of Tetranychus urticae and Amblyseius swirskii on four strawberry cultivars during (a) 2017/2018 and (b) 2018/2019 seasons.
Figure 1 in Seasonal abundance of Tetranychus urticae and Amblyseius swirskii (Acari: Tetranychidae and Phytoseiidae) on four strawberry cultivars
Figure 1. Mean numbers of Tetranychus urticae and Amblyseius swirskii populations on four strawberry cultivars during 2017/2018 season.
Figure 2 in Seasonal abundance of Tetranychus urticae and Amblyseius swirskii (Acari: Tetranychidae and Phytoseiidae) on four strawberry cultivars
Figure 2. Mean numbers of Tetranychus urticae and Amblyseius swirskii populations on four strawberry cultivars during 2018/2019 season.
Figure 2 in On the effect of ozonated water on mortality of Tetranychus urticae (Trombidiformes: Tetranychidae) on Capsicum annuum (Solanaceae) in greenhouse conditions
Figure 2. The effect of ozone concentrations (0 and 43 g/m3) on mortality rate (mean ± SE) of T. urticae on pepper (Capsicum annuum L.) in a controlled environment.
Figure 3 in On the effect of ozonated water on mortality of Tetranychus urticae (Trombidiformes: Tetranychidae) on Capsicum annuum (Solanaceae) in greenhouse conditions
Figure 3. The effect of age of the plant (4, 8 and 12 weeks old) on mortality rate (mean ± SE) of T. urticae on pepper (Capsicum annuum L.) at 0 and 43 g/m3 ozone concentration in a controlled environment.
Figure 1 in On the effect of ozonated water on mortality of Tetranychus urticae (Trombidiformes: Tetranychidae) on Capsicum annuum (Solanaceae) in greenhouse conditions
Figure 1. Interaction effect between ozone concentration (0 and 43 g/m3) and exposure time (5, 10 and 15 s) on mortality percentage (mean ± SE) of T. urticae on pepper (Capsicum annuum L.) in a controlled environment.
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