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32 results for “two-spotted spider mites”
Figure 2 in Development and life table parameters of the Phytoseius corniger Wainstein (Acari: Phytoseiidae) feeding on the two-spotted spider mite, Tetranychus urticae Koch (Acari: Tetranychidae) under laboratory conditions
Figure 2. The age-specific survival rate (lx), and fecundity (mx) of Phytoseius corniger fed on Tetranychus urticae under laboratory conditions (25 ± 2 °C, 55 ± 5% of RH, and 16L: 8D h photoperiod).
Figure 1 in Development and life table parameters of the Phytoseius corniger Wainstein (Acari: Phytoseiidae) feeding on the two-spotted spider mite, Tetranychus urticae Koch (Acari: Tetranychidae) under laboratory conditions
Figure 1. Age-stage specific survival rate (sjx) of the parent cohort of bisexual Phytoseius corniger fed on Tetranychus urticae under laboratory conditions (25 ± 2 °C, 55 ± 5% of RH, and 16L: 8D h photoperiod). Note: L stands for larva, N1 for protonymph, and N2 for deutonymph, respectively.
Figure 5 in Grafting increases superoxide dismutase and catalase activity to overcome the impact of the two-spotted spider mite on eggplant growth and productivity
Figure 5 Influence of TSSM infestation density on chlorophyll a+b (A) and carotenoids (B) content in grafted and non-grafted eggplant leaves. Means followed by the same letter(s) are not significantly different.
Figure 3 in Grafting increases superoxide dismutase and catalase activity to overcome the impact of the two-spotted spider mite on eggplant growth and productivity
Figure 3 Effect of grafting on fruit number, fruit weight per plant and average fruit weight in grafted A338 on STT3 and non-grafted plants. The asterisk indicates statistical significance (P <0.05), and (ns) indicates not significant (P> 0.05) between two treatment analyzed by Two-tailed paired Student t-test.
Figure 1 in Grafting increases superoxide dismutase and catalase activity to overcome the impact of the two-spotted spider mite on eggplant growth and productivity
Figure 1 Monthly abundance of TSSM egg (A), nymph (B) and adult (C) stages in grafted and nongrafted eggplants. Means followed by the same letter(s) are not significantly different.
Fig. 1 in Efficiency Against The Two-Spotted Spider Mite Tetranychus Urticae And Prey-Age-Related Choice Of Three Predatory Mites
Fig. 1. Number of adult spider mites surviving in the presence of predatory mites at different predator densities. Light grey boxes represent treatments with low predator densities, dark grey boxes represent treatments with high predator densities. Boxes show the median and the 25–75 percentiles; dashed lines indicate the range
Figure 1 in Laboratory evaluation of Beauveria bassiana, some plant oils and insect growth regulators against two-spotted spider mite, Tetranychus urticae Koch (Acari: Tetranychidae)
Figure 1. Infection caused by Beauveria bassiana on Tetranychus urticae, (a, b) dead female mites due to mycosis, (c) dead mite in control.
Figure 4 in Can host plants affect egg predation of two-spotted spider mite by Macrolophus pygmaeus (Hemiptera: Miridae)?
Figure 4. Age-specific survival rate (lx), age-specific predation rate (kx), and age-specific net predation rate (qx) of Macrolphus pygmaeus fed on Tetranychus urticae eggs reared on tomato and sweet pepper.
Figure 2 in Can host plants affect egg predation of two-spotted spider mite by Macrolophus pygmaeus (Hemiptera: Miridae)?
Figure 2. Age-specific survivorship (lx), age-stage-specific fecundity (fxj), age-specific fecundity of the total population (mx), and age-specific maternity (lxmx) of Macrolophus pygmaeus fed on Tetranychus urticae eggs reared on tomato plant and sweet pepper.
Figure 4 in Grafting increases superoxide dismutase and catalase activity to overcome the impact of the two-spotted spider mite on eggplant growth and productivity
Figure 4 Influence of TSSM infestation density on CAT (A) and SOD (B) enzyme activities, as well
Figure 2 in Grafting increases superoxide dismutase and catalase activity to overcome the impact of the two-spotted spider mite on eggplant growth and productivity
Figure 2 Average total number of TSSM in grafted and non-grafted eggplants. Means followed by
FIGURE 1 in Population Growth Parameters Of The Two-Spotted Spider Mite, Tetranychus Urticae, On Three Peach Varieties In Iran
FIGURE 1: Survival rate for life stages of T. urticae, from egg to adult emergence, on three peach varieties, Redtap, G.H.Hale and Kardi, under 27 ± 1 °C, 50 ± 10 % humidity and photoperiod of 12:12 (L:D) conditions.
FIGURE 2 in Population Growth Parameters Of The Two-Spotted Spider Mite, Tetranychus Urticae, On Three Peach Varieties In Iran
FIGURE 2: Age-specific survival (lx) curves of female of T. urticae in adulthood on three peach varieties.
FIGURE 4 in Population Growth Parameters Of The Two-Spotted Spider Mite, Tetranychus Urticae, On Three Peach Varieties In Iran
FIGURE 4: Offspring sex ratio of females of T. urticae reared on three peach varieties. At each sampling date, black and white bars indicate the percentages of male and female offspring, respectively.
FIGURE 1 in Resistance Mechanisms To Abamectin In Iranian Populations Of The Two-Spotted Spider Mite, Tetranychus Urticae Koch (Acari: Tetranychidae)
FIGURE 1: GST banding pattern in the susceptible GUS2 and resistant ISR populations of T. urticae. St: GUS2 mites treated with 1 ppm abamectin solution (using leaf dip method); Sc: GUS2 mites, control; Rt: ISR mites treated with 3000 ppm abamectin solution (using leaf dip method); Rc: ISR mites, control.
FIGURE 2 in Resistance Mechanisms To Abamectin In Iranian Populations Of The Two-Spotted Spider Mite, Tetranychus Urticae Koch (Acari: Tetranychidae)
FIGURE 2: Mean ± SE of heme content in the resistant ISR and susceptible GUS2 T. urticae populations.
Dataset specialist generalist genotype of Two-Spotted Spider Mite across various species of Lonicera and Euonymus europaeus.
<p>A map containing the Excel sheets, tables, figures, SPSS scripts and figures and an explanation of what is to find in all maps in the repository. </p>
FIGURE 1 in The two-spotted spider mite Tetranychus urticae Koch and the carmine spider mite Tetranychus cinnabarinus (Boisduval) in China mixed in their Wolbachia phylogenetic tree
FIGURE 1. The phylogenetic tree of the wsp gene sequences of Wolbachia in 18 geographical populations of T. cinnabarinus, 13 geographical populations of T. urticae in China and T. urticae (red and green forms) from other countries. The wsp gene sequences of three insects (Drosophila simulans, Aedes albopictus and Culex pipiensis) were used as out groups.
FIGURE 2. Phylogenetic relationships between T. cinnabarinus and T. urticae inferred from ITS2 in Genetic Relationship between the Carmine Spider Mite Tetranychus cinnabarinus (Boisduval) and the Two-spotted Mite T. urticae Koch in China Based on the mtDNA COI and rDNA ITS2 Sequences
FIGURE 2. Phylogenetic relationships between T. cinnabarinus and T. urticae inferred from ITS2 data of Neighbor- Joining methods. Phylogenetic tree was established by MEGA based on Kimura-2-parameter distance. Numbers on branches indicate the percentage of 100 bootstraps supporting the branching pattern shown. Two sequences of T. evansi and T. pacificus were used as outgroups.
FIGURE 1 in Genetic Relationship between the Carmine Spider Mite Tetranychus cinnabarinus (Boisduval) and the Two-spotted Mite T. urticae Koch in China Based on the mtDNA COI and rDNA ITS2 Sequences
FIGURE 1. Phylogenetic tree inferred from COI sequences of various samples of T. urticae and T. cinnabarinus. The Neighbor-Joining (NJ) method was used based on distances calculated using Kimura-2-parameter correction method. Numbers on branches indicate the percentage of 100 bootstraps supporting the branching pattern shown. The species Petrobia harti and Bryobia kissophila were used as outgroups. Mite colouration for each sample is indicated in brackets: (R) means red form of T. urticae; (G) means green form of T. urticae.
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