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153 results for “Tetranychus urticae”
FIGURE 14 in Evidence For Synonymy Between Tetranychus Urticae And Tetranychus Cinnabarinus (Acari, Prostigmata, Tetranychidae): Review And New Data
FIGURE 14: Variations in the aspect and development of dorsal lobes in RF females of Tetranychus urticae (original drawings from C.F. van de Bund and W. Helle — 1960 — Entomol. Exp. et appl., 3: 142–156). A – less developed lobes; B – normally developed lobes.
FIGURE 12 in Evidence For Synonymy Between Tetranychus Urticae And Tetranychus Cinnabarinus (Acari, Prostigmata, Tetranychidae): Review And New Data
FIGURE 12: Parameters measured on the dorsal integumentary lobes: base (B), distance between the top of two lobes (D), height (H), surface of a lobe (S) (redrawn after Hance et al., 1998).
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.
FIGURE 3 in Neoseiulus Californicus (Mcgregor, 1954) Preying In Different Life Stages Of Tetranychus Urticae Koch, 1836 (Acari: Phytoseiidae, Tetranychidae)
FIGURE 3: Number of eggs laid by one Neoseiulus californicus adult female per day, according to the density of Tetranychus urticae offered (original curve and trend)
FIGURE 1 in Neoseiulus Californicus (Mcgregor, 1954) Preying In Different Life Stages Of Tetranychus Urticae Koch, 1836 (Acari: Phytoseiidae, Tetranychidae)
FIGURE 1: Percentage of predatory capacity of Tetranychus urticae at different life stages by larvae, nymphs, adult male and female of Neoseiulus californicus
FIGURE 2 in Neoseiulus Californicus (Mcgregor, 1954) Preying In Different Life Stages Of Tetranychus Urticae Koch, 1836 (Acari: Phytoseiidae, Tetranychidae)
FIGURE 2: Number of Tetranychus urticae preyed upon by one Neoseiulus californicus female per day, according to the density offered (original and tendency curve)
Augmentation and conservation biological control of Tetranychus urticae on hops in Ohio
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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.
Demography of Tetranychus urticae (Acari: Tetranychidae) on Phaseolus vulgaris (Fabales: Fabaceae) under Different Nitrogen Fertilization Regimes with Estimations of Confidence Intervals
<p>The life table raw data and output files:</p> <p>In order to study the effect of nitrogen fertilization on the population growth rate of two-spotted spider mite, <em>Tetranychus urticae</em> Koch (Acari: Tetranychidae), life table data on common bean were collected. Bean plants were treated with four nitrogen levels (0, 75, 150, and 225 kg N ha<sup>-1</sup>). Data were analyzed based on the age-stage, two-sex life table program.</p>
FIGURE 3 in Population Growth Parameters Of The Two-Spotted Spider Mite, Tetranychus Urticae, On Three Peach Varieties In Iran
FIGURE 3: Daily fecundity curves (eggs/female/day) of T. urticae on three peach varieties.
FIGURE 19 in Evidence For Synonymy Between Tetranychus Urticae And Tetranychus Cinnabarinus (Acari, Prostigmata, Tetranychidae): Review And New Data
FIGURE 19: Dorsal lobe aspect observed on F20-30 hybrid female of Tetranychus urticae.
FIGURE 9 in Evidence For Synonymy Between Tetranychus Urticae And Tetranychus Cinnabarinus (Acari, Prostigmata, Tetranychidae): Review And New Data
FIGURE 9: GF females of Tetranychus urticae with an additional pair of spots in the caudal area.
Data from: Spatially correlated extinctions select for less emigration but larger dispersal distances in the spider mite Tetranychus urticae
Dispersal is a central process to almost all species on earth, as it connects spatially structured populations and thereby increases population persistence. Dispersal is subject to (rapid) evolution and local patch extinctions are an important selective force in this context. In contrast to the randomly distributed local extinctions considered in most theoretical studies, habitat fragmentation or other anthropogenic interventions will lead to spatially correlated extinction patterns. Under such conditions natural selection is thought to lead to more long-distance dispersal, but this theoretical prediction has not yet been verified empirically. We test this hypothesis in experimental spatially structured populations of the spider mite Tetranychus urticae and supplement these empirical results with insights from an individual-based evolutionary model. We demonstrate that the spatial correlation of local extinctions changes the entire distribution of dispersal distances (dispersal kernel) and selects for overall less emigration but more long-distance dispersal.
Fig. 3 in Efficiency Against The Two-Spotted Spider Mite Tetranychus Urticae And Prey-Age-Related Choice Of Three Predatory Mites
Fig. 3. Number of juvenile 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
Fig. 2 in Efficiency Against The Two-Spotted Spider Mite Tetranychus Urticae And Prey-Age-Related Choice Of Three Predatory Mites
Fig. 2. Number of spider mite eggs 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 Toxicity of spiromesifen on different developmental stages of two-spotted spider mite, Tetranychus urticae Koch (Acari: Tetranychidae)
Figure 1. The effectiveness (%) of spiromesifen on different stages of Tetranychus urticae – A. Eggs hatching ratio (2011); B. Eggs hatching ratio (2012); C. Immature stages (2011); D. Immature stages (2012); E. Adult (females,
Figure 7 in Effects of climatic parameters on Tetranychus urticae (Acari: Tetranychidae) populations based on remote sensing in the southeastern Caspian Sea
Figure 7. The relationship between daily Land Surface Temperature and spider mite population (mean score of each window) from June 9, 2020 to September 17, 2020. (First window, May 30 to June 9 was not spider mite distribution data), … and -- are Day and night LST, respectively.
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