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37 results for “Panonychus”
Figure 1 in Effect of initial infestation on population fluctuation and spatial distribution of Panonychus citri (Acari: Tetranychidae) on Thomson navel orange in Ghaemshahr, Iran
Figure 1. Population fluctuation of Panonychus citri on Thomson navel orange in a multi-treatment experiment in in 2016. Control treatment = average number of 0.48 mite per leaf; Treatment 1 = average number of 1.12 mites per leaf, Treatment 2 = average number of 1.23 mites per leaf, Treatment 3 = average number of 6.36 mites per leaf, Treatment
Figure 4 in Effect of initial infestation on population fluctuation and spatial distribution of Panonychus citri (Acari: Tetranychidae) on Thomson navel orange in Ghaemshahr, Iran
Figure 4. Population fluctuation of Panonychus citri on Thomson navel orange in a paired-treatment experiment in 2017. Infested treatment = average number of 0.79 mite per leaf, Control treatment = average number of 0.59 mite per leaf.
Figure 2 in Effect of initial infestation on population fluctuation and spatial distribution of Panonychus citri (Acari: Tetranychidae) on Thomson navel orange in Ghaemshahr, Iran
Figure 2. Population fluctuation of Panonychus citri on Thomson navel orange in a multi-treatment experiment in in 2016. Control treatment = average number of 0.2 mite per leaf, Treatment 1 = average number of 0.3 mite per leaf, Treatment
Figure 2 in Sublethal effects of cyflumetofen and spirodiclofen on biological parameters of citrus red mite, Panonychus citri McGregor (Acari: Tetranychidae)
Figure 2. Age-stage specific survival rate (Sxj) of offspring from P. citri females treated with LC20 sublethal concentration of cyflumetofen and spirodiclofen compared with untreated females.
Figure 3 in Sublethal effects of cyflumetofen and spirodiclofen on biological parameters of citrus red mite, Panonychus citri McGregor (Acari: Tetranychidae)
Figure 3. Age-stage life expectancy (exj) of offspring from P. citri females treated with LC20 sublethal concentration of cyflumetofen and spirodiclofen compared with untreated females.
Fig. 2 in Molecular cloning of heat shock protein gene HSP90 and effects of abamectin and double-stranded RNA on its expression in Panonychus citri (Trombidiformes: Tetranychidae)
Fig. 2. Alignment of HSP90 amino acid sequence of P. citri McGregor and its homologus amino acid sequences from other species (Frankliniella occidentalis, Trialeurodes vaporariorum, Pteromalus puparum, Tetranychus cinabarinus).
Fig. 7 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 7. Alignment of the predicted amino acid sequences of the CYP307A1 in Panonychus citri between the hexythiazox-resistant (RR) and susceptible (SS) strains. Mazarine shading indicates identities and different color shading represents mutations. "-" represents no sequence to compare. We detected a sense amino acid mutation (14-threonine to serine).. This figure is shown in color in a supplementary document online as Suppl. Fig. 7 in Florida Entomologist 98(1) (March 2015) at http://purl.fcla.edu/fcla/entomologist/browse.
Fig. 5 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 5. Alignment of the predicted amino acid sequences of CYP307A1 in Panonychus citribetween the hexythiazox-resistant (RR) and susceptible (SS) strains. Mazarine shading indicates identities and different color shading represents mutations. "-" represents no sequence to compare. Only one amino acid mutation (278-lysine to glutamine) was detected.. This figure is shown in color in a supplementary document online as Suppl. Fig. 5 in Florida Entomologist 98(1) (March 2015) at http://purl.fcla.edu/fcla/entomologist/browse.
Fig. 6 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 6. Nucleotide sequence comparison of CYP381A2 in Panonychus citri between the hexythiazox-resistant (RR) and susceptible (SS) strains. Mazarine shading indicates identities and different color shading represents mutations. "-" represents no sequence to compare. Just one SNP site was detected. The nucleotide transition of A to T was at position 40.. This figure is shown in color in a supplementary document online as Suppl. Fig. 6 in Florida Entomologist 98(1) (March 2015) at http://purl.fcla.edu/fcla/entomologist/browse.
Fig. 4 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 4. Nucleotide sequence comparison of the CYP307A1 in Panonychus citri between the hexythiazox-resistant (RR) and susceptible (SS) strains. Mazarine shading indicates identities and different color shading represents mutations. "-" represents no sequence to compare. Three SNP sites were detected in all. The first nucleotide mutation (A to C) is located at 841, the second mutation is 1395-T to C, and the final mutation is 1491-T to C.. This figure is shown in color in a supplementary document online as Suppl. Fig. 4 in Florida Entomologist 98(1) (March 2015) at http://purl.fcla.edu/fcla/entomologist/browse.
Fig. 3 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 3. Quantitative Real-time PCR analysis of CYPs in Panonychus citri between the hexythiazox-resistant (RR) and susceptible (SS) strains. The numbers of genes down-regulated and up-regulated in the RR relative to the SS are indicated above or below the X axis. The light or dark gray was susceptible strain and resistant strain, respectively.
Fig. 1 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 1. Number, family and clan distribution of cytochrome P450 genes in Panonychus citri. The number shown along each column represents the P450 family and the number in parenthesis is the number of individual genes in the corresponding family. The P450 gene sequence information generated is from the VectorBase of the P. citri transcriptome sequence.
Fig. 2 in Differential analysis of the cytochrome p450 acaricide-resistance genes in Panonychus citri (Trombidiformes: Tetranychidae) strains
Fig. 2. Neighbor-joining phylogenetic analysis of cytochrome P450 from Panonychus citri and Tetranychus urticae. 4clans were observed. There are species (P. citri and T. urticae) in the phylogenetic tree. Only 10 sequences belong to T. urticae; A (Pc) before the CYP name denotes P. citri, a (Tu) before the CYP name denotes T. urticae. Numbers at nodes are bootstrap values.
FIGURES 12–15 in Complementary description of Panonychus caricae Hatzinikolis, 1984, with the resurrection of the genus Sasanychus Ehara, 1978 (Acari, Prostigmata Tetranychidae)
FIGURES 12–15. Panonychus caricae, male—12. Distal segment of palpus, 13. Empodium of leg I, 14. Leg I, left leg, dorsal to adaxial view, 15. Leg II, left leg, dorsal to adaxial view.
FIGURES 8–11 in Complementary description of Panonychus caricae Hatzinikolis, 1984, with the resurrection of the genus Sasanychus Ehara, 1978 (Acari, Prostigmata Tetranychidae)
FIGURES 8–11. Panonychus caricae, female—8. Leg I, left leg, ventral to adaxial view, 9. Leg II, left leg, dorsal to abaxial view, 10. Leg III, right leg, dorsal to abaxial view, 11. Leg IV, left leg, dorsal to adaxial view.
FIGURE 3 in A new species of Panonychus (Acari: Tetranychidae) from Peru
FIGURE 3. Panonychus inca sp. nov. (male). A. Palp; B. Seta dPFe of palp; C. Aedeagus; D. Tarsus and tibia I; E. Tarsus and tibia II.
FIGURE 1 in A new species of Panonychus (Acari: Tetranychidae) from Peru
FIGURE 1. Panonychus inca sp. nov. (female). A. Palp; B. Dorsum of idiosoma; C. Part of the venter of idiosoma; D. Peritreme.
FIGURES 15–22. Panonychus hadzhibejliae, male. 15 in Panonychus from Georgia: survey, taxonomical status and redescription of P. hadzhibejliae (Reck, 1947) (Acari, Tetranychidae)
FIGURES 15–22. Panonychus hadzhibejliae, male. 15, tarsus and tibia I; 16, tarsus and tibia II; 17, empodium I; 18, empodium II; 19, empodia III–IV; 20, palpal tibia and tarsus; 21, peritremal distal end; 22, aedeagi (variations). Scale bars = 20 µm (15–16), 10 µm (17–22).
FIGURES 2–4 in Panonychus from Georgia: survey, taxonomical status and redescription of P. hadzhibejliae (Reck, 1947) (Acari, Tetranychidae)
FIGURES 2–4. Dorsohysterosomal caudal parts in three Panonychus species showing f2 and h1 setae. 2, Panonychus hadzhibejliae; 3, Panonychus ulmi; 4, Panonychus citri. Scale bar = 20 µm (2–4).
FIGURE 1 in Panonychus from Georgia: survey, taxonomical status and redescription of P. hadzhibejliae (Reck, 1947) (Acari, Tetranychidae)
FIGURE 1. Scatter plots of the first two multifactorial axes for 16 morphological characters of Panonychus hadzhibejliae, Panonychus ulmi and Panonychus citri. Percentages in axes refer to the amount of variation accounted for by the first and second axes in the multifactorial analysis.
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