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356 results for “Eriophyidae”
Figure 1 Vittacus bougainvilleae. A in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 1 Vittacus bougainvilleae. A – Prodorsal shield ornamentation; B – Opisthosomal dorsal pattern; C – whole mite between plant trichomes; D – Legs I and II.
Figure 6 in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 6 Brevipalpus californicus from bougainvillea in South Africa. A – ventral view; B –dorsal view; C – spermatheca vesicle.
Figure 2 in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 2 Curled up leaves (A, B) and dying flowers (B) of bougainvillea plants infested with Vittacus bougainvilleae at the nursery farm.
Figure 3 in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 3 Vittacus bougainvilleae collected from South Africa. Dorsal view of prodorsal shield ornamentation and opisthosoma.
Figure 1 in A new species of Notallus (Acari: Eriophyidae) on Lamiaceae from Iran
Figure 1. Schematic drawings of Notallus phlomicosae sp. nov. – AD = Prodorsal shield; ADL = Dorso-lateral view of female anterior body region; CG = Female coxigenital region; em = Empodium; GM = Male genital region; IG = Internal female genitalia; LO = Lateral view of annuli; L1. Leg I; pg = palp genua; PM = Lateral view of posterior
Figure 2 in A new species of Notallus (Acari: Eriophyidae) on Lamiaceae from Iran
Figure 2. Schematic drawings of the prodorsal shield of Notallus species – a. Notallus pterocaryae Kuang & Luo, 2005 (redrawn from Kuang and Luo 2005); b. Notallus nerii Keifer, 1975 (redrawn from Keifer 1975); c. Notallus pestehae Lotfollahi, de Lillo & Haddad, 2014 (from Lotfollahi et al. 2014).
Figure 1 in Biology and life table parameters of Proprioseiopsis lindquisti on three eriophyid mites (Acari: Phytoseiidae: Eriophyidae)
Figure 1. Age-specific survival rate (lx), age-stage specific fecundity of female (fxj) and age-specific fecundity rate (mx) of Propriopseiosis lindquisti on three eriophyid mites.
Figs 16–23 in A new genus and four new species of Eriophyidae from China (Acari: Eriophyoidea)
Figs 16–23. Phyllocoptruta alstonia Wang, Gu & Tan, sp. nov. 16. Coxigenital area, female. 17. Female, dorsal view. 18. Empodium. 19. Male genitalia. 20. Female, lateral view. 21. Leg I. 22. Leg II. 23. Annuli, lateral view.
Figs 1–8 in A new genus and four new species of Eriophyidae from China (Acari: Eriophyoidea)
Figs 1–8. Dicoxiseta litsea Wang, Tan & Yang, sp. nov. 1. Coxigenital area, female. 2. Female, dorsal view. 3. Empodium. 4. Male genitalia. 5. Female, lateral view. 6. Leg I. 7. Leg II. 8. Annuli, lateral view.
Figs 9–15 in A new genus and four new species of Eriophyidae from China (Acari: Eriophyoidea)
Figs 9–15. Eriophyes casearius Wang, Yang & Tan, sp. nov. 9. Female, anterior dorsal view. 10. Female, antero-lateral view. 11. Coxigenital area, female. 12. Empodium. 13. Male genitalia. 14. Female, lateral view. 15. Annuli, lateral view.
Fig. 2 in First report of Phyllocoptes fructiphilus Keifer (Eriophyidae), the vector of the rose rosette virus, in Florida, USA
Fig. 2. Presence of Phyllocoptes fructiphilus in Leon County, Florida, USA, in (A) Feb 2019 and (B) Jul 2019. Orange dots indicate sites sampled that had P. fructiphilus. Gray dots indicate surveyed areas where no P. fructiphilus were found. (C) Average number of P. fructiphilus per rose sample. Samples were taken from sites in Leon County, Florida, on 14 Feb and 16 Jul 2019. Asterisks represent significant differences as calculated by pairwise t-tests of the 5 sites tested for P. fructiphilus during both mo. P-value <0.001.
Fig. 1 in First report of Phyllocoptes fructiphilus Keifer (Eriophyidae), the vector of the rose rosette virus, in Florida, USA
Fig. 1. (A) Symptoms of rose rosette disease: witches' broom, and (B) excessive thorn proliferation; (C) Phyllocoptes fructiphilus Keifer (female) from Leon County, Florida, USA: body (scale bar = 100 µm); (D) enlargement of P. fructiphilus prodorsal shield to show detail (scale bar = 20 µm).
Figure 1 in Distribution and biological features of Typhlodromus (Anthoseius) recki (Acari: Phytoseiidae) onTetranychus urticae, T. evansi (Acari: Tetranychidae) and Aculops lycopersici (Acari: Eriophyidae)
Figure 1 Experimental design used to characterise the dispersal ofT. (A.) recki along tomato stem "in vitro" conditions.
Figure 5 a in Distribution and biological features of Typhlodromus (Anthoseius) recki (Acari: Phytoseiidae) onTetranychus urticae, T. evansi (Acari: Tetranychidae) and Aculops lycopersici (Acari: Eriophyidae)
Figure 5 a – Percentage of females ofT. (A.) recki on the tomato and mint leaf halfdisc through the time; b – percentage of eggs ofT. (A.) recki on the tomato and mint leaf halfdiscs through the time and (c) percentage of eggs + immatures ofT. (A.) recki on the tomato and mint leaf halfdics through
Figure 1 in The First Records Of Three Eriophyid Mite Species (Acari: Eriophyidae) In Latvia
Figure 1. Galls of Aceria artemisiae (A) on leaves of Artemisia vulgaris; Aceria laticincta (B) on Lysimachia vulgaris; Eriophyes prunianus (C) on domestic plum (Prunus domestica). Stenacis triradiatus (D) on Salix caprea. Photo: D. Petrov.
Fig. 2 in Evaluation of abamectin as a potential chemical control for the lychee erinose mite (Acari: Eriophyidae), a new invasive pest in Florida
Fig. 2. Proportion of lychee plants that did not develop erinea on the new flush afer being sprayed with the treatment that was previously applied to the received leaflet. Lychee plants were sprayed with abamectin (red, N = 7), organosilicone surfactant (black, N = 9), combination of abamectin and organosilicone surfactant (grey, N = 8), water (blue, N = 10) or non-sprayed (green, N = 10). Shown are average proportions of lychee plants through time.
Fig. 1 in Evaluation of abamectin as a potential chemical control for the lychee erinose mite (Acari: Eriophyidae), a new invasive pest in Florida
Fig. 1. Proportion of lychee plants that did not develop erinea afer Aceria litchii infested leaflets were placed on them. Leaflets were sprayed with abamectin (red), organosilicone surfactant (black), a combination of abamectin and organosilicone surfactant (grey), water (blue), or non-sprayed (green). Shown are average proportions of lychee plants through time. N = 10 for each treatment.
Fig. 1 in Effects of relative humidity on the vector of rose rosette disease, Phyllocoptes fructiphilus (Eriophyidae), and incidence of disease symptoms
Fig. 1. Mean (± SE) number of Phyllocoptes fructiphilus under various relative humidity regimes (A) by wk and (B) for the duration of the experiment. The same letters within a wk afer infestation or bars are not significantly different (ANOVA followed by Tukey's HSD test; α = 0.05). Where no differences were observed, no letters are included.
Fig. 2 in Effects of relative humidity on the vector of rose rosette disease, Phyllocoptes fructiphilus (Eriophyidae), and incidence of disease symptoms
Fig. 2. Mean (± SE) (A) proportion of rose rosette disease symptomatic terminals and (B) value of the Horsfall-Barratt scale on the severity of rose rosette disease. The same letters within a wk afer infestation are not significantly different (ANOVA followed by Tukey's HSD test; α = 0.05). Where no differences were observed, no letters are included.
Figure 1 in A contribution to the knowledge of the eriophyoid mites (Trombidiformes: Eriophyidae) associated to Lythraceae with description of a new species from Iran
Figure 1. Schematic drawings of Aceria salicariae Lotfollahi & Tajaddod sp. nov. – AD. Prodorsal shield; AL. Lateral view of anterior body region; CG. Female coxigenital region; em. Empodium; GM. Male genital region; IG. Internal female genitalia; LO. Lateral view of annuli; L1. Leg I; PM. Lateral view of posterior opisthosoma. Scale bar: 10 µm for AD, AL, CG, GM, IG, PM; 5 µm for LO, L1; 2.5 µm for em.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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