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509 results for “eriophyoid mites”
Figures 17–21 in Three new species of eriophyoid mites from Maixiu National Forest Park, Qinghai Province, China (Acari: Eriophyoidea)
Figures 17–21. Diptacus acutifolius sp. nov., female. 17. Lateral mite. 18. Dorsal mite. 19. Lateral opisthosoma (enlarged). 20. Empodium (enlarged). 21. Coxal-genital region. Scale bars: 17–18, 21 = 20 μm.
Figures 9–16 in Three new species of eriophyoid mites from Maixiu National Forest Park, Qinghai Province, China (Acari: Eriophyoidea)
Figures 9–16. Aculops brevifolis sp. nov., female. 9. Antero-dorsal mite. 10. Coxal-genital region (Note: the coverflap of female flipped up). 11. Antero-lateral view. 12. Empodium (enlarged). 13. Lateral opisthosoma (enlarged). 14. Postero-dorsal mite. 15. Genital region of male. 16. Leg I (enlarged). Scale bars: 9–11, 15–16 = 10 μm.
Figures 1–8 in Three new species of eriophyoid mites from Maixiu National Forest Park, Qinghai Province, China (Acari: Eriophyoidea)
Figures 1–8. Phyllocoptes angustais sp. nov., female. 1. Antero-dorsal mite. 2. Coxal-genital region (the coverflap of female flipped up). 3. Empodium (enlarged). 4. Antero-lateral view. 5. Lateral opisthosoma (enlarged). 6. Postero-lateral mite. 7. Leg I (enlarged). 8. Genital region of male. Scale bars: 1–2, 4, 7–8 = 10 μm.
Figure 1 in Eriophyoid (Trombidiformes: Eriophyoidea) mite species associated with boxes worldwide with a new record of Eriophyes canestrinii (Nalepa, 1890) from Iran
Figure 1. Schematic drawings of Eriophyes canestrinii (Nalepa, 1890) – AD. Prodorsal shield; AL. Lateral view of anterior body region; CG. Female coxigenital region; em. Empodium; GM. Genital region, Male; IG. Internal female genitalia; LO. Lateral view of annuli; L1. Leg I; PM. Lateral view of posterior opisthosoma. Scale bar: 10
Figure 4 in Three new records of eriophyoid mites (Acari: Eriophyoidea) from Iran
Figure 4. Galls induced by Eriophyes tiliae Nalepa, 1890 on the upper leaf surface of a lime tree in Ali Abad Katool, 03 July 2013 (photo by Ali Gol).
Figure 3. A in Three new records of eriophyoid mites (Acari: Eriophyoidea) from Iran
Figure 3. A sampling site in the Ali Abad Katool vicinity in Golestan Province of Iran in July 2013.
Figure 6 in Three new records of eriophyoid mites (Acari: Eriophyoidea) from Iran
Figure 6. Digital micrographs of Leipothrix liroi (Roiv., 1947) n. comb. Jočić & Petanović (2012): A) Dorsal view; B) coxigenital region (epigynum visible); C) legs; D) ventral view of female posterior region. Scale bar: 50 μm for A; 25 μm for B and D; 10 μm for C.
Figure 5 in Three new records of eriophyoid mites (Acari: Eriophyoidea) from Iran
Figure 5. Digital micrographs of Aceria tuberculatus (Nalepa 1891): A) Prodorsal shield; B) coxigenital region (epigynum visible); C) empodium; D) male genitalia. Scale bar: 50 μm for A; 25 μm for B, C, and D.
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.
Figure 2 in Eriophyoid mites (Acari: Prostigmata) on common pear (Pyrus communis L.): species diversity and varietal attractiveness in the Fomin Botanical Garden (Kyiv, Ukraine)
Figure 2. Pear leaves damaged by the second and third generations of Eriophyes pyri (Academician Fomin Botanical Garden, 2020).
Figure 1 in Eriophyoid mites (Acari: Prostigmata) on common pear (Pyrus communis L.): species diversity and varietal attractiveness in the Fomin Botanical Garden (Kyiv, Ukraine)
Figure 1. Young pear leaves damaged by the first generation of Eriophyes pyri (Academician Fomin Botanical Garden,
Figure 3 in Eriophyoid (Trombidiformes: Eriophyoidea) mite species associated with boxes worldwide with a new record of Eriophyes canestrinii (Nalepa, 1890) from Iran
Figure 3. Deformation on Buxus sempervirens hyrcana bud caused by Eriophyes canestrinii.
Figure 2 in Eriophyoid (Trombidiformes: Eriophyoidea) mite species associated with boxes worldwide with a new record of Eriophyes canestrinii (Nalepa, 1890) from Iran
Figure 2. High population of Eriophyes canestrinii collected on Buxus sempervirens hyrcana (×100).
Global patterns and drivers of herbivorous eriophyoid mite species diversity
<p><span><span><strong>Aim</strong>:</span> Environmental drivers and host richness play key roles in affecting herbivore diversity. However, the relative effects of these factors and their effects on lineages characterized by high host specificity are not well known. In this study, we explored the extent to which contemporary climate, Quaternary climate change, habitat heterogeneity, and host plants determine the species richness and endemism patterns of herbivorous eriophyoid mites.</span></p> <p><span><strong>Location</strong>: </span><span>Global.</span></p> <p><span><strong>Taxon</strong>: </span><span>Eriophyoid mites (Acari: Eriophyoidea).</span></p> <p><span><strong>Methods</strong>: </span><span>We compiled a dataset comprising 4,278 eriophyoid mite species from 22,973 occurrence sites based on a comprehensive search of the published literature and the </span><span>Global Biodiversity Information Facility (GBIF) as a basis for predicting their global distribution patterns</span><span>. We measured the association of environmental variables and host plant richness with species richness and endemism of eriophyoid mites through multiple regression analyses using a simultaneous autoregressive (SAR) model, an ordinary least squares (OLS) model, and a random forest model. We examined the direct and indirect effects of these environmental variables and the host plant richness on eriophyoid mite diversity using structural equation models (SEMs).</span></p> <p><span><strong>Results</strong>: </span><span>The species richness and </span><span>endemism patterns of eriophyoid mites are concentrated in temperate regions. Contemporary climate, Quaternary climate change, habitat heterogeneity, and host plants all significantly affected eriophyoid mite richness, while Quaternary climate change, habitat heterogeneity, and host plants contributed to the eriophyoid mite endemism. Abiotic factors indirectly influenced the species richness and endemism of eriophyoid mites, via biotic factors—host plants.</span></p> <p><span><strong>Main conclusions:</strong> </span><span>The </span><span>species richness and endemism of eriophyoid mites peak in temperate regions, opposite to the patterns of plants and some other organisms. Complex interactions among biotic and abiotic factors shape the current eriophyoid mite species diversity.</span></p>
Figure 2 in Three new records of eriophyoid mites (Acari: Eriophyoidea) from Iran
Figure 2. Map of Iran, showing Golestan Province and the collection site.
Figure 1 in Three new records of eriophyoid mites (Acari: Eriophyoidea) from Iran
Figure 1. Map of Golestan Province. Ali Abad Katool.
FIGURE 4 in Rediscovery and redescription of two eriophyid mites (Acari, Prostigmata, Eriophyidae) from Baccharis salicifolia (Asteraceae), from Argentina with remarks on the eriophyoid coverflap base
FIGURE 4: Shevtchenkella baccharis Keifer – AV anterior ventral aspect of female. D dorsum of female. E empodium. GM male genitalia. IGF internal genital structures of female. L1 leg I. L2 leg II.
FIGURE 2 in Rediscovery and redescription of two eriophyid mites (Acari, Prostigmata, Eriophyidae) from Baccharis salicifolia (Asteraceae), from Argentina with remarks on the eriophyoid coverflap base
FIGURE 2: Aceria cortii Amrine & Stasny, 1994 – Female. Differential contrast image of dorsal, top, and ventral, bottom.
FIGURE 1 in Rediscovery and redescription of two eriophyid mites (Acari, Prostigmata, Eriophyidae) from Baccharis salicifolia (Asteraceae), from Argentina with remarks on the eriophyoid coverflap base
FIGURE 1: Aceria cortii Amrine & Stasny, 1994 – Female. AV, anterior ventral aspect; DA, dorsal anterior aspect; DC, dorsal caudal aspect; E, empodium; IGF, internal genital structures of female; L1, leg I; L2, leg II.
FIGURE 5 in Rediscovery and redescription of two eriophyid mites (Acari, Prostigmata, Eriophyidae) from Baccharis salicifolia (Asteraceae), from Argentina with remarks on the eriophyoid coverflap base
FIGURE 5: CLSM images of female of Shevtchenkella baccharis (A,B – autofluorescence; C – transmitted light). A – dorsal view, B – ventral view, C – coxigenital area. Scalebar: A, B=70 µm, C=10 µm.
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