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2,196 results for “water mite”
FIGURES 49–52 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURES 49–52. Hygrobates pilosus sp. nov., paratype female, Fig. 49. ventral view of idiosoma (integument between coxal field and genital field broken, therefore glandularia and setae normally surrounding genital field lost), Fig. 50. left chelicera in medial view, Fig. 51. right chelicera in lateral view, Fig. 52. left palp in lateral view (most setae missing due to poor condition of specimen), scale bar = 100 μm.
FIGURE 39 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURE 39. Hygrobates pilosus sp. nov., holotype male, ventral view of idiosoma; scale bar = 100 μm.
FIGURES 40–48 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURES 40–48. Hygrobates pilosus sp. nov., holotype male, Fig. 40. genital skeleton in anterior view, Fig. 41. I-leg, left, Fig. 42. II-leg, left, Fig. 43. III-leg, left, Fig. 44. IV-leg, left, Fig. 45. right chelicera in lateral view, Fig. 46. left chelicera in medial view, Fig. 47. left palp in medial view, Fig. 48. right palp in lateral view; scale bar = 100 μm.
FIGURES 31–38 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURES 31–38. Hygrobates robustipalpis sp. nov., paratype female, Fig. 31. I-leg, left, Fig. 32. II-leg, left, Fig. 33. III-leg, left, Fig. 34. IV-leg, left, Fig. 35. left chelicera in medial view, Fig. 36. right chelicera in lateral view, Fig. 37. right palp in medial view, Fig. 38. left palp in lateral view; scale bar = 100 μm.
FIGURE 30 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURE 30. Hygrobates robustipalpis sp. nov., paratype female, ventral view of idiosoma; scale bar = 100 μm.
FIGURES 22–29 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURES 22–29. Hygrobates robustipalpis sp. nov., holotype male, Fig. 22. I-leg, right, Fig. 23. II-leg, right, Fig. 24. III-leg, right, Fig. 25. IV-leg, right, Fig. 26. left chelicera in lateral view, Fig. 27. right chelicera in medial view, Fig. 28. left palp in medial view, Fig. 29. right palp in lateral view; scale bar = 100 μm.
FIGURES 12–19 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURES 12–19. Hygrobates intermedius sp. nov., paratype female, Fig. 12. I-leg, right, Fig. 13. II-leg, right, Fig. 14. III-leg, right, Fig. 15. IV-leg, right, Fig. 16. left chelicera in lateral view, Fig. 17. right chelicera in medial view, Fig. 18. left palp in lateral view, Fig. 19. right palp in medial view; scale bar = 100 μm.
FIGURE 11 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURE 11 Hygrobates intermedius sp. nov., paratype female, ventral view of idiosoma; scale bar = 100 μm.
FIGURES 20–21 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURES 20–21. Hygrobates robustipalpis sp. nov., holotype male, Fig. 20. ventral view of idiosoma, Fig. 21. genital skeleton in anterior view; scale bar = 100 μm.
FIGURES 3–10 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURES 3–10. Hygrobates intermedius sp. nov., holotype male, Fig. 3. I-leg, left, Fig. 4. II-leg, left, Fig. 5. III-leg, left, Fig. 6. IV-leg, left, Fig. 7. left chelicera in medial view, Fig. 8. right chelicera in lateral view, Fig. 9. left palp in medial view, Fig. 10. right palp in lateral view; scale bar = 100 μm.
FIGURES 1–2 in Description of three new water mite species of Hygrobates Koch, 1837 (Lurchibates Goldschmidt & Fu, 2011) (Acari, Hydrachnidia, Hygrobatidae), parasitic in newts of the genera Paramesotriton and Pachytriton (Amphibia, Caudata, Salamandridae) from China
FIGURES 1–2. Hygrobates intermedius sp. nov., holotype male, Fig. 1. ventral view of idiosoma, Fig. 2. genital skeleton in anterior view; scale bar = 100 μm.
FIGURE 1 in Taxonomic amendments of Southeast Asian newt species of the genera Pachytriton, Paramesotriton and Laotriton (Amphibia, Urodela, Salamandridae) parasitized by water mites of the subgenus Lurchibates (Hydrachnidia, Hygrobatidae, Hygrobates)
FIGURE 1. Dorsal (A and B) and ventral (C and D) views of host newts from which the type specimens of Hygrobates salamandrarum were collected. Figure A and C show the mature male. Photos were provided by Arne Lindau. Scale shows 10mm.
FIGURES 1–8 in Description of a new water mite of the genus Arrenurus (Acari, Hydrachnidia: Arrenuridae) from Chukotka
FIGURES 1–8. Arrenurus chukotkaensis sp. n., larva: 1, dorsal plate; 2, 9, idiosoma ventral view; 3–5, excretory pore plate; 6, cheli- cera, dorsal view; 7—chela, lateral view; 8, pedipalp. Scale bar: 1, 2, 3–5, 6 = 50 μm, 7, 8 = 20 μm.
FIGURES 1–2 in Description of a new water mite of the genus Utaxatax (Acari, Hydrachnidia: Anisitsiellidae) from Kazakhstan
FIGURES 1–2.Utaxatax (Utaxatax) stolbovi sp.n., female: 1, dorsal view; 2, ventral view. Scale bar: 100 μm.
FIGURES 8–11 in Description of a new water mite of the genus Utaxatax (Acari, Hydrachnidia: Anisitsiellidae) from Kazakhstan
FIGURES 8–11. Utaxatax (Utaxatax) stolbovi sp.n., male: 8, leg I; 9, leg II; 10, leg. III; 11, leg IV; 12, claw of leg I; 13, claw of leg III. Scale bars: 8–11, 12–13 = 50 μm.
FIGURES 14–16 in Description of a new water mite of the genus Utaxatax (Acari, Hydrachnidia: Anisitsiellidae) from Kazakhstan
FIGURES 14–16.Utaxatax (Utaxatax) brahmeri., female: 14, dorsal view; 15, pedipalp; 16, IV-Leg-1-6 (after Panesar 2004). Scale bars: 100 μm.
FIGURES 3–7 in Description of a new water mite of the genus Utaxatax (Acari, Hydrachnidia: Anisitsiellidae) from Kazakhstan
FIGURES 3–7. Utaxatax (Utaxatax) stolbovi sp.n, adult: 3,anterior frontal platelet; 4, capitulum, lateral view; 5, chelicera; 6, pedipalp; 7, male; 3–6, female; 7, male.Scale bars: 3–6 = 50 μm, 7 = 100 μm.
Data from: Combinations of plant water-stress and neonicotinoids can lead to secondary outbreaks of Banks grass mite (Oligonychus pratensis Banks)
Spider mites, a cosmopolitan pest of agricultural and landscape plants, thrive under hot and dry conditions, which could become more frequent and extreme due to climate change. Recent work has shown that neonicotinoids, a widely used class of systemic insecticides that have come under scrutiny for non-target effects, can elevate spider mite populations. Both water-stress and neonicotinoids independently alter plant resistance against herbivores. Yet, the interaction between these two factors on spider mites is unclear, particularly for Banks grass mite (Oligonychus pratensis; BGM). We conducted a field study to examine the effects of water-stress (optimal irrigation = 100% estimated evapotranspiration (ET) replacement, water stress = 25% of the water provided to optimally irrigated plants) and neonicotinoid seed treatments (control, clothianidin, thiamethoxam) on resident mite populations in corn (Zea mays, hybrid KSC7112). Our field study was followed by a manipulative field cage study and a parallel greenhouse study, where we tested the effects of water-stress and neonicotinoids on BGM and plant responses. We found that water-stress and clothianidin consistently increased BGM densities, while thiamethoxam-treated plants only had this effect when plants were mature. Water-stress and BGM herbivory had a greater effect on plant defenses than neonicotinoids alone, and the combination of BGM herbivory with the two abiotic factors increased the concentration of total soluble proteins. These results suggest that spider mite outbreaks by combinations of changes in plant defenses and protein concentration are triggered by water-stress and neonicotinoids, but the severity of the infestations varies depending on the insecticide active ingredient.
FIGURES 1516. Limnesia rotoruaensis n in Two new water mite species from New Zealand (Acari: Hydrachnidia)
FIGURES 1516. Limnesia rotoruaensis n. sp., 15, paratype female, ventral view; 16, paratype female, genital field
FIGURES 1112. Limnesia rotoruaensis n in Two new water mite species from New Zealand (Acari: Hydrachnidia)
FIGURES 1112. Limnesia rotoruaensis n. sp., holotype male, dorsal platelet with accompanying glandularia; 12, holotype male, palp.
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