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45 results for “Oestridae”
Fig. 1 in Discovery and successful development of Cuterebra americana (Diptera: Oestridae) from an atypical host, Rattus rattus (Rodentia: Muridae), in Florida, U.S.A.
Fig. 1. Puparium of Cuterebra americana (Fabricius), A) puparium in profile, 24 × 13 × 12 mm l × w × h; B) extruded, yellow, elliptical anterior spiracles with subtri- angular operculum on the tergum of segments 1 to 3; C) spines on surface of puparium; and D) magnified plate-like, multi-pointed spines. This figure is displayed in color in the online version of this article.
Fig. 2 in Warble infestations by Hypoderma tarandi (Diptera; Oestridae) recorded for the first time in West Greenland muskoxen
Fig. 2. Neighbour-Joining dendrogram showing the genetic relationship between Hypoderma spp. based on 579 bp of the Cox-1 gene using Kimura-2-parameter distance with Dermatobia hominis included as an out group. Warbles H84 and H194 are obtained from two muskoxen on Greenland whereas the other sequences were obtained from GenBank with accession number given after each species. Bootstrap values are indicated at the nodes (1000 replicates). Scale bar: number of base substitutions per site.
Fig. 2 in Typical intracranial myiasis in Nigerian red river hogs (Potamochoerus porcus) caused by an unknown bot fly (Diptera: Oestridae)
Fig. 2. Image of the third instar larva of the oestrid bot fly pictured in Fig. 1 from the intracranial supra-meningeal space of the Nigerian red river hog. A) dorsal; B) ventral. Scale bars = 1 mm. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Typical intracranial myiasis in Nigerian red river hogs (Potamochoerus porcus) caused by an unknown bot fly (Diptera: Oestridae)
Fig. 3. Images of a third instar larva of the oestrid bot fly pictured in Figs. 1–2 from the intracranial supra-meningeal space of the Nigerian red river hog. A) left lateral habitus; B) left caudo-lateral view; C) left caudal spiracular plate. Dorsal spinule bands (dsb), latero-ventral spinule bands (lsb), ventral spinule bands (vsb), caudal spiracular plate (spl), peritreme (ptr), spiracular papillae (sp), ecdysial scar (es). Scale bars = 1 mm (A, B); 0.1 mm (C). (For interpretation of the references to colour in this figure
Fig. 1. A in Typical intracranial myiasis in Nigerian red river hogs (Potamochoerus porcus) caused by an unknown bot fly (Diptera: Oestridae)
Fig. 1. A) hunter in Cross River National Park splitting the head of a recently killed red river hog with a machete. B) bot fly larvae (arrows) visible in the frontal sinus (s) and the intracranial supra-meningeal space (i) next to the brain (B) of the red river hog. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Warble infestations by Hypoderma tarandi (Diptera; Oestridae) recorded for the first time in West Greenland muskoxen
Fig. 1. The location of the muskox population studied in Kangerlussuaq, Greenland (circle).
FIGURE 5. Potential corbiculate bee models for Cuterebra yanayacui mimicry. A–B in A new bot fly species of Cuterebra (Diptera: Oestridae) from Ecuador
FIGURE 5. Potential corbiculate bee models for Cuterebra yanayacui mimicry. A–B. Eufrisea magrettii (ECUADOR; BMEC); C–D. Eulaema mocsaryi (BRAZIL; BMEC); E–F. Bombus ecuadorius (ECUADOR; BMEC); A, C, E. Dorsal view, B, D, F. Lateral view. Scale bars: 1 cm.
FIGURE 4. Male terminalia. A–B in A new bot fly species of Cuterebra (Diptera: Oestridae) from Ecuador
FIGURE 4. Male terminalia. A–B. Cuterebra yanayacui, sp. nov., paratype (ECUADOR; INHS): A. Ventral view, B. Lateral view; C–D. Cuterebra ornata (PANAMA; MCZ); C. Ventral view, D. Lateral view; Scale bars: 0.5 mm; Abbreviations: cerccercus; distph- distiphallus; epand- epandrium; hypd- hypandrium; ph- phallus; phapod- phallapodeme; sur- surstylus.
FIGURE 3 in A new bot fly species of Cuterebra (Diptera: Oestridae) from Ecuador
FIGURE 3. Montemyia bureni Dalmat, holotype ♁ (COSTA RICA; ANSP). A. Dorsal view (inset data labels), B. Lateral view; ruled scale: 1 mm (photos: J. Weintraub).
FIGURE 1 in A new bot fly species of Cuterebra (Diptera: Oestridae) from Ecuador
FIGURE 1. Cuterebra yanayacui, sp. nov., holotype ♁ (ECUADOR; INABIO). A–B. Habitus (scale bar: 2 mm): A. Lateral view, B. Dorsal view; C. Head, frontal aspect (scale bar: 1 mm); D. Data labels.
FIGURE 2 in A new bot fly species of Cuterebra (Diptera: Oestridae) from Ecuador
FIGURE 2. Cuterebra yanayacui, sp. nov., paratype ♁ (ECUADOR; INHS). A–B. Habitus: A. Lateral view (scale bar: 5 mm), B. Live image, perched on a fern frond (photo: J. Whitfield).
Figure 4. Gyrostigma rhinocerontis, first instar larva. A in Three-dimensional characterization of first instar horse and rhinoceros stomach bot fly larvae (Oestridae: Gasterophilinae: Gasterophilus, Gyrostigma): novel morphology and evolutionary implications
Figure 4. Gyrostigma rhinocerontis, first instar larva. A, habitus, ventral view. B, pseudocephalon and thoracic segments, ventral view. C, magnification of pseudocephalon and thoracic segments in ventral view, with depth coding. D, anal division, ventral view. E, pseudocephalon and thoracic segments, right lateral view. Scale bars: A, D = 100 µm; B–C, E = 50 µm. Abbreviations: aI–aVII, abdominal segments I–VII; adI–adIII, subdivisions I, II and III of anal division; is, intermediate sclerite; lb, labrum; mh, mouthhook; pb, parastomal bar; pc, pseudocephalon; tI–tIII, thoracic segments I–III.
Figure 3 in Three-dimensional characterization of first instar horse and rhinoceros stomach bot fly larvae (Oestridae: Gasterophilinae: Gasterophilus, Gyrostigma): novel morphology and evolutionary implications
Figure 3. Gasterophilus pecorum, first instar larva, ultrastructural details on thoracic (A–F) and abdominal (G) segments and anal division (H–M). A, anterior end, dorsal view. B, trichoid sensillum I and II, and a pit. C, a trichoid sensillum I and a pit. D, Keilin's organ. E, a trichoid sensillum I and Keilin's organ. F, body spines on third thoracic segment. G, body spines on first abdominal segment. H, arrangement of coeloconic and trichoid sensilla on dorsal (top) and ventral (bottom) surface of anal subdivision II. I, a coeloconic sensillum IV on anal subdivision II. J, a trichoid sensillum I and a coeloconic sensillum IV on anal sudivision II. K, posterior spiracles, posterior view. L, left posterior spiracle. M, serrated margins of a posterior spiracular slit, with the the pores shown in the box. Scale bars: A = 20 µm; B, D, J = 2.5 µm; C, M = 2 µm, 0.5 µm in the box; E, L = 5 µm; F–G = 25 µm; H = 15 µm; I–J = 1.5 µm; K = 30 µm. Abbreviations: adII, subdivision II of anal division; Ko, Keilin's organ; scIV, sensillum coeloconica IV; p, pit; TrI–II, trichoid sensillum I–II.
Figure 1. Gasterophilus pecorum, first instar larva. A in Three-dimensional characterization of first instar horse and rhinoceros stomach bot fly larvae (Oestridae: Gasterophilinae: Gasterophilus, Gyrostigma): novel morphology and evolutionary implications
Figure 1. Gasterophilus pecorum, first instar larva. A, habitus, ventral view. B, pseudocephalon and thoracic segments, dorsal view. C, E, pseudocephalon and thoracic segments, ventral view, with cephaloskeleton emphasized in E. D, F, pseudocephalon and thoracic segments, right lateral view, with depth coding; mouthhooks and labrum exposed in F. G, anal division, dorsal view. Scale bars: A = 100 µm; B–G = 50 µm. Abbreviations: aI–aVII, abdominal segments I–VII; adI– adIII, subdivisions I, II and III of anal division; dc, dorsal cornua; is, intermediate sclerite; lb, labrum; mh, mouthhook; pb, parastomal bar; pc, pseudocephalon; tI–tIII, thoracic segments I–III.
Figure 5 in Three-dimensional characterization of first instar horse and rhinoceros stomach bot fly larvae (Oestridae: Gasterophilinae: Gasterophilus, Gyrostigma): novel morphology and evolutionary implications
Figure 5. Gyrostigma rhinocerontis, first instar larva, ultrastructural details. A, habitus, ventral view. B, anterior end, ventral view. C, pseudocephalon, ventral view. D, pseudocephalon, anterior view. E, antennomaxillary sensory complex. F, mouthhooks, labrum and arrangement of the denticles. G, three thoracic segments, ventral view, showing arrangement of Keilin's organs and trichoid sensilla I. H, abdominal segments, ventral view. Scale bars: A = 0.3 mm; B = 68 µm; C, G–H = 20 µm; D = 19 µm; E–F = 10 µm. Abbreviations: aI–aVII, abdominal segments I–VII; adI–adIII, subdivisions I, II and III of anal division; and, antennal dome; ap, additional pit; asI–III, additional sensillum coeloconicum I–III; den, denticles; Ko, Keilin's organ; mp, maxillary palp; pc, pseudocephalon; sbI–II, sensilla basiconica I–II; scI–IV, sensilla coeloconica I–IV; tI–tIII, thoracic segments I–III; TrI, trichoid sensillum I.
Figure 7 in Three-dimensional characterization of first instar horse and rhinoceros stomach bot fly larvae (Oestridae: Gasterophilinae: Gasterophilus, Gyrostigma): novel morphology and evolutionary implications
Figure 7. Ancestral state reconstruction of the shape of first instar mouthhooks in Oestridae based on parsimony. Cladogram used for reconstruction follows Pape (2001, 2006).
Figure 6 in Three-dimensional characterization of first instar horse and rhinoceros stomach bot fly larvae (Oestridae: Gasterophilinae: Gasterophilus, Gyrostigma): novel morphology and evolutionary implications
Figure 6. Gyrostigma rhinocerontis, first instar larva, ultrastructural details of thoracic segments (A–C) and anal division (D–H). A, a trichoid sensillum I. B, a pair of Keilin's organs. C, a trichoid sensillum I and a Keilin's organ. D, posterior spiracles, dorsolateral view. E, coeloconic sensilla IV and a trichoid sensillum I on ventral side of anal subdivision II. F, posterior spiracles, ventral view. G, posterior spiracles, dorsal view. H, a coeloconic sensillum IV and a trichoid sensillum I. I, a coeloconic sensillum IV. Scale bars: A = 2 µm; B–C = 10 µm; D, G = 75 µm; E–F = 10 µm; H = 2.5 µm; I = 1 µm. Abbreviations: adI–adII, subdivisions I and II of anal division; Ko, Keilin's organ; scIV, sensilla coeloconica IV; TrI, trichoid sensillum I.
Figure 1 in Bot flies (Insecta: Oestridae, part) and Glossinidae-Hippoboscidae derive from basal Ephydroidea, not Calyptratae
Figure 1. Male postabdomen, as viewed from the left, of a hypothetical basal ephydroid (see text for sources of information).
Figure 2 from: El-Hawagry MSA, Abdel-Dayem MS, Al Dhafer HM (2020) The family Oestridae in Egypt and Saudi Arabia (Diptera, Oestroidea). ZooKeys 947: 113-142. https://doi.org/10.3897/zookeys.947.52317
Figure 2 aGasterophilus intestinalis (habitus, dorsal) bG. nasalis (habitus, dorsal) cG. nigricornis (habitus, dorsal) dCephalopina titillator (habitus, lateral).
Fig. 2 in Discovery and successful development of Cuterebra americana (Diptera: Oestridae) from an atypical host, Rattus rattus (Rodentia: Muridae), in Florida, U.S.A.
Fig. 2. Adult female Cuterebra americana (Fabricius) (25 mm long) and emerged adult alongside puparium and operculum. This figure is displayed in color in the online version of this article.
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