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403 results for “wasp parasite”
Figure 4 in The natural history of the parasitic wasp Trogus pennator (Hymenoptera: Ichneumonidae): Host-finding behaviour and a possible host countermeasure
Figure 4. The average height of plants searched by Trogus pennator (n557 wasps, range58–145 cm) and selected for oviposition by Eurytides marcellus (n541 butterflies, range52–95 cm) was compared in spring 1997. The wasps searched plants significantly taller than those preferred by the female butterflies (P,0.0001, two-tailed t test).
Figure 1. A in The natural history of the parasitic wasp Trogus pennator (Hymenoptera: Ichneumonidae): Host-finding behaviour and a possible host countermeasure
Figure 1. A vegetation survey was conducted in spring 1997 to establish the frequency of Asimina among the broad-leaved plants in the understorey. The mean percentage Asimina was determined at 7.5% by counting stems in 5 m×5 m plots. Plants counted as ''other'' most commonly included Quercus incana, Q. laevis, Vitis rotundifolia Micheaux, V. aestivalis Micheaux, Mimosa, sp., Smilax spp., and several unidentified Compositae. In contrast, 93.3% of plants visited by the wasps were Asimina (P,0.001, chi-square test).
Figures 11–16 in The parasitic wasp genera Skiapus, Hellwigia, Nonnus, Chriodes, and Klutiana (Hymenoptera, Ichneumonidae): Recognition of the Nesomesochorinae stat. rev. and Nonninae stat. nov. and transfer of Skiapus and Hellwigia to the Ophioninae
Figures 11–16. Scanning electron micrographs showing features of Skiapus sp. (Ophioninae). (11) Front of head showing emarginate eyes and twisted mandibles. (12) Back of head showing medially strongly excavated occiput and deflected occipital carina. (13) Metanotum and propodeum showing two complete transverse carinae located close to anterior margin. (14) Tibia of mid-leg, oblique angle, showing strong spines. (15) Hind coxa showing tooth near base. (16) Claw showing pectination.
Figure 4 in The parasitic wasp genera Skiapus, Hellwigia, Nonnus, Chriodes, and Klutiana (Hymenoptera, Ichneumonidae): Recognition of the Nesomesochorinae stat. rev. and Nonninae stat. nov. and transfer of Skiapus and Hellwigia to the Ophioninae
Figure 4. Partial alignments (arrangements) of four parts of the 28S D2 rDNA gene for representatives of the Campopleginae, Cremastinae, Ctenopelmatinae, and Ophioninae (aligned by eye) showing molecular synapomorphies for Campopleginae (1 and 2) and Ophioninae (3 and 4). Fragment 1 corresponds to bases 11– 24, fragment 2 to bases 47–62, fragment 3 to bases 203–225 (in box) and fragment 4 to bases 236 (in box) to 244 in the alignment shown in Belshaw et al. (1998, Figure 1).
Figure 1 in The parasitic wasp genera Skiapus, Hellwigia, Nonnus, Chriodes, and Klutiana (Hymenoptera, Ichneumonidae): Recognition of the Nesomesochorinae stat. rev. and Nonninae stat. nov. and transfer of Skiapus and Hellwigia to the Ophioninae
Figure 1. Strict consensus of: (a) MPTs with all characters unordered; (b) MPTs when selected characters treated as ordered; (c) after successive approximations weighting with selected characters treated as ordered.
Figure 3 in The parasitic wasp genera Skiapus, Hellwigia, Nonnus, Chriodes, and Klutiana (Hymenoptera, Ichneumonidae): Recognition of the Nesomesochorinae stat. rev. and Nonninae stat. nov. and transfer of Skiapus and Hellwigia to the Ophioninae
Figure 3. Strict consensus of trees obtained from simultaneous optimization alignment analyses of morphological and molecular data with gap:substitution ratio set at (a) 2:1, (b) 3:1, and (c) 4:1.
Figure 2 in The parasitic wasp genera Skiapus, Hellwigia, Nonnus, Chriodes, and Klutiana (Hymenoptera, Ichneumonidae): Recognition of the Nesomesochorinae stat. rev. and Nonninae stat. nov. and transfer of Skiapus and Hellwigia to the Ophioninae
Figure 2. Strict consensus of trees obtained from optimization alignment analysis of molecular data with gap:substitution ratio set at (a) 2:1, (b) 3:1, and (c) 4:1.
Figures 5–10 in The parasitic wasp genera Skiapus, Hellwigia, Nonnus, Chriodes, and Klutiana (Hymenoptera, Ichneumonidae): Recognition of the Nesomesochorinae stat. rev. and Nonninae stat. nov. and transfer of Skiapus and Hellwigia to the Ophioninae
Figures 5–10. Scanning electron micrographs showing features of Campopleginae sensu stricto and Nesomesochorinae stat. rev. (5) Echthronomas sp. (Campopleginae) hind tibia and basitarsus inner aspect showing unmodified tibial comb. (6–7, 9–10) Chriodes sp.: (6) hind tibia and basitarsus inner aspect showing modified tibial comb with medially reduced setae; (7) face; (9) claw showing pecten; (10) propodeum showing areolation. (8) Klutiana sp., face.
Figures 53–63 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figures 53–63. Apex of metasoma and male genital capsule, lateral; 53, T. maculipennis; 54, T. erythrocera; 55, T. whitfieldi; 56, T. laticinctus; 57, T. zitaniae; 58, T. papei; 59, T. morosus; 60, T. schauffi; 61, T. darlingi; 62, T. rufothorax; 63, T. atriventris.
Figures 47–52. 47–50 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figures 47–52. 47–50, mesoscutum and pronotum, lateral; 47, T. papei; 48, T. deansi; 49, T. erythrocera; 50, T. sharkeyi. 51–52, apex of metasoma and male genital capsule, lateral; 51. Rhynchophion flammipennis; 52, R. woodi.
Figures 39–46. Thyreodon species. 39–40 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figures 39–46. Thyreodon species. 39–40, head, postero-lateral; 39, T. erythrocera; 40, T. sharkeyi. 41–44, head, dorsal; 41, T. rivinae; 42, T. maculipennis; 43, T. atriventris; 44. T. woodleyi. 45–46, mesoscutum and pronotum, lateral; 45, T. walkerae; 46, T. woodleyi.
Figures 33–38 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figures 33–38. SEM photographs of Thyreodon spp. 33–36, propodeum, dorsal; 33, T. santarosae; 34, T. atriventris; 35, T. rivinae; 36, T. darlingi. 37–38, mesoscutum dorsal; 37, T. darlingi; 38, T. walkerae.
Figures 27–32 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figures 27–32. SEM photographs of propodeum lateral. 27, Thyreodon darlingi; 28, T. morosus; 29, T. walkerae; 30, T. zitaniae; 31, T. rivinae; 32, Rhynchophion flammipennis.
Figures 7–14. Fore wings, showing colour patterns. 7 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figures 7–14. Fore wings, showing colour patterns. 7, Rhynchophion flammipennis, normal form. 8, Rhynchophion flammipennis, dark form. 9, Thyreodon rufothorax. 10, T. atriventris. 11. T. maculipennis. 12. T. walkerae. 13. T. zitaniae. 14. T. papei.
Figure 65 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figure 65. The total numbers of individuals of Thyreodon rivinae collected at light by month between 1985 and 1992 in Sector Santa Rosa of the ACG compared with the monthly percentage of the annual rainfall.
Figure 2 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figure 2. Whole insect, lateral. Thyreodon cyaneus. Illustration reproduced with the kind permission of the American Entomological Institute.
Figures 21–26 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figures 21–26. SEM photographs of Thyreodon spp., pronotum, lateral; 21, T. whitfieldi; 22, T. laticinctus; 23, T. darlingi; 24, T. rivinae; 25, T. morosus; 26, T. walkerae.
Figure 1 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figure 1. Whole insect, lateral. Rhynchophion flammipennis. Illustration reproduced with the kind permission of the American Entomological Institute.
Figures 3–6 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figures 3–6. Thyreodon species, whole insects, lateral, showing major colour patterns found in the genus. 3. T. atriventris. 4. T. laticinctus. 5. T. walkerae. 6. T. schauffi. Scale bar = 5 cm.
Figure 64 in The systematics and biology of the Costa Rican species of parasitic wasps in the Thyreodon genus-group (Hymenoptera: Ichneumonidae)
Figure 64. The total numbers of individuals of Rhynchophion flammipennis collected by month in Malaise traps in the Bosque Humedo, Bosque San Emilio and Administration Area of Sector Santa Rosa of the ACG compared with the monthly percentage of the annual rainfall. Traps were operated continuously for three consecutive years, 1985–87.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.