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FIGURE 3 in A new species of spectacular spider wasp mimic from Thailand is the first representative of the genus Melanosphecia Le Cerf 1916 (Lepidoptera: Sesiidae: Osminiini) to be filmed in the wild
FIGURE 3 Melanosphecia paolo Skowron Volponi sp. nov., male genitalia. Top right corner: fractured saccus before the cover slip was placed.
FIGURE 2 in A new species of spectacular spider wasp mimic from Thailand is the first representative of the genus Melanosphecia Le Cerf 1916 (Lepidoptera: Sesiidae: Osminiini) to be filmed in the wild
FIGURE 2 Melanosphecia paolo Skowron Volponi sp. nov., ♂ holotype, 1—dorsal view, 2— ventral view after removing abdominal segments for genitalia analysis.
FIGURE 1 in A new species of spectacular spider wasp mimic from Thailand is the first representative of the genus Melanosphecia Le Cerf 1916 (Lepidoptera: Sesiidae: Osminiini) to be filmed in the wild
FIGURE 1 Melanosphecia paolo Skowron Volponi sp. nov., two individuals mud-puddling, in 2017 (top left) and 2019. Photographs taken by Marta Skowron Volponi & Paolo Volponi.
Fig. 5 in Geographical distribution of the spider wasps (Hymenoptera: Pompilidae) of the world
Fig. 5. Composition of faunas of spider wasps in biogeographic regions at the subfamily level. The sector labels denote the numbers of genera in the subfamily and percentages of genera in the subfamily of total fauna of the region (in the numerators and denominators respectively). Abbreviations of biogeographic regions as in Fig. 1 Рис. 5. Состав фаун дороЖных ос Зоогеографических областей мира на уровне подсемейств. В подписЯх секторов дано число родов в подсемействе (в числителе) и процент родов подсемейства от обЩей фауны области (в Знаменателе). СокраЩениЯ наЗваний Зоогеографических областей как на рис. 1.
Figure 2. Spider Macrothele hungae Lin and Li carrying a in First record of the Taiwanese spider wasp Minotocyphus formosanus (Tsuneki) (Hymenoptera: Pompilidae) as a koinobiont ectoparasitoid of the funnel-web spider Macrothele hungae Lin and Li (Mygalomorphae: Macrothelidae)
Figure 2. Spider Macrothele hungae Lin and Li carrying a wasp larva (Minotocyphus formosanus Tsuneki) on its abdomen (9.30pm on 6 January 2024 in a cave of Pingtung County, Taiwan). The cephalothorax of the spider was 12 mm in length and 13 mm in width, excluding the chelicerae.
Figure 3 in First record of the Taiwanese spider wasp Minotocyphus formosanus (Tsuneki) (Hymenoptera: Pompilidae) as a koinobiont ectoparasitoid of the funnel-web spider Macrothele hungae Lin and Li (Mygalomorphae: Macrothelidae)
Figure 3. Developmental process of spider wasp Minotocyphus formosanus Tsuneki. (A) Spider Macrothele hungae Lin and Li carrying a wasp larva on the day it was collected (9.30pm on 6 January 2024). (B) Spider constructing a web on 7 January. (C) Wasp larva devouring almost all of spider's abdomen (11.25pm, 7 January). (D) Larva eating posterior portion of spider's cephalothorax (10.16am, 8 January). (E) larva located away from spider (5.41am, 9 January). (F) Larva spinning a cocoon (3.41am, 10 January). (G) Completed cocoon (arrow, meconium excreted by larva at posterior end of cocoon (11 January). (H) Female wasp having emerged from cocoon and lapping diluted honey (20 February). Scale bars: A–E = 5 mm; F–H = 10 mm.
Figure 1 in First record of the Taiwanese spider wasp Minotocyphus formosanus (Tsuneki) (Hymenoptera: Pompilidae) as a koinobiont ectoparasitoid of the funnel-web spider Macrothele hungae Lin and Li (Mygalomorphae: Macrothelidae)
Figure 1. Habitus of female of Minotocyphus formosanus Tsuneki reared from Macrothele hungae. (A) Head, anterior view. (B–D) Head and mesosoma, lateral (B), dorsal (C), and dorsolateral views (D). (E) Right wings. (F) Apical portion of left hind tibia, lateral view. (G–H) Apical metasomal segments, ventrolateral (G) and lateral views (H). Scale bars: A–E, G–H = 1 mm; F = 0.5 mm.
Figure 36 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 36. Monthly comparison of the percentage of days the canyon wren (Catherpes mexicanus Swainson, 1829) was present on Arkenstone Cave hill with the averaged monthly female population of Ageniella evansi Townes, 1957 for the period of 1994 through 2020. The wasp population trend is a cubic polynomial curve; R2 =.70.
Figure 34. A in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 34. A, Female Ageniella evansi Townes, 1957 with a Selenops sp. Latreille, 1819 spider trying to squeeze through a tight constriction among the rock rubble in the habitat box. B, having failed to negotiate the constriction while carrying her spider, the female went through, turned around, reached back and grabbed the spider by one of its chelicerae and pulled it through the constriction. View is through the plexiglass wall of the observation and habitat box, which forms the near side of the constriction.
Figure 35 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 35. Larva of Ageniella evansi Townes, 1957, 14 days old, removed from a nest cell in the habitat box (trial HB2). The larva is just finishing feeding on its host. The dark mass around which the larva is curled is the undigestible portions of the cephalothorax, including the eyes and chelicerae, of the provisioned lycosid spider. Scale bar: 5 mm.
Figure 32. Female Ageniella evansi Townes, 1957 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 32. Female Ageniella evansi Townes, 1957 just outside the cave entrance showing the tattered wingtips of an apparently senescent, but still viable, hunting individual.
Figure 31. Average annual percent hunting success for female Ageniella evansi Townes, 1957 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 31. Average annual percent hunting success for female Ageniella evansi Townes, 1957 at Arkenstone Cave based on daily data sets (N = 66). No full daily data sets exist for the years 2006– 2009, 2012 and 2015. *No spider returns were observed for full daily data sets in 2000 or 2005 due to the small female wasp population and reduced observation efforts.
Figure 29 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 29. The deeply dissected terrain in the Park that resulted from millions of years of geologic processes provides many small-scale ecotopes that support an enhanced plant species richness. This is typical wasp foraging habitat in the Park. Dominant plant species visible in the image include yellow paloverde (Parkinsonia microphylla Torr.), saguaro (Carnegiea gigantea Engelm.), and ocotillo (Fouquieria splendens Engelm.).
Figure 28. Female Ageniella evansi Townes, 1957 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 28. Female Ageniella evansi Townes, 1957 transporting Selenops sp. Latreille, 1819 spider within Arkenstone Cave. The light mark on this wasp's thorax is how the wasps were marked for identification.
Figure 30. A in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 30. A sequence of photographs (A–E) showing the route taken by Ageniella evansi Townes, 1957 from near the cave entrance to the primary nesting site access (also see Figure 6). The yellow arrows show the direction of travel into the cave taken by the wasps. A, looking north-west, back up the Hall of Crickets towards the cave entrance from the Register Room; B, looking south-east at the entrance of the Hideous Crawl; C, looking south-east into the Hideous Crawl; D, looking east from the First Antechamber into the Second Antechamber (beyond the scale); E, the access to the primary nesting area. The total distance from the cave entrance to this point is 44 m (Figure 6). Scale in photos is 15 cm.
Figure 27 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 27. Compilation of photos from trials of female Ageniella evansi Townes, 1957 with Selenops sp. Latreille, 1819 spiders in the photo chamber in the Register Room of Arkenstone Cave in March of 1993. A, wasp and spider before contact; B, wasp has envenomated the spider and is removing its legs by grasping each femur near the femur-trochanter junction; C, wasp partaking of haemolymph at coxal stub after removal of a leg; D, female grasping a palp, which was not removed; E, wasp using her mandibles to 'bulldoze' removed legs out of the way; F, wasp turns the spider on its side and removes a leg by pulling parallel to the axis of the leg in an avulsive process while holding and pushing against the spider with her middle and front legs, respectively. Leg separates at the coxa-trochanter locus. Scale bars: 10 mm.
Figure 25 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 25. Percent of observed host type by year taken by the Arkenstone Cave population of Ageniella evansi Townes, 1957 between 1993 and 2020.
Figure 5 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 5. The known distribution of Ageniella evansi Townes, 1957. Note the apparent disjunct records in south central Mexico. Scale bar: 500 km.
Figure 6 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 6. Plan view map of Arkenstone Cave showing details mentioned in the text. Letters A–E indicate locations of photographs referenced in Figure 30.
Figure 7 in Biology and ecology of a deep cave nesting spider wasp, Ageniella evansi Townes, (Hymenoptera: Pompilidae), in Arizona
Figure 7. Annual observed maximum number of female Ageniella evansi Townes, 1957 documented at Arkenstone Cave from 1992 to 2024. The trend line is a cubic polynomial; R2 =.70.
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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)
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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.