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232 results for “Symphyta”
Figs 15–18 in Four New Species Of The Genus Athlophorus Burmeister, 1847 From The Indian Himalayas (Hymenoptera: Symphyta: Tenthredinidae: Allantinae) With A Key To Indian Species
Figs 15–18. Athlophorus adults in dorsal view: 15 = A. smithi sp. n., female, 16 = A. taegeri sp. n., male, 17 = A. weii sp. n., male, 18 = A. toongensis sp. n., female
Figs 1–14. Athlophorus spp. A in Four New Species Of The Genus Athlophorus Burmeister, 1847 From The Indian Himalayas (Hymenoptera: Symphyta: Tenthredinidae: Allantinae) With A Key To Indian Species
Figs 1–14. Athlophorus spp. A. taegeri sp. n.: 1 = penis valve, 2 = gonoforcep, 7 = clypeus, 11 = tarsal claw. A. weii sp. n.: 3 = penis valve, 4 = gonoforcep, 8 = clypeus, 12 = tarsal claw. A. smithi sp. n.: 5 = lancet, 9 = clypeus, 13 = tarsal claw. A. toongensis sp. n.: 6 = lancet, 10 = clypeus, 14 = tarsal claw
Figs 1–2. 1 in Descriptions of larvae of Birka annulitarsis and B. cinereipes (Hymenoptera: Symphyta: Tenthredinidae)
Figs 1–2. 1 – Birka annulitarsis (Thomson, 1870), 2 – Birka cinereipes (Klug, 1816): a, d, e – mounted larva from alcohol; b, c – living larva; a, c – lateral view; b – dorsal view; d – frontal view; e – abdominal segment IX, dorsal view. Scale: a – 5 mm; b, c – 10 mm; d, e – 1 mm.
Fig. 2 in Review of the genus Janus Stephens, 1829 (Hymenoptera: Symphyta: Cephidae) of the Russian fauna
Fig. 2. Janus nasutus sp. n., holotype, male. A – habitus, dorsal view; B – pronotum, dorsal view; C – mesopleura, lateral view; D – maxillary palp; E – labial palp; F – left mandibula, frontal view; G – face, frontal view; H – hindleg, lateral view; J – genital capsule, dorsal view; K – genital capsule, ventral view.
Fig. 1 in Review of the genus Janus Stephens, 1829 (Hymenoptera: Symphyta: Cephidae) of the Russian fauna
Fig. 1. Janus formosus, holotype, female (A–F) and male (G–K). A – habitus, lateral view; B – head, frontal view; C, I – pronotum, dorsal view; D – lancet, lateral view; E – maxillary palp; F – labial palp; G – habitus, dorsal view; H – hindleg, lateral view; J – genital capsule, ventral view; K – genital capsule, dorsal view.
Fig. 6 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan IX
Fig. 6.ɹPericlista erythrogramma, final feeding-instar larva, 19. V. 2011 (A, C), P. shiritakensis, final feedinginstar larva, 12. V. 2019 (B, D) and mature larva, 15. V. 2019 (E). Photographed in Nakagawa by S. Ibuki.
Fig. 2 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan IX
Fig. 2.ɹOnycholyda viriditibialis (A–C) and O. esakii (D, E), photographed in Kagamiganaru by A. Shinohara on September 2, 2023. — A, Larval abode (arrowed), upper surface; B, same abode (arrowed), under surface; C, late-instar larva in abode with frass; D, two larval abodes (arrowed), under surface; E, close-up of larval abodes.
Fig. 3 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan IX
Fig. 3.ɹPamphilius komonensis on A. palmatum (A–D) and A. pictum subsp. dissectum f. connivens (E–H) photographed in Nakagawa (G, H in Tsukuba) by S. Ibuki (A–E) and A. Shinohara (E–H). — A, Eggshell (upper arrow) and larval abode of early-instar larva (lower arrow), June 5, 2023; B, eggshell, May 29, 2023; C, earlyinstar larva beginning to make abode, May 29, 2023; D, middle-instar larva, June 27, 2016; E, F, larval abodes (arrowed), June 8, 2023; G, late-instar larva, June 11, 2023; H, mature larva, June 21, 2023.
Fig. 1 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan IX
Fig. 1.ɹNeurotoma atrata on Q. serrata, photographed in Nakagawa by S. Ibuki in 2018 and 2019. — A, Nest containing three larvae, seen from above, May 3, 2018 (deformed after three days of rearing in a container); B, inside of nest, seen from below, remains of two egg shells arrowed, April 30, 2018; C–E, middle instar larva, April 30, 2018 (C, E) and May 8, 2019 (D); F–H, late instar larva, May 2 (F), May 3 (G) and May 4, 2018 (H); I, J, mature larva, May 7, 2018.
Figure 6 in Past ecosystems drive the evolution of the early diverged Symphyta (Hymenoptera: Xyelidae) since the earliest Eocene
Figure 6. (A) Map of the Eocene world with vegetation simulated by BIOME4 (modified from Herold et al., 2014) and distribution of extant Xyelidae (from https://v3.boldsystems.org, last access: 7 November 2021). (B) World map of the Cretaceous period at 105 Ma with xyelid localities indicated. (C) World map of the Jurassic period at 170 Ma with xyelid localities indicated. (D) World map of the Triassic period at 220 Ma with xyelid localities indicated (B, C, D; ' PALEOMAP project).
Figure 5 in Past ecosystems drive the evolution of the early diverged Symphyta (Hymenoptera: Xyelidae) since the earliest Eocene
Figure 5. Proxyelia pankowskii gen. et sp. nov. Holotype FOBU14313. (A) Detailed photograph of head. (B) Interpretative line drawing of antenna. (C) Detailed photograph of pterostigma. (D) Interpretative line drawing of venation with cell (in bold) and vein names labeled. (E) Detailed view of apical part of abdomen. Scale bars: 1 mm.
Figure 1 in Past ecosystems drive the evolution of the early diverged Symphyta (Hymenoptera: Xyelidae) since the earliest Eocene
Figure 1. Photograph of Paleoxyela nearctica gen. et sp. nov. Holotype UCM 18643. Scale bar: 5 mm. (' Talia Karim).
Figure 2 in Past ecosystems drive the evolution of the early diverged Symphyta (Hymenoptera: Xyelidae) since the earliest Eocene
Figure 2. Paleoxyela nearctica gen. et sp. nov. Holotype UCM 18643. (A) Detailed photograph of head and thorax. (B) Detailed photograph of right wings. (C) Detailed photograph of left wings. Scale bars: 1 mm. (' Talia Karim).
Figure 3 in Past ecosystems drive the evolution of the early diverged Symphyta (Hymenoptera: Xyelidae) since the earliest Eocene
Figure 3. Paleoxyela nearctica gen. et sp. nov. Holotype UCM 18643. (A) Interpretative line drawing of right wing venation with cell (in bold) and vein names labeled. (B) Interpretative line drawing of venation of left wings with cell (in bold) and vein names labeled. Scale bars: 1 mm.
Fig. 9. A–G in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 9. A–G, Siobla ferox: A, probably middle instar larva on Glechoma hederacea subsp. grandis, 27. VI. 2016; B, same larva, probably late instar, 12. VII. 2016; C, same larva, 16. VII. 2016; D, same larva, matured, 9. VIII. 2016; E. probably middle instar larva on Actinidia polygama, 14. VI. 2016; F. probably middle instar larvae on A. polygama, 19. VI. 2016; G. same larva, 15. VII. 2016. H–I, Siobla japonica: H, last instar larva, 5. VI. 2019; I, mature larva and cast skin above, 9. VI. 2019; J–M, Taxonus shinoharai: J, middle and late instar larvae on Agrimonia pilosa var. japonica, 29. IX. 2019; K, late instar, 29. IX. 2019; L, same larva, matured, 30. IX. 2019; M, male adult, just emerged, 26. X. 2019. All photographed by Ibuki.
Fig. 8. A–C in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 8. A–C, Late instar larvae: A, Masaakia longivaginata, 21. V. 2019; B, Monophadnoides montanus, 18. VI. 2019; C, Strongylogaster moiwana, 30. V. 2017. All photographed by Ibuki.
Fig. 6. Female ovipositor. A–C in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 6. Female ovipositor. A–C, Euura imperfecta: A–B, Hokkaido; C, Honshu. D–E, Euura itoi. A, D, Ovipositor; B–C, E, lancet. All photographed by Hara.
Fig. 5. A–P in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 5. A–P, Euura imperfecta: A–H, female, Hokkaido; I–K, male, Hokkaido; L–P, female, Honshu. Q–AA, Euura itoi: Q–X, female; Y–AA, male. A, I, Q, Y, Posteromedial part of thorax, dorsal view; B, J, L, R, Z, tarsal claw, anterior or posterior view; C, S, anteromedial part of fore wing; D, T, apical part of abdomen, ventrolateral view; E, M, U, abdomen apex, lateral view; F, N, V, ditto, posterolateral view; G, O, W, ditto, dorsal view; H, P, X, ditto, posterior view; K, AA, apical part of abdomen, dorsal view. M–N, P, Ovipositor removed; K, genitalia removed. All photographed by Hara.
Fig. 4. A–N in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 4. A–N, Euura imperfecta: A–G, female, Hokkaido; H–K, male, Hokkaido; L–N, female, Honshu. O–X, Euura itoi: O–U, female; V–X, male. A, H, L, O, V, Head, dorsal view; B, I, M, P, W, dorsomedial part of head anterodorsal view; C, J, N, Q, X, head, anterior view; D, K, R, Y, head, lateral view; E, S, torulus and its surroundings, anterolateral view; F, T, left mandible, outer view; G, U, right mandible, outer view. All photographed by Hara.
Fig. 2. A–F in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 2. A–F, Aglaostigma albicinctum: A, early or middle instar larva on Symplocarpus renifolius, 31. V. 2018; B, early or middle instar larva on Impatiens textorii, 29. V. 2016; C, late instar larva on Actinidia polygama, 25. VI. 2016; D, late instar larva on I. textorii, 30. V. 2016; E, late instar larva on A. polygama, 1. VII. 2016; F, mature larva, 10. VI. 2016. G–J, Allantus meridionalis: G, early instar, 20. IX. 2015; H, J, middle or late instar larva, 12. X. 2015; I, mature larva, 13. X. 2015. K–M, Apethymus kunugi: K, probably late instar larva, 10. V. 2019; L, same larva, 12. V. 2019; M, same larva, matured, and cast skin above, 17. V. 2019. N–P, Corymbas nipponica: N, middle instar larva, 17. VI. 2016; O, same larva, late instar, 26. VI. 2016; P, same larva, matured, and cast skin above, 29. VI. 2016. All photographed by Ibuki.
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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.