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FIGURES 6–8. Rhamma female genitalia from Colombia. 6 in DNA barcodes, morphology and geographic distribution confirm a new butterfly species in the genus Rhamma (Lepidoptera: Lycaenidae)
FIGURES 6–8. Rhamma female genitalia from Colombia. 6, Rhamma arria female, Cordillera Occidental; 7, Rhamma oxida female, Cauca; 8, Rhamma eleonorae sp. nov., female Paratype.
FIGURES 1-5. Rhamma adults from Colombia. 1 in DNA barcodes, morphology and geographic distribution confirm a new butterfly species in the genus Rhamma (Lepidoptera: Lycaenidae)
FIGURES 1-5. Rhamma adults from Colombia. 1, Rhamma arria male, Llanos de Cuiva; 2, Rhamma arria female, Cordillera Occidental; 3, Rhamma oxida male, Cauca; 4, Rhamma oxida female, Cauca; 5, Rhamma eleonorae sp. nov., female Holotype.
FIGURE 4 in Hyperxiphia hirashimai, comb. n. (Hymenoptera, Xiphydriidae) from southern Japan: remarkable sexual dimorphism revealed by DNA barcodes and new distribution records
FIGURE 4. Hyperxiphia hirashimai, male, Amami-oshima (holotype, A, B, D–G) and Yakushima (C).—A, C, Head, dorsal view; B, head dorsofrontal view; D, thorax, dorsal view, E, labial palp, dorsal view; F, same, ventral view; G, abdomen and hind legs, lateral view (arrow showing conspicuous tuft of long stiff hairs on sternum 8).
FIGURE 2 in Hyperxiphia hirashimai, comb. n. (Hymenoptera, Xiphydriidae) from southern Japan: remarkable sexual dimorphism revealed by DNA barcodes and new distribution records
FIGURE 2. Hyperxiphia hirashimai, female, Narukawa-keikoku.—A, Dorsal view; B, lateroventral view; C, head, frontal view; D, head, dorsal view; E, head and right antenna, laterofrontal view; F, apical part of abdomen, lateral view.
FIGURE 1 in Hyperxiphia hirashimai, comb. n. (Hymenoptera, Xiphydriidae) from southern Japan: remarkable sexual dimorphism revealed by DNA barcodes and new distribution records
FIGURE 1. The Neighbor-Joining tree based on 540 bp of COI gene sequences. Numbers on branches indicate bootstrap values. The number on each terminal label represents GenBank accession number for Hyperxiphia spp. or BOLD Process ID for the sequences from BOLD.
FIGURE 3 in Hyperxiphia hirashimai, comb. n. (Hymenoptera, Xiphydriidae) from southern Japan: remarkable sexual dimorphism revealed by DNA barcodes and new distribution records
FIGURE 3. Hyperxiphia hirashimai, male, Nago-shi, Okinawa-jima (A, B), Amami-oshima (holotype, C, D) and Yakushima (E).—A, D, E, Dorsal view; B, ventral view; C, lateral view.
FIGURE 40 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURE 40. One of the four most parsimonious cladograms produced by analysing the data in Table 1 and obtained by reweighting characters using the rescaled consistency index (RCI). Character distributions represented by black blocks are for uniquely derived states; grey blocks are for homoplasious states.
FIGURE 41 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURE 41. Neighbour-joining tree of 51 specimens of Gimnomera and one outgroup specimen with COI sequences, including unique voucher number (numbers starting with CCDB are from this study), sequence length, locality and GenBank accession number. Current species concepts shown by different colours, with the exception of G. tibialis and G. sibirica, where colours represent different populations (dark brown = G. tibialis east population, dark red = G. tibialis north population, orange = G. sibirica, light brown = G. cerea, light blue = G. subvittata, purple = G. aquilonia, light red = G. sp A, dark pink = G. terrywheeleri, navy blue = G. cuneiventris, light pink = G. vockerothi).
FIGURE 39 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURE 39. Strict consensus tree of four most parsimonious cladograms of species of Gimnomera and outgroups, produced by analysing the data matrix in Table 1. Bremer support values are shown at each internode.
FIGURES 37–38 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 37–38. Known distribution of Gimnomera. 37. G. tibialis (Malloch); 38. G. vockerothi sp. nov..
FIGURES 17–20 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 17–20. Male and female Gimnomera, lateral views. 17. G. subvittata (Malloch), male; 18. Female of possible ninth species of Nearctic Gimnomera (Gimnomera sp. A); 19. G. tibialis (Malloch), female; 20. G. vockerothi sp. nov., female.
FIGURES 5–8 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 5–8. Gimnomera male terminalia, posterior and oblique lateral views. 5–6. G. cuneiventris (Zetterstedt); 7–8. G. incisurata Malloch. Abbreviations: cerc—cercus; epand—epandrium; pregt—pregonite; sur—surstylus.
FIGURES 31–32 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 31–32. Known distribution of Gimnomera. 31. G. aquilonia sp. nov.; 32. G. cerea (Coquillett).
FIGURES 35–36 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 35–36. Known distribution of Gimnomera. 35. G. subvittata (Malloch); 36. G. terrywheeleri sp. nov.
FIGURES 1–4 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 1–4. Gimnomera male terminalia, posterior and lateral views. 1–2. G. aquilonia sp. nov.; 3–4. G. cerea (Coquillett). Abbreviations: cerc—cercus; epand—epandrium; hypd—hypandrium; pregt—pregonite; sur—surstylus.
FIGURES 13–16 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 13–16. Gimnomera male terminalia, posterior and lateral views. 13–14. G. tibialis (Malloch); 15–16. G. vockerothi sp. nov. Abbreviations: ph—phallus; pregt—pregonite.
FIGURES 33–34 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 33–34. Known distribution of Gimnomera. 33. G. cuneiventris (Zetterstedt); 34. G. incisurata Malloch.
FIGURES 23–25 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 23–25. Female abdomen of Gimnomera species. 23. G. aquilonia sp. nov.; 24. G. tibialis (Malloch); 25. G. vockerothi sp. nov. Abbreviations: hyprt—hypoproct; spmth—spermathecae; st—sternite.
FIGURES 9–12 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 9–12. Gimnomera male terminalia, posterior and lateral views. 9–10. G. subvittata (Malloch); 11–12. G. terrywheeleri sp. nov. Abbreviations: cerc—cercus; epand—epandrium; hypd—hypandrium; pregt—pregonite; sur—surstylus.
FIGURES 26–30 in Revision of the Nearctic species of Gimnomera Rondani (Diptera: Scathophagidae) with morphological phylogeny and DNA barcodes
FIGURES 26–30. Morphological features of Gimnomera. 26–27. View of anterior margin of postpronotum with dark spine-like setae or with light coloured setulae: 26. G. cerea (Coquillett); 27. G. terrywheeleri sp. nov.; 28. G. tibialis (Malloch), vein R1 with row of setulae; 29–30. Male sternite 5: 29. G. subvittata (Malloch); 30. G. vockerothi sp. nov..
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.