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FIGURES 2–4 in Description of new apterous winter species of Leuctra (Plecoptera: Leuctridae) based morphology and DNA barcoding and further records to stonefly fauna of the Caucasus, Georgia
FIGURES 2–4. Male of Leuctra adjariae sp. n. 2. Habitus, dorsal view. 3. Pro- meso- and methatorax. Prothorax: b1—basisternum, f1—furcasternum p1—postfurcasternum, s1—spinasternum; b2, f2, p2, s2—the same on the mesothorax. 4. Abdominal tip, lateral.
FIGURES 5–9 in Description of new apterous winter species of Leuctra (Plecoptera: Leuctridae) based morphology and DNA barcoding and further records to stonefly fauna of the Caucasus, Georgia
FIGURES 5–9. Male of Leuctra adjariae sp. n. 5. Abdominal tip, VII-X terga, dorsal. 6. Abdominal tip, IX-X terga, dorsal. 7. Epiproct, and styles, dorsal. 8. Abdominal tip, IX-X terga, ventral. 9. Styles and specilla, ventral.
FIGURES 17–19 in Description of new apterous winter species of Leuctra (Plecoptera: Leuctridae) based morphology and DNA barcoding and further records to stonefly fauna of the Caucasus, Georgia
FIGURES 17–19. Male of Leuctra georgiae sp. n. 17. Abdominal tip, IX & X terga, dorsal. 18. Abdominal tip, IX & X terga, ventral. 19. Epiproct, dorsal.
FIGURE 3 in Two new species of treefrog (Pelodrydidae: Litoria) from southern New Guinea elucidated by DNA barcoding
FIGURE 3. Distribution of Litoria pterodactyla sp. nov. and other species in the Litoria graminea species group in Papua New Guinea. On the basis of genetic distinctiveness (see text) topotypic Litoria dux is here considered to represent a distinct species; however, correct assignation of some specimens from across northeastern New Guinea will require further work.
FIGURE 7 in Two new species of treefrog (Pelodrydidae: Litoria) from southern New Guinea elucidated by DNA barcoding
FIGURE 7. Comparisons of preserved holotype of Litoria vivissimia sp. nov. (far left) and Litoria pronimia from near the type locality at Tabubil (SAMA R71135–6, 71140) and the Kikori River Basin (SAMA R77131). Note more solid green colouration on the dorsum and limb of the new species. Photograph by Peter Waddington, Queensland Museum.
FIGURE 5 in Two new species of treefrog (Pelodrydidae: Litoria) from southern New Guinea elucidated by DNA barcoding
FIGURE 5. Holotype of Litoria vivissimia sp. nov. SAMA R71127 in preservative. Scale bar 10 mm. Photographs by Peter Waddington, Queensland Museum.
FIGURE 6 in Two new species of treefrog (Pelodrydidae: Litoria) from southern New Guinea elucidated by DNA barcoding
FIGURE 6. Images in life of a) Litoria vivissimia sp. nov. SAMA R71127 and b) Litoria pronimia uncollected specimen, Tabubil, Western Province. Photographs by S. Richards.
FIGURE 2 in Two new species of treefrog (Pelodrydidae: Litoria) from southern New Guinea elucidated by DNA barcoding
FIGURE 2. Images in life of three species in the Litoria graminea complex occurring along the southern side of the New Guinean Central Cordillera; a–b) Litoria pterodactyla sp. nov. holotype SAMA R65030, Muller Range, Western Province, c) Litoria pallidofemora SAMA R71201 upper Fly River region, Western Province, and d) Litoria sauroni SAMA R60727 (holotype), Darai Plateau, Gulf Province. Note differences in eye and lateral colouration. All photographs by S. Richards.
FIGURE 9 in Two new species of treefrog (Pelodrydidae: Litoria) from southern New Guinea elucidated by DNA barcoding
FIGURE 9. Mid-montane forest habitat of Litoria vivissimia sp. nov. on Hides Ridge, 2250 m a.s.l., Hela Province, Papua New Guinea. Photograph by S. Richards.
FIGURE 4 in Two new species of treefrog (Pelodrydidae: Litoria) from southern New Guinea elucidated by DNA barcoding
FIGURE 4. Hill-forest habitat of Litoria pterodactyla sp. nov. at Gugusu Camp, 515 m a.s.l., Muller Range, Western Province, Papua New Guinea. Photograph by S. Richards.
FIGURE 1 in Morphology and DNA barcodes of two species of Bradysia Winnertz from China (Diptera, Sciaridae), with the description of Bradysia minorlobus Yang, Shi & Huang sp. n.
FIGURE 1. Neighbor-joining (NJ) tree of COI based on Kimura two-parameter (K2P) genetic distances. The scale bar indicates the branch length. The alignment was performed based on the K2P model, with substitutions of transitions and transversions. Each sequence is numbered by the Barcode Index Number (BIN BOLD) with voucher materials in Table 1.
FIGURE 3 in Morphology and DNA barcodes of two species of Bradysia Winnertz from China (Diptera, Sciaridae), with the description of Bradysia minorlobus Yang, Shi & Huang sp. n.
FIGURE 3. Bradysia minorlobus Yang, Shi & Huang sp. n., male, holotype. A. Left gonostylus, ventral view; B. Right half of hypopygium, ventral view; C. Palpus, lateral view; D. 4th flagellomere, lateral view; E. Apex of foretibia, prolateral view. Scale bars = 0.10 mm. Drawings: Kai Shi.
FIGURE 2 in Morphology and DNA barcodes of two species of Bradysia Winnertz from China (Diptera, Sciaridae), with the description of Bradysia minorlobus Yang, Shi & Huang sp. n.
FIGURE 2. Bradysia chenjinae Yang, Zhang & Yang, male [SM01799]. A. Left half of hypopygium, ventral view; B. Right gonostylus, ventral view. C. Wing, dorsal view. Scale bars (A-B) = 0.10 mm, scale bar (C) = 0.50 mm. Drawings: Kai Shi.
FIGURE 1 in DNA barcodes and morphology revealed three species masquerading in Xiphydria camelus of authors (Hymenoptera, Xiphydriidae) in Northeast Asia: X. eborata sp. rev. and X. albopicta sp. nov.
FIGURE 1. The maximum likelihood tree based on 558 bp of mitochondrial COI gene sequence (-ln likelihood = 1510.28). Numbers on branches indicate bootstrap values for MP, NJ and ML analyses (shown only for higher nodes with>50). Numbers of each terminal label represent the sample ID or GenBank accession number.
FIGURE 2 in DNA barcodes and morphology revealed three species masquerading in Xiphydria camelus of authors (Hymenoptera, Xiphydriidae) in Northeast Asia: X. eborata sp. rev. and X. albopicta sp. nov.
FIGURE 2. Xiphydria camelus (A, B), X. albopicta (C–E) and X. eborata (F–I), females.—A, Izumisawa, Hokkaido, Japan; B, Kangaslampi, Finland; C, D, holotype; E, Fuuren, Hokkaido, Japan; F, syntype of X. eborata; G, lectotype of X. kawakamii; H, lectotype of X. kuccharonis; I, Shintoku, Hokkaido, Japan.
FIGURE 24 in Validation of Heterocerus heydeni Kuwert, 1890 based on morphology and DNA barcoding, with notes on the problems of classification of the Heteroceridae (Coleoptera)
FIGURE 24. Distribution of Heterocerus heydeni. Circles—studied material: red circles—records only H. heydeni; orange circles—records H. heydeni and H. flexuosus; square—type locality (Dzhizak, Uzbekistan).
FIGURES 6–17 in Validation of Heterocerus heydeni Kuwert, 1890 based on morphology and DNA barcoding, with notes on the problems of classification of the Heteroceridae (Coleoptera)
FIGURES 6–17. Variability and sexual dimorphism of Heterocerus spp. 6–9—H. heydeni, males (South Kazakhstan); 10– 13—H. heydeni, females (South Kazakhstan); 14—H. heydeni, tubercles on clypeus of male, hairs removed; 15—H. heydeni, male abdomen; 16—H. heydeni, female abdomen; 17—H. flexuosus, female with extremely light elytra (Crimea). Scale bars = 1 mm (Figs. 6–13, 15–17) and 0.2 mm (Fig. 14).
FIGURES 2–5. Heterocerus spp. 2—male H in Validation of Heterocerus heydeni Kuwert, 1890 based on morphology and DNA barcoding, with notes on the problems of classification of the Heteroceridae (Coleoptera)
FIGURES 2–5. Heterocerus spp. 2—male H. heydeni from collection ZIN (photo by A. Kovalev); 3—labels of this specimen: handwriting by F.A. Zaitsev (ink), handwriting by R. Charpentier (pencil); 4—H. heydeni general view, male (South Kazakhstan); 5—H. flexuosus general view, male (South Kazakhstan). Scale bar = 1 mm.
FIGURE 1 in Validation of Heterocerus heydeni Kuwert, 1890 based on morphology and DNA barcoding, with notes on the problems of classification of the Heteroceridae (Coleoptera)
FIGURE 1. Maximum likelihood tree of Heteroceridae samples. Colour of branches: blue—Heterocerus, orange—Tropicus, green—Augyles, black—undetermined Heteroceridae. New samples in red, number next to nodes—bootstrap support (only if> 0.50). Samples with retained generic and species names as in BOLD data systems database.
FIGURES 18–23 in Validation of Heterocerus heydeni Kuwert, 1890 based on morphology and DNA barcoding, with notes on the problems of classification of the Heteroceridae (Coleoptera)
FIGURES 18–23. Male genitalia of Heterocerus spp. 18—aedeagus H. heydeni, ventrally; 19—tegmen apex H. heydeni, dorsally; 20—tegmen sclerotization H. heydeni, dorsal; 21—aedeagus H. flexuosus, ventrally; 22—tegmen apex H. flexuosus, dorsally; 23—tegmen sclerotization H. flexuosus, dorsal. On Figs. 18 & 21 most of the sclerites and membranes connecting the lateral lobes of tegmen and penis base are omitted. Scale bar = 0.1 mm.
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
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.