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3,292 results for “DNA Barcode”
FIGURES 54–57 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 54–57. Notoreas perornata adults (2e). 54. Male upperside, Waiho Flats WD; 55. Female upperside, Waiho Flats WD; 56. Male underside, Waiho Flats WD; 57. Female underside (same specimen as Fig. 55).
FIGURES 66–69 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 66–69. Notoreas perornata, male genitalia of selected populations (population code in brackets): 66, 68. genital capsule; 67, 69. phallus. 66, 67. Te Humenga Pt WA (2a), NZAC slide Notoreas 7; 68, 69. Dry Rd, Sth Sandhill Creek NN (2b), NZAC slide Notoreas 12.
FIGURES 62–65 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 62–65. Notoreas perornata, male genitalia of selected populations (population code from text in brackets): 62, 64. genital capsule; 63, 65. phallus. Note: apparent slight differences between genitalia of moths from different populations (e.g. shape and spinosity of costal process of valva) do not seem to provide reliable taxonomic characters when larger samples are studied due to variation within populations; these images are included to give an impression of the variation and small differences should not be interpreted as constant or diagnostic. 62, 63. Waimamaku Beach ND (1a), NZAC slide Notoreas 11; 64, 65. Mt Ruapehu TO (1b), NZAC slide Notoreas 2.
FIGURES 48–53 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 48–53. Notoreas perornata adults (2d). 48. Female upperside, Mt Starveall NN; 49. Male underside (same specimen as Fig. 44); 50. Male underside (same specimen as Fig. 45); 51. Female underside (same specimen as Fig. 46); 52. Female underside (same specimen as Fig. 47); 53. Female underside (same specimen as Fig. 48).
FIGURES 42–47 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 42–47. Notoreas perornata adults: 42, 43. (2c); 44–47. (2d). 42. Female underside (same specimen as Fig. 39); 43. Female underside (same specimen as Fig. 40); 44. Male upperside, Mt Arthur NN; 45. Male upperside, Dun Mt NN (holotype of N. regilla Philpott); 46. Female upperside, Jacks Pass MB; 47. Female upperside, Craigieburn MC.
FIGURES 19–24 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 19–24. Notoreas perornata adults: 19–21. (1d); 22–23. (1e). 19. Male upperside, Cape Turnagain HB; 20. Female upperside, Cape Turnagain HB; 21. Male underside (same specimen as Fig. 19); 22. Female underside (same specimen as Fig. 20); 23. Male upperside, Castlepoint WA; 24. Female upperside, Castlepoint WA.
FIGURES 31–35 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 31–35. Notoreas perornata adults (2a). 31. Female upperside, L. Kohangapiripiri WN; 32. Female upperside, White Rock Rd WA; 33. Male underside (same specimen as Fig. 29); 34. Male underside (same specimen as Fig. 30); 35. Female underside, Owhiro Bay WN (BPNZ).
FIGURES 8–13 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 8–13. Notoreas perornata adults (1b). 8. Male upperside, Waipakihi River TO; 9. Female upperside, Blowhard Bush HB; 10. Female upperside, Mt Ruapehu TO; 11. Female upperside, Mt Ruapehu TO; 12. Male underside, Waipakihi River TO; 13. Female underside (same specimen as Fig. 11).
FIGURES 36–41 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 36–41. Notoreas perornata adults: 36, 37. (2b); 38–41. (2c). (1e). 36. Male upperside, Dry Rd–Anatori R. NN; 37. Male underside (same specimen as Fig. 36); 38. Male upperside, Wairau Bar MB; 39. Female upperside, Rarangi, Cloudy Bay SD; 40. Female upperside, Rarangi, Cloudy Bay SD; 41. Male underside (same specimen as Fig. 38).
FIGURES 2–7. N in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURES 2–7. N. perornata adults (1a). 2. Male upperside, Karioitahi Beach AK (1a); 3. Male upperside, [ND?] (BPNZ); 4. Female upperside, [ND?] (BPNZ); 5. Female upperside, Karioitahi Beach AK; 6. Male underside (same specimen as Fig. 2); 7. Female underside (same specimens as Fig. 5).
FIGURE 1 in Wing pattern variation and DNA barcodes defy taxonomic splitting in the New Zealand Pimelea Looper Notoreas perornata (Walker) (Lepidoptera: Geometridae: Larentiinae): the importance of populations as conservation units
FIGURE 1. Mitochondrial DNA (COI) gene tree for Notoreas perornata complex and selected outgroups. Branch lengths are drawn proportional to the estimated number of substitutions per site following the scale bar. Numbers above branches are maximum likelihood bootstrap percentages. Species names are followed by specimen numbers in parentheses.
FIGURES 1A–D in Connecting the dots: DNA barcoding and lectotype designation shedding light on Labrundinia longipalpis (Goetghebuer, 1921), an intriguing non-biting midge (Chironomidae, Tanypodinae)
FIGURES 1A–D. Labrundinia longipalpis (Goetghebuer). A. Lectotype. B. Labels of Lectotype. C. Detailed views of the lectotype hypopygium, left: ventral aspect, right: dorsal aspect. D. Type series (Lectotype + Paralectotypes).
FIGURE 3 in Connecting the dots: DNA barcoding and lectotype designation shedding light on Labrundinia longipalpis (Goetghebuer, 1921), an intriguing non-biting midge (Chironomidae, Tanypodinae)
FIGURE 3. Neighbor joining tree for species of the genus Labrundinia (Chironomidae, Tanypodinae) based on partial COI sequences (DNA barcodes) and the Kimura-2-parameter. Bootstrap values are indicated on the branches. The North American and European populations of Labrundinia longipalpis (Goetghebuer, 1921) are highlighted within the red dotted box, indicating their clustering.
FIGURES 2A–B in Connecting the dots: DNA barcoding and lectotype designation shedding light on Labrundinia longipalpis (Goetghebuer, 1921), an intriguing non-biting midge (Chironomidae, Tanypodinae)
FIGURES 2A–B. Map illustrating the known occurrence records of Labrundinia longipalpis (Goetghebuer). A. Nearctic and Caribbean regions. (B) Palearctic region.
FIGURE 6. Phylogenetic relationships between Anthidium melanopygum and A in DNA barcoding confirms the validity of Anthidium melanopygum Friese, 1917 stat. nov. (Hymenoptera: Megachilidae) as a distinct species of Western Asia
FIGURE 6. Phylogenetic relationships between Anthidium melanopygum and A. spiniventre as inferred from mitochondrial COI DNA sequences. The phylogram shows the best-scoring maximum likelihood tree. Numbers shown at nodes are maximum likelihood bootstrap values based on 1000 bootstrap replicates. Three specimens each of Anthidium diadema Latreille, A. florentinum (Fabricius), and A. cingulatum Latreille were used as outgroups.
FIGURE 7 in DNA barcoding confirms the validity of Anthidium melanopygum Friese, 1917 stat. nov. (Hymenoptera: Megachilidae) as a distinct species of Western Asia
FIGURE 7. Distribution of Anthidium melanopygum (red dots) and A. spiniventre (white dots with blue margins). Females from Iran which could not undoubtedly be attributed to one of these two species are shown with grey dots.
FIGURE 4 in DNA barcoding confirms the validity of Anthidium melanopygum Friese, 1917 stat. nov. (Hymenoptera: Megachilidae) as a distinct species of Western Asia
FIGURE 4. Male genitalia of Anthidium melanopygum (A–C) and A. spiniventre (D–F). A, D: ventral; B, E: dorsal; C, F: ventrolateral.
FIGURE 3 in DNA barcoding confirms the validity of Anthidium melanopygum Friese, 1917 stat. nov. (Hymenoptera: Megachilidae) as a distinct species of Western Asia
FIGURE 3. Head of females of Anthidium melanopygum (A, C) and A. spiniventre (B, D). The lower end of the preoccipital band is truncated in typical specimens of A. melanopygum (A), and pointed in typical specimens of A. spiniventre (B). The apical margin of the clypeus is usually black in A. melanopygum (C) and semi-transparent light brown in A. spiniventre (D). An impunctate mid-line on the clypeus is present in both species.
FIGURE 1 in DNA barcoding confirms the validity of Anthidium melanopygum Friese, 1917 stat. nov. (Hymenoptera: Megachilidae) as a distinct species of Western Asia
FIGURE 1. Anthidium melanopygum (above) and A. spiniventre (below). A and C females, B and D males (A, B: Bulgaria, C: Jordan, D: Syria).
FIGURES 1–7 in Morphological redescription and DNA barcoding of Diamesa parancysta Serra-Tosio (Diptera: Chironomidae: Diamesinae)
FIGURES 1–7. Adult male of Diamesa parancysta Serra-Tosio from Upper Angara River (1–4), Magadan Region (5), Khakassia (6) and Kazakh Mountain Altai (7). 1, 5, 6–7, hypopygium in dorsal view; 2, apical part of anal point; 3, apex of gonostylus; 4, gonocoxite and gonostylus in ventral view.
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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.