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2,848 results for “sequence data”
FIGURE 10–15 in A new species of Philophylla Rondani (Diptera: Tephritidae: Trypetini) from New Caledonia, recognized based on female postabdominal structure and molecular sequence data
FIGURE 10–15. Philophylla millei, sp.n.; 10. epandrium and surstyli, posterior view (proctiger removed); 11. epandrium, surstyli, and proctiger, lateral view; 12. glans, dorsolateral view (inset at 8x main figure); 13. female postabdomen, ventral and dorsal views (insets at 8x main figures); 14. spermatheca; 15. aculeus, ventral and dorsolateral views.
FIGURE 9. Phylogram obtained with RAxML and the combined mitochondrial sequence data. Bootstrap values above nodes. See Table 1 in Stictonectes rebeccae sp. n. from the Iberian Peninsula, with notes on its phylogenetic position (Coleoptera, Dytiscidae)
FIGURE 9. Phylogram obtained with RAxML and the combined mitochondrial sequence data. Bootstrap values above nodes. See Table 1 for localities.
FIGURES 14–22 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURES 14–22. Servaea incana (cont.) 14 known and predicted distribution; 15–20 male palp (15–17 'light' male and 19–20 'dark' male; 21 anterior view of geniculate male chelicera; 22 anterior view of rounded female chelicera. Scale: 0.2 mm
FIGURES 39–46. Servaea spinibarbis. 39–40 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURES 39–46. Servaea spinibarbis. 39–40 dorsal view (39 female, 40 male); 41–42 female genitalia (41 dorsal view of cleared specimen, 42 ventral view of external characteristics); 43–45 male palp (43 ventral view, 44 anterior lateral view, 45 posterior lateral view); 46 known and predicted distribution. Scale: total body 1 mm; remainder 0.2 mm.
FIGURES 23–30. Servaea melaina n in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURES 23–30. Servaea melaina n. sp. 23–24 dorsal view (23 female, 24 male); 25–26 female genitalia (25 dorsal view of cleared specimen, 26 ventral view of external characteristics); 27–29 male palp (27 ventral view, 28 anterior lateral view, 29 posterior lateral view); 30 known and predicted distribution. Scale: total body 1 mm; remainder 0.2 mm
FIGURES 47–54. Servaea villosa. 47–48 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURES 47–54. Servaea villosa. 47–48 dorsal view (47 female, 48 male); 49–50 female genitalia (49 dorsal view of cleared specimen, 50 ventral view of external characteristics); 51–53 male palp (51 ventral view, 52 anterior lateral view, 53 posterior lateral view); 54 known and predicted distribution. Scale: total body 1 mm; remainder 0.2 mm.
FIGURE 5 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURE 5. Phenetic tree resulting from Neighbour Joining analysis inferred from the COI data-set. Branch lengths are proportional to genetic differences (see scale bar).
FIGURES 6–13. Servaea incana. 6–9 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURES 6–13. Servaea incana. 6–9 dorsal view (6 'light' female and 7 'dark' female; 8 'light' male and 9 'dark' male); 10– 14 female genitalia (10 dorsal view of cleared holotype of S. incana, 11 ventral view of external characteristics of holotype of S. incana; 12 dorsal view of cleared lectotype of S. vestita, 13 ventral view of external characteristics of lectotype of S. vestita). Scale: total body 1 mm; remainder 0.2 mm.
FIGURE 3 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURE 3 General anatomy of the female reproductive tract showing the two patterns observed. A. Servaea incana, S. vestita, S. villosa and S. zabkai. B. S. melaina, S. narraweena and S. spinibarbis.
FIGURE 4 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURE 4. Spinning biplot for the males of S. spinibarbis (X), S. narraweena (Z) and S. melaina (Y) based on eight morphological characters showing the second and fourth dimensions.
FIGURES 31–38. Servaea narraweena n in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURES 31–38. Servaea narraweena n. sp. 31–32 dorsal view (31 female, 32 male); 33–34 female genitalia (33 dorsal view of cleared specimen, 34 ventral view of external characteristics); 35–37 male palp (35 ventral view, 36 anterior lateral view, 37 posterior lateral view); 38 known and predicted distribution. Scale: total body 1 mm; remainder 0.2 mm.
FIGURE 2 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURE 2. Observed and BIOCLIM predicted distributions of the genus Servaea based on all available specimens.
FIGURE 1 in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURE 1. Examples of intraspecific variation in abdomen patterning. A–D four specimens of S. villosa collected at the same location and showing similar COI sequences (Fig. 5); E–F dark and light forms of S. incana.
FIGURES 55–58. Servaea zabkai n in Revision of Australian jumping spider genus Servaea Simon 1887 (Aranaea: Salticidae) including use of DNA sequence data and predicted distributions
FIGURES 55–58. Servaea zabkai n. sp. 55 dorsal view (female); 55–57 female genitalia (56 dorsal view of cleared specimen, 57 ventral view of external characteristics); 58 known distribution. Scale: total body 1 mm; remainder 0.2 mm.
FIGURE 5 in Two new species of Siconema (Drilonematoidea: Ungellidae) parasitic in earthworms in Vietnam, and systematic relationships as inferred from ribosomal sequence data
FIGURE 5. Phylogram of the relationships between nematodes of the genera Siconema and Homungella tonkinense from Pu Mat National Park and other nematode genera based on the partial sequence of D2D3 expansion segment of LSU rDNA. A—Tree obtained with maximum parsimony and distance (NJ) optimality criteria. Number of bootstrap replicates = 10000; of 718 total characters: 276 characters are constant, 127 variable characters are parsimony-uninformative, number of parsimonyinformative characters = 315. Bootstrap values of MP and NJ analysis (in parentheses) are indicated near appropriate nodes. B—Maximum likelihood analysis, model selected - Model selected: GTR+G+I; – lnL = 6293.3618, Number of bootstrap replicates = 100, Bootstrap values are indicated near appropriate nodes.
FIGURE 4 in Two new species of Siconema (Drilonematoidea: Ungellidae) parasitic in earthworms in Vietnam, and systematic relationships as inferred from ribosomal sequence data
FIGURE 4. Siconema diducuncinum sp. n. SEM images. Female. A: hooks, dorsal view; B: stomatal tube, en face view; C: caudal organ, dorsal view; D: caudal organ, lateral view; E: margin of sub-lateral field. Scale bars in µm.
FIGURE 2 in Two new species of Siconema (Drilonematoidea: Ungellidae) parasitic in earthworms in Vietnam, and systematic relationships as inferred from ribosomal sequence data
FIGURE 2. Siconema ovicallosum sp. n. SEM images. Female. A, B: head hooks, latero-dorsal view; C: caudal organ, ventral view; D: amphid, lateral view. Scale bars in µm.
FIGURE 3 in Two new species of Siconema (Drilonematoidea: Ungellidae) parasitic in earthworms in Vietnam, and systematic relationships as inferred from ribosomal sequence data
FIGURE 3. Siconema diducuncinum sp. n. A & B, female & male in copula; C–H, female; I, J, male. C: pharynx region; C: posterior region; D: hooks; and G, I: hooks into D, G, I: hooks; J: posterior region. Except I, all in lateral position. Scale bars in µm.
FIGURE 1 in Two new species of Siconema (Drilonematoidea: Ungellidae) parasitic in earthworms in Vietnam, and systematic relationships as inferred from ribosomal sequence data
FIGURE 1. Siconema ovicallosum sp. n. A–G, female; H–K, male. A: entire worm; B: pharynx region; C: posterior region; D: vulval region; E: eggs; F: tail tip; G: hooks; H: entire worm; I: pharynx region; J: cloaca; K: caudal organ. All in lateral position. Scale bars in µm.
FIGURE 40 in A revision of the genus Lepidobrya Womersley (Collembola: Entomobryidae) based on morphology and sequence data of the genotype
FIGURE 40. Neighbor-Joining phylogram (below) and pairwise distance matrix (above) using patristic (P) distance for haplotypes of Lepidobrya mawsoni from Macquarie I. (MI) and Auckland Islands (Adams I.; ADI), and Lepidobrya spp. from Campbell I. (CI) and Antipodes I. (AI). Inset images: Lepidobrya sp. from Adam I. (left) and L. mawsoni from Macquarie I. (right). Codes, haplotypes (number of sequences with same haplotype in parentheses), locations and GenBank accessions refer to Table 1.
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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.