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1,696 results for “DNA sequence”
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 1. Bayesian phylogenetic tree inferred from SSU gene DNA sequences. Posterior probabilities great than 50 in New Zealand species of the genus Tripyla Bastian, 1865 (Nematoda: Triplonchida: Tripylidae). II: Two new, a known species and key to species
FIGURE 1. Bayesian phylogenetic tree inferred from SSU gene DNA sequences. Posterior probabilities great than 50% are given on appropriate clades. Nematode species, GenBank numbers, locations are listed for each taxon if known.
FIGURE 4. Bayesian tree inferred from LSU gene DNA sequences. Posterior probabilities exceeding 50 in Laimaphelenchus hyrcanus n. sp. (Nematoda: Aphelenchoididae), a new species from northern Iran
FIGURE 4. Bayesian tree inferred from LSU gene DNA sequences. Posterior probabilities exceeding 50% are given on appropriate clades. Nematode species and GenBank accession numbers are listed for each taxon.
FIGURE 1 in A revised classification of the Icteridae (Aves) based on DNA sequence data
FIGURE 1. Phylogeny of the New World blackbirds (Icteridae) inferred from mitochondrial and nuclear DNA sequences of 118 taxa (outgroups not shown)—topology taken from the best tree found under maximum likelihood by Powell et al. (2014; fig. 4); branch lengths estimated in BEAST 1.7.4 (lognormal uncorrelated relaxed clock model for mtDNA, strict clock for nDNA; Drummond et al. 2012) using the same data and mitochondrial partitioning as Powell et al. (2014), but nuclear sequences partitioned by locus. Dashed line marks the threshold used to assign subfamily ranks. Species are listed in the order given by this tree topology and (starting from the deepest node) following the conventions of listing the taxon in the leastdiverse clade first, or for equally diverse clades, the northwestern-most lineage first. However, the ordering of Cacicus haemorrhous, C. oseryi, and C. latirostris was altered to list the two oropendola-like caciques together and last among Cacicus, a sequence that is consistent with the better-supported resolution of relationships among these three taxa inferred from a larger mitochondrial dataset (unpublished).
FIGURE 10 in Taxonomy of the African army ant Dorylus gribodoi Emery, 1892 (Hymenoptera, Formicidae) — new insights from DNA sequence data and morphology
FIGURE 10. Dorsal view of the petiole of a large D. emeryi worker (HW 3.74 mm) from Taï, Ivory Coast.
FIGURE 9 in Taxonomy of the African army ant Dorylus gribodoi Emery, 1892 (Hymenoptera, Formicidae) — new insights from DNA sequence data and morphology
FIGURE 9. Dorsal view of the petiole of a large D. gribodoi worker (HW 2.85 mm) from Taï, Ivory Coast.
FIGURE 1 in A new morphologically cryptic species of Phyllomedusa (Anura: Phyllomedusidae) from Amazonian forests of northern Peru revealed by DNA sequences
FIGURE 1. Principal component analyses of male body measurements of Phyllomedusa camba (black) and P. chaparroi sp. nov. (grey). (A) Representation of the first two components of the raw measurements, and (B) of the residuals of a correlation with SVL.
FIGURE 6 in A new morphologically cryptic species of Phyllomedusa (Anura: Phyllomedusidae) from Amazonian forests of northern Peru revealed by DNA sequences
FIGURE 6. Adult of Phyllomedusa coelestis in life illustrating main differences (iris color, prominence of parotoid glands, dorsal skin texture, and color of lateral and hidden surfaces of limbs) to species of the P. tarsius group sensu this work. Photo by Santiago R. Ron, FaunaWebEcuador, under license CC (BY-NC 3.0).
FIGURE 5 in A new morphologically cryptic species of Phyllomedusa (Anura: Phyllomedusidae) from Amazonian forests of northern Peru revealed by DNA sequences
FIGURE 5. Close-up photos of heads of living individuals of (A) Phyllomedusa boliviana, San Sebastián, Santa Cruz, Bolivia (unvouchered); (B, C) P. camba, CM 157323; (D) P. chaparroi sp. nov., MUBI 13986; (E) P. coelestis, QCAZ 37884; (F) P. tarsius MHNLS 20216; (G) P. trinitatis; (H) P. venusta. Photographs are not to scale and are used to illustrate iris coloration only. Photo (A) by Arne Schulze, (E) by Santiago R. Ron, FaunaWebEcuador, under license CC (BY-NC 3.0), and (G) and (H) by F.J.M. Rojas-Runjaic.
FIGURE 4 in A new morphologically cryptic species of Phyllomedusa (Anura: Phyllomedusidae) from Amazonian forests of northern Peru revealed by DNA sequences
FIGURE 4. Dorsal (A) and ventral (B) views of preserved male holotype of Phyllomedusa chaparroi sp. nov. (MUBI 13986).
FIGURE 3 in A new morphologically cryptic species of Phyllomedusa (Anura: Phyllomedusidae) from Amazonian forests of northern Peru revealed by DNA sequences
FIGURE 3. Male holotype of Phyllomedusa chaparroi sp. nov. (MUBI 13986) in life: (A) dorsolateral view; (B) lateral view (note yellow markings on flank); (C) ventral view; (D) close-up photography of skin on mid-dorsum (note coarsely shagreen skin texture).
FIGURE 3 in Larvae of Ancyronyx Erichson, 1847 (Insecta: Coleoptera: Elmidae) from Sulawesi, using DNA sequences for the assignment of the larval stages
FIGURE 3. Ancyronyx schoedli, larva, dorsal (SEM photographs), A: head and pronotum; B: detail of pronotum with asperities and tubercles; C abdominal segments I–IV; D detail of abdominal segment III with lateral abdominal projections and setae; E: abdominal segment IX; F detail of abdominal apex.
FIGURE 4 in Larvae of Ancyronyx Erichson, 1847 (Insecta: Coleoptera: Elmidae) from Sulawesi, using DNA sequences for the assignment of the larval stages
FIGURE 4. Ancyronyx larvae, dorsal (SEM photographs), A: head and pronotum of A. tobada; B: head and pronotum of A. longiparamerus; C: details of abdominal segments I–III of A. tobada with tubercles, lateral abdominal projections, and setae; D: same aspect of A. longiparamerus; E: abdominal segments IX of A. tobada; F: abdominal segments IX of A. longiparamerus.
FIGURE 5 in Larvae of Ancyronyx Erichson, 1847 (Insecta: Coleoptera: Elmidae) from Sulawesi, using DNA sequences for the assignment of the larval stages
FIGURE 5. Ancyronyx toraja larva, dorsal (SEM photographs), A: head and pronotum; B: details of abdominal segments I–IV with tubercles, lateral abdominal projections, and setae; C: abdominal segment IX; D: detail of abdominal segment IX with 3 pairs of erected setae.
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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
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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.