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3,292 results for “DNA Barcode”
FIGURE 1 in DNA barcoding of new world cicada killers (Hymenoptera: Crabronidae)
FIGURE 1. Geographic distribution of mitochondrial haplotypes for individuals of the three Sphecius species sampled from the USA. Approximate localities for all 54 individuals are shown. (Note: S. spectabilis does not occur in the USA; the two individuals sampled were Argentinean).
FIGURE 4. COX 1 in DNA barcoding of new world cicada killers (Hymenoptera: Crabronidae)
FIGURE 4. COX 1 gene tree resulting from maximum likelihood analysis of the pruned data set, with duplicate Sphecius sequences removed. Bootstrap values greater than 70% are provided above the branches. Haplotype symbols match those used in Fig. 1.
FIGURE 2 in DNA Barcoding: Mixed results for big-headed flies (Diptera: Pipunculidae)
FIGURE 2. Consensus tree of Clistoabdominalis and Nephrocerus relationships inferred from cox1 data (from 799 most parsimonious trees).
FIGURE 1 in DNA Barcoding: Mixed results for big-headed flies (Diptera: Pipunculidae)
FIGURE 1. Neighbour joining tree of Clistoabdominalis and Nephrocerus relationships inferred from cox1 data. Numbers above the branch are bootstrap values. Asterisks indicate branches that are incongruent with respect to previous morphological hypotheses of Skevington (2001, 2005).
FIGURE 4 in DNA Barcoding: Mixed results for big-headed flies (Diptera: Pipunculidae)
FIGURE 4. Consensus tree of Clistoabdominalis relationships inferred from morphological data (reduced taxon dataset to reflect the molecular taxa used in this study; using matrix from Skevington (2001)) (from two most parsimonious trees). Numbers above the branches are Bremer support values.
FIGURE 3 in DNA Barcoding: Mixed results for big-headed flies (Diptera: Pipunculidae)
FIGURE 3. Single successively weighted tree of Clistoabdominalis and Nephrocerus relationships inferred from cox1 data.
FIGURE 5 in Species status of Bombus monticola Smith (Hymenoptera: Apidae) supported by DNA barcoding
FIGURE 5. The character "shape and pubescence of basitarsus in B. lapponicus (5 A) and Bombus monticola (5 B). The line through the diverging transversely directed hair whorls (a), and the maximal width of the basitarsus (b).
FIGURE 6 in Species status of Bombus monticola Smith (Hymenoptera: Apidae) supported by DNA barcoding
FIGURE 6. Neighbor-joining tree (based on the Kimura 2-parameter model) illustrating genetic distances within and among Bombus lapponicus and B. monticola, with B. polaris as an outgroup. Numbers near the nodes indicate bootstrap support. Support values less than 90 are not shown. For each individual, the scientific name, according to morphological characters, are followed by the GenBank accession number and sampling locality.
FIGURE 1 in DNA barcoding confirms the presence of Hydria cervinalis (Scopoli, 1763) in the Iberian Peninsula (Lepidoptera: Geometridae: Larentiinae)
FIGURE 1. Female genitalia of Hydria cervinalis (Scopoli) with minor differences noted. Genital prep. Slide G760.
Figure 6 in Taxonomy and molecular phylogeny of the Neotropical genus Atlantoscia (Oniscidea, Philosciidae): DNA barcoding and description of two new species
Figure 6. Histogram of pairwise distances divergence for Atlantoscia species (A) and automatic partition of the cytochrome c oxidase subunit I data set of seven Atlantoscia species (B) as generated by automatic barcode gap discovery. The lower distance values (<0.05) represent intraspecific divergences, whereas higher distance values (> 0.12) represent interspecific divergences. Dist., distance.
Figure 4 in Taxonomy and molecular phylogeny of the Neotropical genus Atlantoscia (Oniscidea, Philosciidae): DNA barcoding and description of two new species
Figure 4. Atlantoscia meloi sp. nov., male paratype MZUSP 32628. A, pereopod 1; B, pereopod 7; C, uropod; D, genital papilla; E, pleopod 1; F, pleopod 2; G, pleopod 3 exopod; H, pleopod 4 exopod; I, pleopod 5 exopod.
Figure 3 in Taxonomy and molecular phylogeny of the Neotropical genus Atlantoscia (Oniscidea, Philosciidae): DNA barcoding and description of two new species
Figure 3. Atlantoscia meloi sp. nov., male holotype MZUSP 32627. A, habitus, dorsal view; male paratype MZUSP 32628; B, scale-seta; C, cephalothorax, frontal view; D, noduli laterales coordinates d/c; E, noduli laterales coordinates b/c; F, epimera 4; G, pleonite 4 and 5, pleotelson; H, antennule; I, antenna; J, left mandible; K, right mandible; L, maxillula; M, maxilla; N, maxilliped.
Figure 1 in Taxonomy and molecular phylogeny of the Neotropical genus Atlantoscia (Oniscidea, Philosciidae): DNA barcoding and description of two new species
Figure 1. Atlantoscia inflata sp. nov., male holotype MZUSP 32622. A, habitus, dorsal view; male paratype MZUSP 32623; B, scale-seta; C, cephalothorax, frontal view; D, cephalothorax, dorsal view; E, noduli laterales coordinates d/c; F, noduli laterales coordinates b/c; G, pleotelson; H, antennula; I, antenna; J, left mandible; K, right mandible; L, maxillula, outer endite; M, maxilla; N, maxilliped.
Figure 5. Consensus tree obtained from a 640 in Taxonomy and molecular phylogeny of the Neotropical genus Atlantoscia (Oniscidea, Philosciidae): DNA barcoding and description of two new species
Figure 5. Consensus tree obtained from a 640-bp alignment of cytochrome c oxidase subunit I gene sequences of the Atlantoscia species by using Bayesian inference. Numbers at nodes represent posterior probabilities values (1 000 000 generations). Clades highlighted by grey shading in the tree correspond to nominal species of Atlantoscia. Letters (a–k) represent the different individuals of terrestrial isopods analysed.
Figure 2 in Taxonomy and molecular phylogeny of the Neotropical genus Atlantoscia (Oniscidea, Philosciidae): DNA barcoding and description of two new species
Figure 2. Atlantoscia inflata sp. nov., male paratype MZUSP 32623. A, pereopod 1; B, pereopod 7; C, uropod; D, genital papilla; E, pleopod 1; F, pleopod 2; G, pleopod 3 exopod; H, pleopod 4 exopod; I, pleopod 5 exopod.
FIGURE 6 in Eucosma subvittana (Staudinger 1892) stat. rev., a Mediterranean species resurrected by DNA barcodes and morphology (Lepidoptera, Tortricidae)
FIGURE 6. Forewing of Eucosma subvittana ♂. A. Elements of the wing pattern. B. Venation. The subcostal vein is located in the area of the costal fold and is not visible in the photograph. Legend: (3–9) pairs of costal strigulae; (cf) costal fold; (ifs) interfascial spot; (mf) median fascia; (mif) median interfascia; (oc) ocellus; (pmf) postmedian fascia; (pmif) postmedian interfascia; (pt) pre-terminal fascia; (ptif) pre-terminal interfascia; (sbf) sub-basal fascia; (sbif) sub-basal interfascia.
FIGURE 4. Sternite 7 in Eucosma subvittana (Staudinger 1892) stat. rev., a Mediterranean species resurrected by DNA barcodes and morphology (Lepidoptera, Tortricidae)
FIGURE 4. Sternite 7 and sterigma, diagnostic characters of E. subvittana and E. cana. A. E. subvittana, Crete, Agia Galini, 25.iv.2022. B. E. cana, Bulgaria, Sredna Gora Mts, 720 m, 28.vii.2012. Note the different ratio length/width of sternite 7 and lateral incisions of sterigma (arrows). Scale bar 500 μm, both to scale.
FIGURE 3 in Eucosma subvittana (Staudinger 1892) stat. rev., a Mediterranean species resurrected by DNA barcodes and morphology (Lepidoptera, Tortricidae)
FIGURE 3. Eucosma subvittana (A–C) and E. cana (D–H), female genitalia. A. subvittana, Crete, Agia Galini, 25.iv.2022. B. E. subvittana, Crete, Georgioupoli, 4.v.2022. C. E. subvittana, Crete, Agia Galini, 25.iv.2022. D. E. cana, Bulgaria, Sredna Gora Mts, 720 m, 28.vii.2012. E. E. cana, Bulgaria, Shumen distr., 20.vi.2007. F. E. cana, Bulgaria, Petrich distr., 14.vi.2010. G. E. cana, Bulgaria, Emen Gorge, 16.vii.2011. H. E. cana, Bulgaria, Belasitsa Mts, 600 m, 28.viii.2010. Scale bar 500 μm, all to scale.
FIGURE 2 in Eucosma subvittana (Staudinger 1892) stat. rev., a Mediterranean species resurrected by DNA barcodes and morphology (Lepidoptera, Tortricidae)
FIGURE 2. Eucosma subvittana (A–G) and E. cana (H–R), male genitalia. A. E. subvittana, Crete, Agia Galini, 25.iv.2022. B. E. subvittana, ibid. C. subvittana, ibid. D. E. subvittana, Crete, Georgioupoli, 4.v.2022. E. E. subvittana ibid. F. subvittana, ibid. G. E. subvittana, ibid. H. E. cana, Bulgaria, Balchik, 27.vi.2013. I. E. cana, Bulgaria, Petrich distr., 5.v.2013. J. E. cana, Bulgaria, Slavyanka Mts, 1550 m, 23.vii.2010. K. E. cana, Bulgaria, Yambol reg., 29.vi.2012. L. E. cana, Bulgaria, Belasitsa Mts, 1500 m, 6.vii.2010. M. E. cana, Turkey, Iğneada, 6.vii.2009. N. E. cana, Bulgaria, Black Sea coast, Karadere, 4.vii.2013. O. E. cana, Bulgaria, Pirin Mts, 1850 m, 8.viii.2013. P. E. cana, Bulgaria, Black Sea coast, Veleka, 6.vii.2013. Q. E. cana, Bulgaria, Pirin Mts, 1950 m, 21.vii.2010. R. E. cana, Bulgaria, Black Sea coast, Kranevo, 23.vii.2011. Scale bar 500 μm, all to scale.
FIGURE 1. Eucosma subvittana and E. cana. A in Eucosma subvittana (Staudinger 1892) stat. rev., a Mediterranean species resurrected by DNA barcodes and morphology (Lepidoptera, Tortricidae)
FIGURE 1. Eucosma subvittana and E. cana. A. Lectotype ♂of E. subvittana, Tunisia. B–I Wing pattern. B. E. subvittana lectotype. C. E. subvittana paralectotype ♂, Spain, Barcelona (left wings mirrored digitally). D. E. subvittana paralectotype ♀, Italy, Sardinia. E. E. subvittana ♀, Crete, Agia Galini, 25.iv.2022. F. E. subvittana ♀, ibid. G. E. subvittana ♂, ibid. H. E. subvittana ♂, Crete, Georgioupoli, 4.v.2022. I. E. cana ♂, Bulgaria, Pirin Mts, 1730 m, 17.vii.2010. J. E. cana ♀, Bulgaria, Sredna Gora Mts, 720 m, 28.vii.2012. K. E. cana ♂, Bulgaria, Black Sea coast, 6.vi.2013. L. E. cana ♂, Bulgaria, Yambol reg., 29.vi.2012. Scale bars 5 mm, B–L to scale; A–D (c) Museum für Naturkunde Berlin, with permission.
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.