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3,761 results for “phylogenetic relationships”
FIGURE 2 in Crozetia Davies (Diptera: Simuliidae): redescription of Cr. crozetensis, Cr. seguyi, number of larval instars, phylogenetic relationships and historical biogeography
FIGURE 2. Islands of the Crozet Archipelago. Bathymetric contours in meters. (Adapted from Boudon and Nougier 1982).
FIGURES 15 - 19. Crozetia. 15 in Crozetia Davies (Diptera: Simuliidae): redescription of Cr. crozetensis, Cr. seguyi, number of larval instars, phylogenetic relationships and historical biogeography
FIGURES 15 - 19. Crozetia. 15. Cr. crozetensis, male paratype wing. Scale bar = 0.5 mm. 16. Cr. seguyi, higher magnification of male wing base. Scale bar = 0.5 mm. 17. Cr. seguyi, SEM of last instar larval head, frontal view. Scale bar = 0.1 mm. 18. Cr. crozetensis, LM of last instar larval head, dorsal view. Scale bar = 0.1 mm. 19. Cr. seguyi, LM of last instar larval head, dorsal view. Scale bar = 0.1 mm. Abbreviations: ant - antenna; ca - cephalic apotome; lf - labral fan; hyps - hypostoma; mnd - mandible; mx - maxilla; mxp - maxillary palpus.
FIGURES 13 - 14. Crozetia pupae. Left lateral views. 13 in Crozetia Davies (Diptera: Simuliidae): redescription of Cr. crozetensis, Cr. seguyi, number of larval instars, phylogenetic relationships and historical biogeography
FIGURES 13 - 14. Crozetia pupae. Left lateral views. 13. Cr. crozetensis. 14. Cr. seguyi. Note rudimentary cocoon on posterior. Scale bar = 1.0 mm.
Fig. 2 in Phylogenetic Relationships Of Malayan And Malagasy Pygmy Shrews Of The Genus Suncus (Soricomorpha: Soricidae) Inferred From Mitochondrial Cytochrome B Gene Sequences
Fig. 2. The neighbour-joining (A) and Bayesian (B) trees for Suncus inferred from 1140 base-pairs of cytochrome b gene sequence. Bootstrap and posterior probability values are given above branches.
Fig. 1 in Phylogenetic Relationships Of Malayan And Malagasy Pygmy Shrews Of The Genus Suncus (Soricomorpha: Soricidae) Inferred From Mitochondrial Cytochrome B Gene Sequences
Fig. 1. Male Malayan pygmy shrew (Suncus malayanus) captured in the Cameron Highlands, Pahang, Peninsular Malaysia, in a pitfall trap set on the forest floor. Notice the characteristic large ears and dark fine pelage.
Fig. 3 in A New Species Of The Unicornfish Genus Naso (Teleostei: Acanthuridae) From Taiwan, With Comments On Its Phylogenetic Relationship
Fig. 3. Scanning microscopy image of the mesial face of right sagittal otolith taken from Naso tergus, NMMB-P10816, adult male, 342 mm SL. Scale bar = 1 mm.
Fig. 1 in A New Species Of The Unicornfish Genus Naso (Teleostei: Acanthuridae) From Taiwan, With Comments On Its Phylogenetic Relationship
Fig. 1. Naso tergus, new species: a, Holotype, NMMB-P10808, adult male, 335 mm SL; b, Paratype, NMMB-P10813, adult female, 320 mm SL.
Fig. 4 in A New Species Of The Unicornfish Genus Naso (Teleostei: Acanthuridae) From Taiwan, With Comments On Its Phylogenetic Relationship
Fig. 4. Phylogenetic trees of Naso species using combined DNA data (ETS2, 16S and Cyt b): a, Topology by ML analysis and bootstrap values at the branches; b, Topology by Bayesian analyses and posterior probabilities at the branches. Numbers refer to the sub-clades: 1 for the N. annulatus sub-clade, 2 for the N. brevirostris sub-clade, 3 for the N. elegans sub-clade, 4 for the N. maculatus sub-clade, and 5 for the N. tergus sub-clade. Black and open squares indicate the foraging modes.
Fig. 6 in The Taxonomy And Phylogenetic Relationships Of Species In The Bactrocera Musae Complex Of Fruit Flies (Diptera: Tephritidae: Dacinae) In Papua New Guinea
Fig. 6. Neighbour joining tree showing relationships between CO1 haplotypes from species in the Bactrocera musae complex. Values at nodes are for 1000 bootstrap replicates of the maximum likelihood calculations using the Kimura two-parameter model of sequence evolution (left) and Bayesian posterior probability (right). Clade A = B. musae, Clade B = B. rufivitta, Clade C = B. contermina. Note: the numbers at the branch tips represent the field collection codes given to individual specimens.
Fig. 7 in The Taxonomy And Phylogenetic Relationships Of Species In The Bactrocera Musae Complex Of Fruit Flies (Diptera: Tephritidae: Dacinae) In Papua New Guinea
Fig. 7. Diagram showing clustering of individuals at (A) the highest hierarchical level of structuring in the Bactrocera musae complex using STRUCTURE, and (B) the sub-group structuring into two further clusters of the individuals from the red cluster in A. Vertical bars represent individuals and colours denote the proportion of ancestry from each cluster based on eight microsatellite loci. Note at the highest level (A), individuals are clearly assigned to either the B. musae or the 'others' cluster. At the next level (B), individuals from the 'others' cluster are assigned to either the B. rufivitta cluster (red) or the B. contermina cluster (green). Note: The numbers below the vertical bars represent the field collection codes given to individual specimens.
FIG. 18 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 18. Strict consensus of six most parsimonious trees generated in a phylogenetic analysis of ctenodactyloid interrelationships. See text for discussion.
FIG. 17 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 17. Mandibles and teeth of Chenomys orientalis. A, V17805.4, right p4; B, V17805.1, right m1–3; C, V17805.4, occlusal view of a right mandible with p4; D, V17805.3, occlusal view of a right mandible with m3; E, V17805.4, labial view of a right mandible with p4; F, V17805.2, occlusal view of a right mandible with m2–3; G, V17805.1, occlusal view of a right mandible with m1–3; H, V17805.1, labial view. A–B, C–F, and G–H each to common scale.
FIG. 15 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 15. Mandibles of Advenimus ulungurensis in occlusal view. A, V16499, a left mandible fragment with p4–m3; B, V16506, a left mandible fragment with p4–m3; C, V16499, labial view; D, V16506, labial view. A–B and C–D each to common scale.
FIG. 12 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 12. Cheek teeth of Yongshengomys extensus in occlusal view. A, V16504.4, right DP4; B, V16504.1, left M1 (or M2; holotype); C, V16504.25, right M1 (or M2).
FIG. 10 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 10. Tamquammys longus (V16505). A, ventral view; B, dorsal view; C, right lateral view; D, occlusal view of the right DP4–M3. A–C are to the same scale.
FIG. 8 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 8. Comparisons of molar tooth dimensions (in mm) between T. wilsoni and T. robustus (T. wilsoni in triangle and T. robustus in circle).
FIG. 6 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 6. Partial skull and mandibles of Tamquammys robustus. A–C, V17778.1, dorsal, ventral and left lateral views of the skull; D–E, V17772.7, lingual and labial views of the right mandible; F, V17772.2, labial view of the left mandible; G, V17778.1, left DP4–M2 (with the maxillary bone photographically removed). All are to the same scale except G.
FIG. 7 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 7. Cheek teeth of Tamquammys robustus in occlusal view. A, V17779.127, left P4; B, V17779.167, right P4; C, V17779.309, left M1; D, V17779.353, right M1; E, V17779.534, left M2; F, V17779.591, right M2; G–H, V17779.621, V17779.625, left M3; I, V17779.3, left P3; J, V17779.30, right P3; K, V17779.65, left DP4; L, V17779.95, right DP4; M, V17780.75, right p4; N, V17780.42, left p4; O, V17780.2, left dp4; P, V17780.28, right dp4; Q–R, V17780.108, V17780.125, left m1; S, V17780.220, left m2; T, V17780.310, right m2; U, V17780.360, left m3; V, V17780.404, right m3.
FIG. 4 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 4. Cheek teeth of Tamquammys wilsoni in occlusal view. A, V17793.201, left P4; B, V17793.303, right P4; C–D, V17793.307, V17793.369, left M1; E, V17793.556, left M2; F, V17793.663, right M2; G, V17793.696, left M3; H, V17793.172, left DP4; I, V17793.180, right DP4; J–K, V17793.9, V17793.80, left P3; L, V17794.4, left dp4; M, V17794.36, right dp4; N, V17794.37, left p4; O, V17794.69, right p4; P, V17794.128, left m1; Q, V17794.179, right m1; R–S, V17794.245, V17794.292, left m2; T, V17794.458, left m3; U, V17794.538, right m3.
FIG. 14. A, right m1 in New ctenodactyloid rodents from the Erlian Basin, Nei Mongol, China, and the phylogenetic relationships of Eocene Asian ctenodactyloids
FIG. 14. A, right m1 or m2 of Yuomys sp. A (V17805); B, right M3 of Yuomys sp. B (V17806); C, right m3 of Yuomys sp. C (V17807).
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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.