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446 results for “taxonomic position”
FIGURE 6 in Taxonomic position of Eothenomys wardi (Arvicolinae: Cricetidae) based on morphological and molecular analyses with a detailed description of the species
FIGURE 6. Consensus Bayesian inference tree (50% majority rule) resulting from analyses of the mitochondrial gene encoding cytochrome b. Numbers represent nodal support inferred from Bayesian posterior probabilities, ML bootstrap, MP bootstrap, respectively. Asterisk indicates that MP bootstrap value is <50%.
FIGURE 3 in Taxonomic position of Eothenomys wardi (Arvicolinae: Cricetidae) based on morphological and molecular analyses with a detailed description of the species
FIGURE 3. Comparison of the glans penis of five Oriental voles of genus Eothenomys, subgenus Anteliomys (A: E. wardi; B: E. chinensis; C: E. custos; D: E. proditor; E: E. olitor). Numbered views are 1: glans; 2: midventral cut; 3: urethral lappet; 4: dorsal papilla.
FIGURE 2 in Taxonomic position of Eothenomys wardi (Arvicolinae: Cricetidae) based on morphological and molecular analyses with a detailed description of the species
FIGURE 2. Skull and teeth of Eothenomys wardi. A: dorsal view; B: ventral view; C: lateral view; D: lower jaw (ventral); E: lower jaw (lateral). Upper molar teethrows of E. wardi: F: M3 with five inner and five outer angles; G: M3 with five inner and six outer angles; H: M3 with five inner and four outer angles; I: M3 with five inner and three outer angles; J: M3 with four inner and five outer angles; K: M3 with four inner and four outer angles.
FIGURE 5 in Taxonomic position of Eothenomys wardi (Arvicolinae: Cricetidae) based on morphological and molecular analyses with a detailed description of the species
FIGURE 5. Consensus Bayesian tree (50% majority rule) resulting from analyses of the combined dataset of the genes encoding cytochrome b and cytochrome oxidase subunit 1. Numbers represent node supports inferred from Bayesian posterior probability, ML bootstrap, MP bootstrap, respectively. Asterisk indicates that MP bootstrap value is <50%.
Fig. 1 in Clarification of the Status ofTrechus comasiHernando (Coleoptera: Carabidae: Trechini) from the Iberian Peninsula and Its Taxonomic Position
Fig. 1. Male genitalia (median lobe and parameres in left lateral view): a) Trechus schaufussi comasi; b) Trechus schaufussi vivesi from Puerto de Piqueras (Logroño); c) Trechus schaufussi pandellei from Peña La Cabra (Madrid); d) Trechus schaufussi schaufussi from Cueva A Cova, Bermun (Lugo). Scale bar = 0.2 mm.
Fig. 3 in The taxonomic position of brooding limpets of the genera Erginus and Rhodopetala (Patellogastropoda)
Fig. 3. Bayesian inference analysis of COI sequences for the genus Erginus. Numerals above or below the branches are Bayesian posterior probabilities and bootstrap values of the ML and NJ analysis, respectively. The species of the genus Erginus from the Russian Far East included in this analysis are highlighted in bold. Synapomorphies: a, brooding pouch; b, subcephalic tentacle ('penis').
Fig. 2 in The taxonomic position of brooding limpets of the genera Erginus and Rhodopetala (Patellogastropoda)
Fig. 2. Bayesian phylogenetic tree of Patellogastropoda for combined molecular data (concatenated sequences from 12S, 16S, and COI mtDNA). Numerals at nodes are posterior probability values and bootstrap values (BS) of the ML analysis, respectively. Values of BS <70% are not shown.
Fig. 1 in The taxonomic position of brooding limpets of the genera Erginus and Rhodopetala (Patellogastropoda)
Fig. 1. Limpet specimens used in this analysis. (A, B) Rhodopetala rosea, Simushir Island (shell length 6 mm); (C) Erginus sybariticus, Erineyskaya Inlet (shell length 19 mm); (D, I) Erginus moskalevi, Taui Bay, head with "penis" (arrow) (D) and shell (I) (shell length 9 mm); (E, F) Erginus puniceus, typical forms, Sea of Japan (shell length 5 mm); (G) Erginus puniceus, "sybariticus" form, Sea of Japan (shell length 6 mm); (H) Erginus apicinus, Simushir Island (shell length 7 mm).
Subspecies and Distribution. P. g. gymnocercus Fischer, 1814 — subtropical grasslands of NE Argentina, SE Brazil, Paraguay, and Uruguay. Pg. antiquus Ameghino, 1889 — Pampas grasslands, monte scrublands, and open woodlands of C Argentina. P. g. lordi Massoia, 1982 — Chaco-montane tropical forest ecotone in NW Argentina (Salta & Jujuy Provinces). The subspecific status of the Pampas Fox from Entre Rios Province in Argentina remains unclear, and there are no data regarding the taxonomic position of Bolivian foxes. in Canidae
Subspecies and Distribution. P. g. gymnocercus Fischer, 1814 — subtropical grasslands of NE Argentina, SE Brazil, Paraguay, and Uruguay. Pg. antiquus Ameghino, 1889 — Pampas grasslands, monte scrublands, and open woodlands of C Argentina. P. g. lordi Massoia, 1982 — Chaco-montane tropical forest ecotone in NW Argentina (Salta & Jujuy Provinces). The subspecific status of the Pampas Fox from Entre Rios Province in Argentina remains unclear, and there are no data regarding the taxonomic position of Bolivian foxes.
Subspecies and Distribution. P. g. gymnocercus Fischer, 1814 — subtropical grasslands of NE Argentina, SE Brazil, Paraguay, and Uruguay. P.g. antiquus Ameghino, 1889 — Pampas grasslands, monte scrublands, and open woodlands of C Argentina. P. g. lordi Massoia, 1982 — Chaco-montane tropical forest ecotone in NW Argentina (Salta & Jujuy Provinces). The subspecific status of the Pampas Fox from Entre Rios Province in Argentina remains unclear, and there are no data regarding the taxonomic position of Bolivian foxes. in Canidae
Subspecies and Distribution. P. g. gymnocercus Fischer, 1814 — subtropical grasslands of NE Argentina, SE Brazil, Paraguay, and Uruguay. P.g. antiquus Ameghino, 1889 — Pampas grasslands, monte scrublands, and open woodlands of C Argentina. P. g. lordi Massoia, 1982 — Chaco-montane tropical forest ecotone in NW Argentina (Salta & Jujuy Provinces). The subspecific status of the Pampas Fox from Entre Rios Province in Argentina remains unclear, and there are no data regarding the taxonomic position of Bolivian foxes.
New taxonomic position and neotype designation for the conoidean gastropod Pleurotoma patagonica d'Orbigny, 1841
<p>Neotype specimen (MACN-In43983) collected alive at Las Grutas, San Antonio Oeste, Río Negro Province,<br> Argentina, in 8 m depth.</p>
FIGURE 35 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURE 35. Number of known specimens of Feltia carolia (Schaus, 1929) comb. nov. (n=53) by month of collection, from 1922 to 2014; light gray: records from the literature and specimens in entomological collections; dark gray: specimens collected in light traps from 1998 to 1999 (see text for details).
FIGURES 13–17 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURES 13–17. Feltia carolia (Schaus, 1929) comb. nov., labial palpus, thorax and appendages. 13. Labial palpus, lateral. 14. Thorax, dorsal. 15. Forewing, upper side. 16. Male wing coupling. 17. Female wing coupling. Arrows point out frenula, retinacula and patches of enlarged scales. Scale bars: Fig. 13 = 0.5 mm, Fig. 14= 2 mm, Fig. 15= 5 mm, Figs. 16–17 = 0.5 mm.
FIGURES 7–12 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURES 7–12. Feltia carolia (Schaus, 1929) comb. nov., head and appendages. 7. Head, anterior. 8. Frons tubercle, anterior. 9. Head, lateral. 10. Male antenna in its widest part, ventral. 11. Male antenna distal segments, lateral. 12. Female antenna, lateral. Scale bars: Fig. 7 = 1 mm, Fig. 8 = 0.2 mm, Figs 9–11 = 0.5 mm, Fig. 12 = 0.2 mm.
FIGURES 26–27 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURES 26–27. Feltia carolia (Schaus, 1929) comb. nov., male genitalia, lateral. 26. genitalia with right valva removed. 27. Valva. Scale bars: Fig. 26 = 1 mm, Fig. 27 = 0.5 mm.
FIGURES 1–6 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURES 1–6. Feltia carolia (Schaus, 1929) comb. nov., dorsal and ventral habitus.1–2. Male, Lagoa Vermelha, Rio Grande do Sul, Brazil (MCTP 9536). 3–4 Male, Lagoa Vermelha, Rio Grande do Sul, Brazil (MCTP 9538). 5–6. Female, Cambará do Sul, Rio Grande do Sul, Brazil (CLAM 00021). Scale bar = 1 cm.
FIGURE 34 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURE 34. Feltia carolia (Schaus, 1929) comb. nov., spatial distribution. Black dots indicate localities of standardized samplings; yellow stars, the presence of F. carolia comb. nov., and the question mark, the state of the type locality; green shaded areas indicates roughly areas of southern Brazilian Campos, according to Overbeck et al. (2007).
FIGURES 32–33 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURES 32–33. Holotype of Porosagrotis carolia Schaus, 1929. 32. Reproduction from Schaus' original description plates. 33. Holotype located by J. Bolling Sullivan (see text for details). Arrows point out features indicating that this is the same specimen illustrated by Schaus (1929).
FIGURES 18–23 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURES 18–23. Feltia carolia (Schaus, 1929) comb. nov., labial palpus and legs. 18. Labial palpus, lateral. 19. Foreleg, lateral. 20. Mid leg, lateral. 21. Hind leg, lateral. 22. Foreleg tarsus, anterior. 23. Foreleg epiphysis, lateral.
FIGURES 28–31 in Resurgence of a forgotten Southern Brazil endemic species: taxonomic position, redescription, and spatio-temporal distribution of Porosagrotis carolia Schaus, 1929 (Lepidoptera: Noctuidae: Noctuinae)
FIGURES 28–31 Feltia carolia (Schaus, 1929) comb. nov., male and female genitalia, lateral. 28–29. Male genitalia. 28. Male genitalia with aedeagus and right valva removed. 29. Aedeagus with vesica everted, posterior side up. 30–31. Female genitalia. 30. Ventral. 31. Lateral.
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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.