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FIGURE 4 in A new species of the fish genus Arctozenus from the Kerguelen Islands, with comments on the lost teeth in adults (Aulopiformes: Paralepididae)
FIGURE 4. Distribution map of Arctozenus australis, including specimens from other cruises.
Text-fig. 1. Trigonid width characteristic of m2 in studied material. The Toringian sample tends to have relatively broader trigonid than the Biharian one. in Metric Characteristics Of Ursid Cheek Teeth From Za Hájovnou Cave (Javoříčko Karst, The Czech Republic) And Its Taxonomical Implication
Text-fig. 1. Trigonid width characteristic of m2 in studied material. The Toringian sample tends to have relatively broader trigonid than the Biharian one.
Text-fig. 4. Skull from Moča (Komárno district, southern Slovakia), details: a) The osteoma on the left side of frontal bone, b) The upper part of the face: the complicated supranasal suture, a pair of tubercles occurring bilaterally next to the supranasal suture, bilateral frontal notches, a small tubercle located above the left infraorbital foramen, the internasal suture, bilaterally visible zygomaxillary tubercles, c) The suprameatal crest, d) The zygomaticofrontal suture and postglenoidale tubercle, e) Os asteriacum on the left side, f) Lesions on the posterior part of the left parietal bone, g) Intensively worn maxillary teeth. in A Late Upper Palaeolithic Skull From Moča (The Slovak Republic) In The Context Of Central Europe
Text-fig. 4. Skull from Moča (Komárno district, southern Slovakia), details: a) The osteoma on the left side of frontal bone, b) The upper part of the face: the complicated supranasal suture, a pair of tubercles occurring bilaterally next to the supranasal suture, bilateral frontal notches, a small tubercle located above the left infraorbital foramen, the internasal suture, bilaterally visible zygomaxillary tubercles, c) The suprameatal crest, d) The zygomaticofrontal suture and postglenoidale tubercle, e) Os asteriacum on the left side, f) Lesions on the posterior part of the left parietal bone, g) Intensively worn maxillary teeth.
Text-fig. 9. Protothymallus elongatus (KRAMBERGER, 1885): Pharyngeal bone (medial view) with attached teeth (SMMGD SaT-620). in Revision Of The Cyprinids From The Early Oligocene Of The České Středohoří Mountains, And The Phylogenetic Relationships Of Protothymallus Laube, 1901 (Teleostei, Cyprinidae, Gobioninae)
Text-fig. 9. Protothymallus elongatus (KRAMBERGER, 1885): Pharyngeal bone (medial view) with attached teeth (SMMGD SaT-620).
Raw data - The impact of the filling technique with two sealers in bulk or associated with gutta-percha on the fatigue behavior and failure patterns of endodontically treated teeth
Open the record for dataset details and reuse information.
FIGURE A9b in Abelisauridae (Dinosauria: Theropoda) from the Late Jurassic of Portugal and dentition-based phylogeny as a contribution for the identification of isolated theropod teeth
FIGURE A9b. (Continued)
Text-fig. 9. Bivariate graph (length/width) of lower teeth of Masillamys mattaueri (HARTENBERGER) from Mas de Gimel (Hérault, France; MP 10, late early Eocene). in A Reevaluation Of The Taxonomic Status Of The Rodent Masillamys Tobien, 1954 From Messel (Germany, Late Early To Early Middle Eocene, 48-47 M.Y.)
Text-fig. 9. Bivariate graph (length/width) of lower teeth of Masillamys mattaueri (HARTENBERGER) from Mas de Gimel (Hérault, France; MP 10, late early Eocene).
Text-fig. 5. Fossils of some mammalian taxa from Gánovce-Hrádok Neanderthal site. a) Castor fiber – mandible dext. et sin. with incisors and p4 – m3 in lateral (mandible) and occlusal (cheek teeth) views (OF 6664–6665); b) Ursus ex gr. spelaeus – right mandible fragment with m1 – m3 in lateral view (P-unnumbered); c) Coelodonta antiquitatis – p2 sin. in buccal view (OF 7188); d) Equus sp. I (cf. taubachensis) – P3 – M3 dext. in travertine, buccal view (P-14302); e) Equus sp. II (cf. germanicus) – Mt sin. fragment in anterior view (OF unnumbered); f) Alces alces – left maxilla fragment with M1 – M3 in occlusal view (P-14303); g) Mammuthus primigenius – m2 sin. in occlusal view (P-14312); h) Palaeoloxodon antiquus – palate fragment with M3 dext. et sin. in occlusal view (P-14281). 50 mm scale is for a–c, 100 mm scale is for d–h. in Revised Floral And Faunal Assemblages From Late Pleistocene Deposits Of The Gánovce-Hrádok Neanderthal Site -Biostratigraphic And Palaeoecological Implications
Text-fig. 5. Fossils of some mammalian taxa from Gánovce-Hrádok Neanderthal site. a) Castor fiber – mandible dext. et sin. with incisors and p4 – m3 in lateral (mandible) and occlusal (cheek teeth) views (OF 6664–6665); b) Ursus ex gr. spelaeus – right mandible fragment with m1 – m3 in lateral view (P-unnumbered); c) Coelodonta antiquitatis – p2 sin. in buccal view (OF 7188); d) Equus sp. I (cf. taubachensis) – P3 – M3 dext. in travertine, buccal view (P-14302); e) Equus sp. II (cf. germanicus) – Mt sin. fragment in anterior view (OF unnumbered); f) Alces alces – left maxilla fragment with M1 – M3 in occlusal view (P-14303); g) Mammuthus primigenius – m2 sin. in occlusal view (P-14312); h) Palaeoloxodon antiquus – palate fragment with M3 dext. et sin. in occlusal view (P-14281). 50 mm scale is for a–c, 100 mm scale is for d–h.
Figure 40. Chrysso nigriceps. A, epiandrous gland spigots. B, epigynum. C, prolateral cheliceral teeth. D, retrolateral teeth. E, F, male prosoma. E, lateral view. F in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 40. Chrysso nigriceps. A, epiandrous gland spigots. B, epigynum. C, prolateral cheliceral teeth. D, retrolateral teeth. E, F, male prosoma. E, lateral view. F, posterior tip. Scale bars: A, 10 Mm; B, C, 50 Mm; D, 20 Mm; E, F, 100 Mm.
Figure 41. Coleosoma floridanum. A, B, male palp. A, ventral. B, ectal. C, chelicera. D, prolateral cheliceral teeth. E, abdominal SPR. F, prosomal stridulatory ridges. G in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 41. Coleosoma floridanum. A, B, male palp. A, ventral. B, ectal. C, chelicera. D, prolateral cheliceral teeth. E, abdominal SPR. F, prosomal stridulatory ridges. G, epigynum. Scale bars: A, B, E–G, 50 Mm; C, 100 Mm; D, 20 Mm.
Interventions to facilitate successful eruption of impacted maxillary incisor teeth due to the presence of a supernumerary: A systematic review and meta-analysis
<p>Dataset for all analyses</p>
Fig. 11 in Bumblebees with big teeth: revising the subgenus Alpigenobombus with the good, the bad and the ugly of numts (Hymenoptera: Apidae)
Fig. 11. Re-interpretation of sequences from Fig. 10, re-drawn with the percentage of nucleotides A and T at codon position 3 (AT3%) for each sequence given after the sequence label. Sequences are classified: (a) in purple – earlier-diverging groups of sequences without unique morphology that often have lower AT3% and shorter sequences that appear to duplicate species as pseudospecies in Fig. 10 – these sequences are interpreted as older, more divergent numts; (b) red – remaining sequences with low AT3% (<95%) – these are interpreted as younger, less divergent numts; (c) orange – sequences from the red group but with the highest AT3% available for some taxa, selected to retain these taxa in the analysis; (d) grey and brown – sequences that are duplicate haplotypes for the black and orange sequences above and often shorter; (e) black – likely orthologous sequences with high AT3% (≥ 95%) and unique haplotypes.
Fig. 10 in Bumblebees with big teeth: revising the subgenus Alpigenobombus with the good, the bad and the ugly of numts (Hymenoptera: Apidae)
Fig. 10. Default interpretation of MrBayes estimate of phylogeny as a metric tree (outgroup B. festivus Smith, 1861, not shown) for the subgenus Alpigenobombus Skorikov, 1914, from COI-like sequences from GenBank and BOLD databases with additions from the authors, analysed with Bayesian Poissontree-process (PTP) models for assessing support for species' gene coalescents by maximum likelihood (PTP scores are shown above branches: scores approaching 1, and where branches change from blue to red, indicates where the most likely species' gene coalescents are identified for 17 candidate species). The scale bar is calibrated in substitutions per nucleotide site. Each sequence is labelled with: sequence length; a morphological taxon name; a code consisting of a sequence identifier from the project database and a specimen identifier from the online database; its country and (for larger countries) state or province of origin.
Fig. 18 in Bumblebees with big teeth: revising the subgenus Alpigenobombus with the good, the bad and the ugly of numts (Hymenoptera: Apidae)
Fig. 18. Most likely ancestral ranges reconstructed for all extant currently recognised species from the dispersal model in Fig. 17, using the model DIVALIKE+J in S-BioGeoBEARS from a sample of 10000 trees from BEAST used to make the estimates of species phylogenies from the six genes in Fig. 16. Letters represent the area units in Fig. 17: letter combinations at terminals show species' current distributions (key lower left show the colour codes used for the principal areas of endemism, other colours not in the key represent combinations of areas e.g., darker green for area combination CDE, with black for a mixture of other areas); letter combinations at nodes show the most likely reconstructions for ancestral distributions; pies at nodes indicate the percentage of solutions for that node in which solutions occur (area E does not occur alone in any ancestor distribution). Numbers on the x-axis are ages in Ma before present. Outgroup shown in grey.
Figure 4. – Lepisosteus platostomus. A-C in Histological characteristics of lower jaw bones and oral teeth of the short nose gar, Lepisosteus platostomus Rafinesque, 1820 (Lepisosteidae)
Figure 4. – Lepisosteus platostomus. A-C: Lower right jaw, transverse sections, natural transmitted light. A: Dentary. Primary bone with canaliculi of Williamson is dominating but with some areas of secondary bone around some vascular cavities. A patch of multilayered ganoine is seen (white asterisk) and the white arrowheads point to small secondary vascular canals. Scale bar = 50 μm. B: Detail of the inset 1 of Fig. 4A showing primary bone (bo) and secondary bone (black asterisks) with canaliculi of Williamson (arrowheads) present in the two types of bone tissues. Scale bar = 50 μm. C: Detail of the inset 2 of Fig. 4A showing several ramified canaliculi of Williamson (arrowheads). Scale bar = 50 μm. D: Scale. Transverse section, natural transmitted light. The bony basal plate (bp) shows the canaliculi of Williamson that are relatively parallel and with very few branchings. (G = ganoine). Scale bar = 200 μm. E: Coronoid bone. Detail of bony tissue showing several osteocytes (arrows) with their canaliculi. Scale bar = 10 μm. F: Coronoid bone. Detail of the base of a tooth (de) showing attachment bone (ab), primary bone (bo) and a vascular canal (vc) surrounded by secondary bone that is discordant (arrowheads) relatively to the primary bone. Scale bar = 5 μm.
Figure 1 in Histological characteristics of lower jaw bones and oral teeth of the short nose gar, Lepisosteus platostomus Rafinesque, 1820 (Lepisosteidae)
Figure 1. – Lepisosteus platostomus. Tomographic image of a fang (black asterisk), and a mid-sized caniniform teeth (white asterisk) in the anterior part of the left lower jaw. The tridimensional reconstruction of the dentary bone and teeth shows three folds in the internal wall of the fang (arrows), which occupy two thirds of the pulp cavity. The space indicated by arrows between the narrow walls of each fold corresponds to external area of the tooth due to the synchronized folding of both the dentine and the collar enamel. The pulp cavity of the second tooth also shows two folds (arrowheads) along the vertical axis of the shaft. Scale bar = 500 μm. (from Germain et al., 2016: fig. 1).
Figure 1 in Histological study of the jaw teeth in the Devonian actinopterygian †Cheirolepis canadensis (Whiteaves)
Figure 1. – Currently accepted phylogenetic position for the osteichthyans that were formerly placed in the paraphyletic "paleoniscoids".
Figure 3 in Comparative histology of caniniform teeth in some predatory ichthyophagous teleosts
Figure 3. – Thyrsites atun (Gemplylidae). A: 3-D reconstruction of the premaxilla (pmx) with a virtual axial section of a caniniform tooth showing vascularized dentine (de) covered with a thin enameloid layer and a cap of enameloid (en); B: Virtual cross section of a caniniform tooth showing dentine folds (white arrows) and many denteones at the dentine; C: Cross section (MNHN-Histos 2340 in natural transmitted light) showing the presence of many denteones (arrowheads) and many branches of odontoblastic canaliculi (oc), some of these branches form highly visible plumes (arrows); D: Detail of the cross section in B (MNHN-Histos 2340 in natural transmitted light) showing the presence of denteones (asterisks), many ramified odontoblastic canaliculi (oc) (white arrowheads) and anastomosed vascular canals (vc). Scale bars: A = 5 mm; B, C = 2 mm; D = 20 μm.
Figure 1 in Comparative histology of caniniform teeth in some predatory ichthyophagous teleosts
Figure 1. – Esox lucius (Esocidae). A: 3-D reconstruction of the premaxilla (pmx) with a virtual axial section of a caniniform tooth showing vascularized dentine (de) covered with a thin enameloid (en) layer; B: Virtual cross section of the tooth caniniform in A having many elementary units, denteone organized around the vascular canals; C: Detail of a longitudinal section (MNHN-Histos 2337 in natural transmitted light) showing many odontoblastic canaliculi (arrowhead) and vascular canals (vc). Scale bars: A = 5 mm; B = 2 mm; C = 50 μm.
Figure 1. – Hyperopisus bebe. A in A histological study of the lingual molariform teeth in Hyperopisus bebe (Mormyridae; Osteoglossomorpha)
Figure 1. – Hyperopisus bebe. A: Dorsal view of the lingual tooth-plate showing the molariform teeth. The three lines indicate the sections of the jaw to obtain the four parts a, b, c and d. B: Axial ground section of a tooth (natural transmitted light). The pulp cavity (PC) is surrounded by a massive core of stratified dentine (De), overlaid by a thick apical cape of enameloid (En). C: Cross section of the basal part of a tooth showing the dentine (De) and the bone of attachment (Bo). The dentine wall shows some more or less sharp evaginations (arrowheads) in the pulp cavity (PC). D: Cross section showing a detail of the dentine layer (De) that looks gently laminated, and the parallel odontoblastic canalicles (arrowheads) that are orthogonal to the wall of the pulp cavity (PC). E: Axial section with a detail of the odontoblastic canalicles, some of which being penetrating (arrows) in the enameloid layer (En). F: Cross section with a detail of the tooth supporting bone that shows some osteocytes and their ramified processes (arrowheads). Scale bars: A = 2.5 mm; B, C = 500 μm; D = 100 μm; E = 50 μm; F = 25 μm.
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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
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.