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Fig. 26. Araripemys barretoi Price, 1973 in EVOLUTION OF THE SIDE-NECKED TURTLES: THE FAMILIES BOTHREMYDIDAE, EURAXEMYDIDAE, AND ARARIPEMYDIDAE
Fig. 26. Araripemys barretoi Price, 1973. Partially restored skull based on THUg 1357, THUg 1907, AMNH 24453, and AMNH 24454. A, dorsal; B, ventral; C, lateral. For more detailed view of area around foramen posterius canalis carotici interni, see figure 276D. [F. Ippolito, del.]
Fig. 10 in EVOLUTION OF THE SIDE-NECKED TURTLES: THE FAMILIES BOTHREMYDIDAE, EURAXEMYDIDAE, AND ARARIPEMYDIDAE
Fig. 10. Comparisons of ventral views of skulls of the family Bothremydidae, tribe Bothremydini. A, Foxemys mechinorum; B, Polysternon provinciale; C, Zolhafah bella; D, Rosasia soutoi; E, Araiochelys hirayamai, n. gen. et sp.; F, Bothremys arabicus; G, Bothremys cooki; H, Bothremys maghrebiana, n. sp.; I, Bothremys kellyi, n. sp.; J, Chedighaii hutchisoni, n. gen. et sp.; K, Chedighaii barberi, n. gen. [A. Venjara and various artists, del.]
Fig. 13 in EVOLUTION OF THE SIDE-NECKED TURTLES: THE FAMILIES BOTHREMYDIDAE, EURAXEMYDIDAE, AND ARARIPEMYDIDAE
Fig. 13. Map showing locality of the family Bothremydidae, tribe Cearachelyini (Cearachelys); family Euraxemydidae (Euraxemys); family Araripemydidae (Araripemys); and family Brasilemydidae (Brasilemys) in Brazil. Only generically identifiable specimens are indicated. [A. Venjara, del.]
Fig. 24. Pelusios castaneus, AMNH 10062 in EVOLUTION OF THE SIDE-NECKED TURTLES: THE FAMILIES BOTHREMYDIDAE, EURAXEMYDIDAE, AND ARARIPEMYDIDAE
Fig. 24. Pelusios castaneus, AMNH 10062 (modified from Gaffney, 1979a). Dorsal view of horizontally sectioned skull. [L. Meeker, del.]
Fig. 23. Pelusios castaneus, AMNH 10062 in EVOLUTION OF THE SIDE-NECKED TURTLES: THE FAMILIES BOTHREMYDIDAE, EURAXEMYDIDAE, AND ARARIPEMYDIDAE
Fig. 23. Pelusios castaneus, AMNH 10062 (modified from Gaffney, 1979a). Dorsal view of horizontally sectioned skull. [L. Meeker, del.]
Fig. 33. Araripemys barretoi Price, 1973. THUg 1907. A in EVOLUTION OF THE SIDE-NECKED TURTLES: THE FAMILIES BOTHREMYDIDAE, EURAXEMYDIDAE, AND ARARIPEMYDIDAE
Fig. 33. Araripemys barretoi Price, 1973. THUg 1907. A, dorsal; B, ventral; C, right lateral; D, anterior; E, left lateral; F, posterior. [E. Ullo, del.]
Fig. 15 in EVOLUTION OF THE SIDE-NECKED TURTLES: THE FAMILIES BOTHREMYDIDAE, EURAXEMYDIDAE, AND ARARIPEMYDIDAE
Fig. 15. Map of Morocco showing main outcrops yielding turtles. Near the coast are the late Cretaceous–Paleogene phosphate exposures, and southeast along the border are the Cenomanian Kem Kem exposures (after Dutheil, 1999a, 1999b; and Noubhani and Cappetta, 1997). [A. Venjara, del.]
Fig. 5 in Feminization tendency of Hawksbill Turtles (Eretmochelys imbricata) in the western Yucatán Peninsula, Mexico
Fig. 5. Relationship between temperature and sex ratio. The red dotted line denotes the pivotal temperature according to the TSD software and calibrated with histology of gonads from dead Hawksbill hatchlings.
Fig. 3 in Feminization tendency of Hawksbill Turtles (Eretmochelys imbricata) in the western Yucatán Peninsula, Mexico
Fig. 3. Hatching success of Eretmochelys imbricata on the beaches of Chenkan, Punta Xen, and Celestún, Yucatán Peninsula (Mexico).
Fig. 2 in Feminization tendency of Hawksbill Turtles (Eretmochelys imbricata) in the western Yucatán Peninsula, Mexico
Fig. 2. (a) Incubation temperatures of Eretmochelys imbricata, during the TSP, on the beaches of Chenkan, Punta Xen, and Celestún, during two incubation periods (June–July and August–September). The dotted line indicates the pivotal temperature. (b) Percentages of females in the monitored nests on the nesting beaches of the western Yucatán Peninsula (Mexico). The red asterisks show where the differences were significant (p <0.05) among nests, by beach.
Fig. 1 in Feminization tendency of Hawksbill Turtles (Eretmochelys imbricata) in the western Yucatán Peninsula, Mexico
Fig. 1. Geographical locations of the monitored nests of Eretmochelys imbricata, as well as the beaches studied and their images. 1) Celestún, 2) Punta Xen, and 3) Chenkan.
Fig. 4 in Feminization tendency of Hawksbill Turtles (Eretmochelys imbricata) in the western Yucatán Peninsula, Mexico
Fig. 4. Representative histology sections of gonads from dead Hawksbill hatchlings in the monitored nests. (a) Testis (100 µm), (b) Ovary (100 µm), (c) Testis (20 µm), (d) Müllerian ducts of male (20 µm), (e) Ovary (20 µm), (f) Müllerian ducts of female (20 µm). The dotted areas in (a) and (b) indicate the sites of the higher magnifications shown in (c) and (e), where the dotted line indicates the cortex, M indicates the medulla region, and C indicates the cortex region.
Fig. 2 in Impacts of a highway on the population genetic structure of a threatened freshwater turtle (Glyptemys insculpta)
Fig. 2. Estimate of short-term gene flow among populations north and south of Interstate Highway 88 (gray bar) and the Susquehanna River (dashed line) shown with 95% confidence intervals. Circle size reflects relative sample size. Values inside of circles represent the contribution of gene flow from within populations.
Fig. 1. Study area. Interstate Highway 88 in Impacts of a highway on the population genetic structure of a threatened freshwater turtle (Glyptemys insculpta)
Fig. 1. Study area. Interstate Highway 88 (I-88) and the Susquehanna River (Susq.) bisect Otsego and Delaware Counties, New York, USA.
Fig. 2 in Geographical and elevational distributions of the Black-breasted Leaf Turtle, Geoemyda spengleri (Gmelin, 1789) (Testudines: Geoemydidae)
Fig. 2. Relationship between elevation and latitude of reliable Geoemyda spengleri occurrences with low positional error (n = 33).
Fig. 1 in Geographical and elevational distributions of the Black-breasted Leaf Turtle, Geoemyda spengleri (Gmelin, 1789) (Testudines: Geoemydidae)
Fig. 1. Geographical distribution of Geoemyda spengleri based on hydrologic unit compartments (Level 10 HUCs). Positions of the reliable occurrences (n = 77) are approximate, as the coordinates were generalized by rounding (see text for details). Multiple symbols may overlap and appear as a single point. Not all localities are shown to protect particularly sensitive populations. Inset: Adult male Geoemyda spengleri from Guangxi Autonomous Region, China. Photo by Jeffrey E. Dawson.
Fig. 1 in Do observed sex ratios in a turtle community in northern Indiana vary over 35 years (1979-2014)?
Fig. 1. Proportions of males for (A) Chelydra serpentina, (B) Chrysemys picta, (C) Graptemys geographica, (D) Sternotherus odoratus, and (E) Trachemys scripta elegans over the course of the 37-year study in Dewart Lake, Indiana, USA. Open circles indicate years when <10 individuals were captured, and closed circles indicate years when ≥ 10 individuals were captured. The vertical dashed lines indicate the transition from non-fyke net years to fyke net years, and the horizontal dashed lines represent a 1:1 sex ratio (i.e., 50% males).
Fig. 2 in Turtles of Colombia: an annotated analysis of their diversity, distribution, and conservation status
Fig. 2. Cluster diagram comparing turtle community species compositions of the five macro-drainages in Colombia.
Fig. 1. A–C in The first case of Spiroxys contortus in European pond turtle (Emys orbicularis) in the wild in Poland
Fig. 1. A–C Female of Spiroxys contortus (Gnathostomatidae) parasite of wild Emys orbicularis (European pond turtle) in Poland. A. Anterior region (a) median lobe with a tooth; (b) the lip with submedian papilla; (c) cuticular spine on the margin of the collar; B. Posterior region with a conical tip (arrow) C. Vulvar opening (arrow).
Fig. 3 in Discovery of chemosynthesis-based association on the Cretaceous basal leatherback sea turtle from Japan
Fig. 3. SEM images of invertebrate fossils associated with the basal leatherback sea turtle Mesodermochelys sp. from Nio Creek, Nakagawa, Japan, Campanian, Upper Cretaceous. A–C. Abyssochrysoid gastropod Provanna cf. nakagawensis Kaim, Jenkins, and Warén, 2008a (A, NMV50-M01; B, NMV50-M04; C, NMV50-M09). D.?Abyssochrysoid gastropod (NMV50-M11). E. Trochoid gastropod Hikidea cf. yasukawensis (Kaim, Jenkins, and Hikida, 2009) (NMV50-M03). F.?Campaniloid gastropod?Gyrodes sp. (NMV50-M10). G.?Cephalaspid gastropod (NMV50-M06). H, I. Thyasirid bivalve Thyasira tanabei Kiel, Amano, and Jenkins, 2008 (H, NMV50-M02; I, NMV50-M12). Scale bars 500 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)
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.