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Fig. 1 in Endocranium and ecology of Eurotherium theriodis, a European hyaenodont mammal from the Lutetian
Fig. 1. Geographic position of the fossiliferous locality of Egerkingen (A) in northwest Switzerland (B) (redrawn from Becker 2003: fig. 3-1).
Fig. 4 in Endocranium and ecology of Eurotherium theriodis, a European hyaenodont mammal from the Lutetian
Fig. 4. Schematic evolution through time of the size of the endocast of several hyaenodonts. Red, lateral sulcus; green, suprasylvia; blue, ectosylvia. Endocast morphology has been modified from Radinsky (1977) except that of Proviverra typica Rütimeyer, 1862 (Dubied et al. 2019a) and Eurotherium theriodis (Van Valen, 1965) (present paper). The endocasts are not to scale. The phylogenetic relationships are based on Solé et al. (2020).
Fig. 1. A in New diplodocoid sauropod dinosaur material from the Middle Jurassic of European Russia
Fig. 1. A. Geographic location of the Peski locality (star). B. Map of eastern Europe with position of the studied area. C. Stratigraphic column of the Peski Quarry with position of sauropod vertebrae indicated (based on Alekseev et al. 2001 and Tesakova 2003). Abbreviation: Q., Quenstedtoceras.
Fig. 3 in New diplodocoid sauropod dinosaur material from the Middle Jurassic of European Russia
Fig. 3. Diplodocoidea indet. (MCEBC 1100300/215) from Peski, Moscow Province, Russia, Podosinki Formation, Callovian (Middle Jurassic); anterior caudal vertebra, in posterior (A1, B1), anterior (A2, B2), left lateral (A3, B3), right lateral (A4, B4), dorsal (A5, B5), and ventral (A6, B6) views. Photographs A) and interpretative drawings (B). Dark grey, broken area; lighter grey, eroded surface, the lightest grey, matrix. Scale bars 50 mm.
Fig. 2 in New diplodocoid sauropod dinosaur material from the Middle Jurassic of European Russia
Fig. 2. Diplodocoidea indet. (MCEBC 1100300/216) from Peski, Moscow Province, Russia, Podosinki Formation, Callovian (Middle Jurassic); anterior (likely first) caudal vertebra in posterior (A1, B1), anterior (A2, B2), left lateral (A3, B3), right lateral (A4, B4), dorsal (A5, B5), and ventral (A6, B6) views. Photographs (A) and interpretative drawings (B). Dark grey, broken area; lighter grey, eroded surface, the latest lightest grey, matrix. Scale bars 50 mm.
Fig. 2 in Expansion of Harmonia axyridis (Pallas, 1773) (Coleoptera: Coccinellidae) to European part of Russia in 2018 - 2020
Fig. 2. The main color morphs: À – f. succinea (Saransk); B – f. conspicua (Saransk); C – f. succinea (Baikovo); D – f. succinea (Baikovo); E – f. spectabilis (Yalga); F – f. succinea (Yalga).
FIGURE 4 in Exploring the phylogenetic signal in the cranial variation of European populations of grayling (Actinopterygii, Salmonidae)
FIGURE 4 PCA of the grayling dorsal cranium. Wireframe diagrams (magnified 3 times) illustrate shape differences along PC1 and PC2 axes.
FIGURE 1 in Exploring the phylogenetic signal in the cranial variation of European populations of grayling (Actinopterygii, Salmonidae)
FIGURE 1 Grayling populations analyzed. Abbreviations and symbols: filled symbols, wild populations; open symbols, hatchery populations; circles, T. thymallus populations from the Caspian phylogenetic clade (2 – Bugurla and 3 – Kana); square, T. aeliani population from the Adriatic phylogenetic clade (4 – Soča); triangles, T. thymallus populations from the Balkan phylogenetic clade (1 – Lim, 5 – Sava Bohinjka and 6 – Una).
FIGURE 3 in Exploring the phylogenetic signal in the cranial variation of European populations of grayling (Actinopterygii, Salmonidae)
FIGURE 3 Landmarks collected on grayling cranium in A) dorsal, B) ventral, and C) occipital views. See table 2 for definitions of landmarks.
FIGURE 2 in Exploring the phylogenetic signal in the cranial variation of European populations of grayling (Actinopterygii, Salmonidae)
FIGURE 2 Phylogeny of studied grayling populations based on Neighbour-Joining method of A) mtDNA CR haplotypes (indicated in parentheses), including Da23 Sava Bohinjka haplotype – phylogeny mtDNA CR Da23, B) mtDNA CR haplotypes (indicated in parentheses), including Da25 Sava Bohinjka haplotype – phylogeny mtDNA CR Da25, and C) DAS estimated from 12 microsatellite DNA loci – phylogeny microsatellites.
FIGURE 6 in Exploring the phylogenetic signal in the cranial variation of European populations of grayling (Actinopterygii, Salmonidae)
FIGURE 6 PCA of the grayling occipital cranium. Wireframe diagrams (magnified 3 times) illustrate shape differences along PC1 and PC2 axes. Downloaded from Brill.com 06/21/2024 06:29:33PM via Open Access. This is an open access article distributed under the terms of the CC BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
FIGURE 5 in Exploring the phylogenetic signal in the cranial variation of European populations of grayling (Actinopterygii, Salmonidae)
FIGURE 5 PCA of the grayling ventral cranium. Wireframe diagrams (magnified 3 times) illustrate shape differences along PC1 and PC2 axes. Downloaded from Brill.com 06/21/2024 06:29:33PM via Open Access. This is an open access article distributed under the terms of the CC BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
FIGURE 8 in Deciphering "cryptic" nature of European rock-dwelling Pyramidula snails (Gastropoda: Stylommatophora)
FIGURE 8 Linear regressions of selected shell parameters in relation to climatic variables inferred from the population locations. Regression lines, 95% confidence intervals, Adj R2 values and P-values are shown.
FIGURE 6 in Deciphering "cryptic" nature of European rock-dwelling Pyramidula snails (Gastropoda: Stylommatophora)
FIGURE 6 Upper face shell microsculpture on the last whorl in four Pyramidula species; a) P. jaenensis (from left to right): Jijona, Spain (P368), Città di San Marino (P207), P368; b) P. rupestris: Xàtiva, Spain (P374), Encio, Spain (P366), P374; c) P. saxatilis: Villeret, Switzerland (P208), Hochschwab, Austria (P189), P189; d) P. pusilla: Pavlov, Czech Republic (P211), Tatranská Kotlina, Slovakia (P213), P211. Scale bar: 0.1 mm.
FIGURE 7 in Deciphering "cryptic" nature of European rock-dwelling Pyramidula snails (Gastropoda: Stylommatophora)
FIGURE 7 Type specimens of the four studied species: a) Pyramidula jaenensis, lectotype (design. nov.), collection of S. Clessin, no. SMNS-ZI0142153, State Museum of Natural History Stuttgart, Germany. b) P. rupestris, lectotype, Draparnaud colection xxvi 97a, Natural History Museum, Vienna, Austria. c) P. saxatilis lectotype (design. nov.), collection of J. D. W. Hartmann, M562.1, Natural History Museum St. Gallen, Switzerland. d) P. pusilla, neotype, no. 210.996.MO.1, Natural History Museum, Dijon, France.
FIGURE 3 in Deciphering "cryptic" nature of European rock-dwelling Pyramidula snails (Gastropoda: Stylommatophora)
FIGURE 3 Variation in shell shape among genetically analyzed populations of four studied Pyramidula species; P. jaenensis: a) Jijona, Spain (P368); b) Venta del Moro, Spain (P376); c) Cazorla, Spain (P357); d) Gaeta, Italy (P210); e) Città di San Marino (P207); P. rupestris: a) Xàtiva, Spain (P374); b) Meyreuil, France (P373); c) Ollioules, France (P354); d) Encío, Spain (P366); e) Mura, Spain (P375); P. saxatilis: a) Nods, Switzerland (P229); b) Selva di Val Gardena, Italy (P249); c) Lunz am See, Austria (P231); d) Kamnik, Slovenia (P232); e) Hochschwab, Austria (P189); P. pusilla: a) Štramberk, Czech Republic; b) Johnsbach, Austria (P196); c) Liptovské Revúce, Slovakia (P369); d) Tatranská Kotlina, Slovakia (P213); e) Spital am Pyhrn, Austria (P193).
FIGURE 4 in Deciphering "cryptic" nature of European rock-dwelling Pyramidula snails (Gastropoda: Stylommatophora)
FIGURE 4 Position of measured shells along the first two axes of the Canonical Variance Analysis based on the fifteen measured shell parameters and their ratios (supplementary table S2). Numbers of measured shells / populations for each species: P. jaenensis: 29 / 7, P. saxatilis: 50 / 11, P. rupestris: 28 / 9, P. pusilla: 55 / 12. Convex polygons were added to the diagram to highlight the distinction between the four species. Type specimens of the respective species were also used in the analysis (see fig. 7 for details), and are shown in grey color. Variation in selected basic shell parameters among the four species (PP, P. pusilla; PS, P. saxatilis; PR, P. rupestris; PJ, P. jaenensis) is visualized using notched box-and-whisker plots on the right.
FIGURE 2 in Deciphering "cryptic" nature of European rock-dwelling Pyramidula snails (Gastropoda: Stylommatophora)
FIGURE 2 Maximum likelihood (ML) phylogenetic reconstruction based on mitochondrial DNA (COI) and nuclear DNA (concatenated ITS 1 and ITS 2). Support values of> 70% are shown next to the corresponding nodes as follows: NJ, upper left, bold font; MP, upper right, italic font; ML, lower left, normal font, and posterior probabilities of> 95% for BI, lower right, bold italic font. Specimens for which only mtDNA data exist are highlighted in grey color. Specimen placed in a different clade in Downloaded from Brill.com 06/24/2024 12:52:31AM mtDNA and nDNA is marked byviaasterisk Open. Access Symbols. This usedisforaneach openspecies access article correspond to distributed those in fig under. 1. the terms of the CC-BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
FIGURE 1 A in Deciphering "cryptic" nature of European rock-dwelling Pyramidula snails (Gastropoda: Stylommatophora)
FIGURE 1 A. Approximate distribution of the four study species based on genetically verified data in the present study and integrative analysis of Razkin et al. (2017). B. Geographic location of all genetically analyzed Pyramidula populations. Detailed information about the localities are shown in supplementary table S1.
Dataset: Themes European Luxury ETF (FINE) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
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.