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FIGURE 20. Rodhainyssus longipilis Fain, 1959, male. A in Phylogeny and systematics of the endoparasitic astigmatid mites (Acari: Sarcoptiformes) of mammals: families Gastronyssidae, Lemurnyssidae, and Pneumocoptidae
FIGURE 20. Rodhainyssus longipilis Fain, 1959, male. A, dorsal view; B, aedeagus. Scale bars: 100 µm (A), 50 µm (B).
FIGURE 28. Rodhainyssus balantiopteryx Fain, 1967 in Phylogeny and systematics of the endoparasitic astigmatid mites (Acari: Sarcoptiformes) of mammals: families Gastronyssidae, Lemurnyssidae, and Pneumocoptidae
FIGURE 28. Rodhainyssus balantiopteryx Fain, 1967, female (A–D). A, ventral view; B, postero-ventral projections of gnathosoma; C, tarsus I in ventral view; D, trochanter III in ventral view. Male (E–G). E, ventral view; F, aedeagus; G, tarsus I in ventral view. Scale bars: 100 µm (A, E), 50 µm (B–D, F, G).
FIGURE 17. Rodhainyssus nycteris Fain, 1967 in Phylogeny and systematics of the endoparasitic astigmatid mites (Acari: Sarcoptiformes) of mammals: families Gastronyssidae, Lemurnyssidae, and Pneumocoptidae
FIGURE 17. Rodhainyssus nycteris Fain, 1967, female (A, B). A, ventral view; B, postero-ventral projections of gnathosoma. Male (C, D). C, ventral view; D, aedeagus. Scale bars: 100 µm (A, C), 50 µm (B, D).
FIGURE 29 in Phylogeny and systematics of the endoparasitic astigmatid mites (Acari: Sarcoptiformes) of mammals: families Gastronyssidae, Lemurnyssidae, and Pneumocoptidae
FIGURE 29. Rodhainyssus saccopteryx Bochkov et OConnor, sp. nov., female (A–C). A, ventral view; B, postero-ventral projections of gnathosoma; C, trochanter III in ventral view. Male (D, E). D, ventral view; E, aedeagus. Scale bars: 100 µm (A, D), 50 µm (B, C, E).
FIGURE 34. Opsonyssus asiaticus Fain, 1959 in Phylogeny and systematics of the endoparasitic astigmatid mites (Acari: Sarcoptiformes) of mammals: families Gastronyssidae, Lemurnyssidae, and Pneumocoptidae
FIGURE 34. Opsonyssus asiaticus Fain, 1959, female (A–D). A, ventral view; B, propodonotal shield; C, apodemes I fused with propodonotal shield; D, bursa copulatrix. Male (E, F). E, opisthosoma in ventral view; F, aedeagus. Scale bars: 100 µm (A, E), 50 µm (B–D, F).
Figure 8 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 8. Mistralestes arcensis gen. et sp. nov. from La Cairanne Highway, holotype MHNAix-PV.2008.1.1, right dentary fragment with p5 to m3 and roots of p4. A, lingual; B, labial; C, occlusal (stereoscopic) views; mental foramina are highlighted by black dotted lines; D, p5; E, m1 in occlusal view.
Figure 7 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 7. Valentinella vitrollense from Vitrolles-La Plaine. UM-VLP-3, probable right?P3 or?P4; A, occlusal; B, labial stereoviews. UP-VLP-07-04, fragment of a left upper molar; C, occlusal; D, distal stereoviews. Yellow, white, and red dotted lines indicate, respectively, the broken parts of the crown, the slope of the protocone, and the lingual slope of the hypocone on the postcingulum.
Figure 3 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 3. Valentinella vitrollense from Vitrolles-La Plaine, UP-VLP-10-01, left dentary fragment with roots of m1−m3. A, occlusal; B, labial views. Note the posteriorly inclined distal root of m3, mesially indented by a thin bony lamina.
Figure 2 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 2. Lithological logs and biochronological/magnetostratigraphical correlations of the Vitrolles-La Plaine and La Cairanne Highway sections. MAAST., Maastrichtian.
Figure 4 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 4. Valentinella vitrollense from Vitrolles-La Plaine, holotype UM-VLP-2, right dentary with p4−m3. A, twodimensional virtual slice images acquired by X-ray computed microtomography (μCT); three-dimensional reconstruction using μCT scan images; B, labial; C, mesial views.
Figure 10 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 10. Mistralestes arcensis gen. et sp. nov. from La Cairanne Highway, reconstruction of the holotype MHNAix- PV.2008.1.1, using three-dimensional X-ray computed microtomography scan images, in occlusal view showing the main structures of the molars, notably the gradual compression of the trigonid from m1 to m3.
Figure 9 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 9. Mistralestes arcensis gen. et sp. nov. from La Cairanne Highway, reconstruction of the holotype MHNAix-PV.2008.1.1, using three-dimensional X-ray computed microtomography scan images. A, occlusal (stereoscopic); B, lingual; C, labial views; mental foramina are highlighted by black dotted lines and yellow circles.
Figure 6 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 6. Valentinella vitrollense from Vitrolles-La Plaine, holotype UM-VLP-2, occlusal stereoview of p4−m1.
Figure 5 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 5. Valentinella vitrollense from Vitrolles-La Plaine, holotype UM-VLP-2, right dentary with p4−m3. A, labial; B, occlusal views; C, interpretative drawing in occlusal view, salmon-coloured areas indicate preserved patches of enamel.
Figure 1 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 1. Geological map and location of the Late Cretaceous sites Vitrolles-La Plaine (VLP), Vitrolles Couperigne (VCO) and La Cairanne Highway (LCH) in the Aix-en-Provence Basin.
Figure 2 in Global phylogeography of the genus Capreolus (Artiodactyla: Cervidae), a Palaearctic meso-mammal
Figure 2. Phylogeny of Capreolus obtained from the Bayesian analysis of 54 mtDNA haplotypes (925 nt) under the TIM3 model of sequence evolution. Branch length units are expected substitutions per site. Bayesian posterior probability and bootstrap values for NJ, MP and ML, respectively, are shown for the main haplogroups (inner nodes) shared by all trees. Only values over 50% are indicated. A mitochondrial CR sequence of Cervus elaphus was used as an outgroup.
Figure 1. Distribution ranges for C. capreolus and C in Global phylogeography of the genus Capreolus (Artiodactyla: Cervidae), a Palaearctic meso-mammal
Figure 1. Distribution ranges for C. capreolus and C. pygargus, and the area of putative current sympatry between the rivers Volga and Don (Hewison & Danilkin, 2001). The question mark indicates the area of further putative presence of C. pygargus. Collection sites are as follows: (FRA) France, (SWE) Sweden, (DEN) Denmark, (AUS) Austria, (ITA) Central-southern Italy, (E-AL) Eastern Italian Alps, (N-SP) Northern Spain, (CS-SP) Central-southern Spain, (GRE) Greece, (ROM) Romania, (POL) Poland, (LIT) Lithuania, (CRI) Crimea, (W-RUS) Western Russia, (KYR) Kyrgyzstan, (NE-CH) North-eastern China, (CE-CH) Central-eastern China, (E-RUS) Eastern Russia. Multiple sampling sites for one population are indicated by the same acronym. See Table 1 for details on precise sampling locations and sample sizes.
Figure 3 in Global phylogeography of the genus Capreolus (Artiodactyla: Cervidae), a Palaearctic meso-mammal
Figure 3. Median-joining network based on the data set of C. capreolus and C. pygargus haplotypes. Branch lengths are approximately scaled to the number of nucleotide substitutions occurring along the branches. White circles represent missing haplotypes. The main haplogroups are indicated by curved lines. The number of mutations are reported only for the main haplogroups.
Figure 12 in A new spalacolestine mammal from the Early Cretaceous Jehol Biota and implications for the morphology, phylogeny, and palaeobiology of Laurasian 'symmetrodontans'
Figure 12. Phylogenetic relationship and temporal and geographical distributions of spalacotheriids. The strict consensus of six equally most parsimonious trees (tree length = 54; consistency index = 0.6296; homoplasy index = 0.3704; retention index = 0.8; rescaled consistency index = 0.5037). Detailed tree descriptions and character transformations between nodes are provided in Supporting Information (Appendix S1). The chronological framework is based on the International Chronostratigraphic Chart (v. 2014/02; Cohen et al., 2013). Distributional data for genera are from Kielan-Jaworowska et al. (2004), Sweetman (2008), and Meng (2014).
Figure 10 in A new spalacolestine mammal from the Early Cretaceous Jehol Biota and implications for the morphology, phylogeny, and palaeobiology of Laurasian 'symmetrodontans'
Figure 10. Dentary morphology of Lactodens sheni gen. et sp. nov. (holotype, HG-M016). A, medial view of the posterior portion of the dentary; B, pterygoid fossa (pocket) in dorsal view; C, medial surface of the dentary showing no trace of the Meckelian groove; D, reconstruction of the lower jaw in medial view (the reconstructed teeth are shown in grey lines). Abbreviations: apc, anterior portion of the pterygoid fossa; arc, anterior ridge of the coronoid process; cmf, crest that defines the anterodorsal margin of the masseteric fossa; cp, coronoid process; ct, coronoid tubercle; md, mandibular condyle; mf, mandibular foramen; mrp, medial ridge of the pterygoid fossa; pc-b, pterygoid crest (broken); pf-d, pterygoid fossa in dorsal view; ppc, posterior portion of the pterygoid fossa.
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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.