Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
229
datasets available to search
ShareScore release 0.9.0
Dataset results
229 results for “Metatheria”
FIG. 7 in New material of Incadelphys antiquus (Pucadelphyda, Metatheria, Mammalia) from the early Palaeocene of Bolivia reveals phylogenetic affinities with enigmatic North and South American metatherians
FIG. 7. — Incadelphys antiquus, MHNC 13906: A, lateral view of the right lower tooth row; B, medial view of the right lower tooth row; C, lateral view of the left lower tooth row; D, medial view of the left lower tooth row. Scale bar: 5 mm.
FIG. 3 in New material of Incadelphys antiquus (Pucadelphyda, Metatheria, Mammalia) from the early Palaeocene of Bolivia reveals phylogenetic affinities with enigmatic North and South American metatherians
FIG. 3. — Incadelphys antiquus, MHNC 13906, partial skull with dentaries: A, ventral view; B, dorsal view; C, left lateral view; D, right lateral view; E, right dentary in lateral view; F, left dentary in lateral view. Scale bar: 5 mm.
FIG. 2 in New material of Incadelphys antiquus (Pucadelphyda, Metatheria, Mammalia) from the early Palaeocene of Bolivia reveals phylogenetic affinities with enigmatic North and South American metatherians
FIG. 2. — Incadelphys antiquus, holotype, YPFB Pal 6251 (SEM photo of cast): A, left maxillary with P1-P2, dP3, M1-M2; M3, missing the protocone, erupting; B, right maxillary with dP3, M1-M2, M3 erupting; C, right dentary with p3, dp3, m1-m2, m3 missing the trigonid, m4 in crypt. Scale bar: 1 mm.
FIG. 13 in New material of Incadelphys antiquus (Pucadelphyda, Metatheria, Mammalia) from the early Palaeocene of Bolivia reveals phylogenetic affinities with enigmatic North and South American metatherians
FIG. 13. — Phylogenetic relationships of Incadelphys among other metatherians: strict consensus tree of four equally parsimonious trees resulting from the analysis of the data matrix of 287 osteological characters and 32 taxa with equally weighted homoplastic characters (Tree length [L] = 889; Consistency index [CI] = 0.4; Retention index [RI] = 0.606); the Bremer index is given at branches in black numbers below nodes.
FIGURE 15 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 15. Allometric shape variation in the M1-3 of Sparassodonta as shown by the Procrustes-transformed coordinates. (A) Superimposed differences in allometric shape at the smallest (black) and largest (gray) extremes of the size range of the dataset. (B-C) Deformation grids showing differences in allometric shape variation between the sample average and (B) minimum size and (C) maximum size. Differences between loci are magnified by a factor of 2 to better illustrate patterns of variation.
FIGURE 6 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 6. Inter-locus variation in the M1-3 of Sparassodonta as shown by the Procrustes-transformed coordinates of the geometric morphometric analysis. (A) Superimposed differences between tooth loci in the Procrustes-transformed coordinates of the average shape of M1 (large gray circles) and M3 (small black circles). The other three images show deformation grids from the average shape of all 114 examined specimens relative to the average shape of (B) M1, (C) M2, and (D) M3. Differences between loci are magnified by a factor of 3 to better illustrate patterns of variation.
FIGURE 7 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 7. Plot of shape data (as regression score; see Drake and Klingenberg, 2008 for definition) versus natural log centroid size for all teeth of known locus in the trigon + talon dataset, showing the allometric signal in the data and the slight clustering of the teeth by locus. The extreme outlier in centroid size is the M3 of Proborhyaena gigantea, which is very large compared to the other teeth examined.
FIGURE 11 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 11. Similar to Figure 10, but with the trigon-only dataset. Plot of the first two canonical variates (CVs) of the all-taxon, trigon-only discriminant analysis with tooth locus coded by symbol and incorrectly-classified specimens uncolored. Convex hulls represent morphospace occupied by each tooth locus.
FIGURE 3 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 3. Right upper molar row of Borhyaena tuberata (MACN-A 6203), showing the change in absolute and relative sizes of the paracone and metacone from M1-3 and the relatively little inter-locus variation in stylar shelf morphology. Scale equals 5 mm.
FIGURE 2. Right M2 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 2. Right M2 of Acyon myctoderos (UATF-V-000926), a specimen close to the mean shape of the entire dataset, showing the morphological features of interest (A) and geometric morphometric landmarks and semilandmarks (B) used in this study. Anatomical abbreviations: alc, anterolabial cingulum (often extensive and continuous with preparaconular crista); cc, centrocrista; ef, ectoflexus; mco, metaconule; met, metacone; msl, metastylar lobe of stylar shelf; par, paracone; pco, paraconule; pmc, postmetacrista; ppc, preparacrista; pro, protocone; psl, parastylar lobe of stylar shelf; ss, stylar shelf; StA, stylar cusp A; StB, stylar cusp B. In B, squares represent fixed landmarks and circles represent semilandmarks.
FIGURE 16 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 16. (A) TPS deformation grid showing allometric shape variation extrapolated beyond the lower bounds of the present dataset by a factor of 3 compared to (B) a photograph of the M3 of Pediomys elegans (modified from Davis, 2007: fig. 3c). Scale equals 1 mm.
FIGURE 14 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 14. Visualization of shape changes in two Miocene borhyaenids that show little change between tooth loci. (A) M1 (gray) and M3 (black) of Borhyaena tuberata (MACN-A 6404) and (B) M2 (gray) and M3 (black) of Arctodictis sinclairi (AMNH 27909).
FIGURE 13. Superimposed landmark diagrams visualizing shape changes between M1 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 13. Superimposed landmark diagrams visualizing shape changes between M1 (large gray circles) and M3 (small black circles) of selected non-borhyaenid sparassodonts: (A) Allqokirus australis (MNHC 8267), (B) Patene coluapiensis (AMNH 28448), (C) Procladosictis anomala (MACN-A 10327), (D) Hondadelphys fieldsi (UCMP 37960), (E) Sipalocyon gracilis (AMNH 9254), (F) Lycopsis longirostrus (UCMP 38061), (G) Prothylacynus patagonicus (MACN-A 707), (H) Thylacosmilus atrox (MMP 1443).
FIGURE 8 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 8. Plot of teeth by locus on the first two principal components for the all-taxon, trigon + talon dataset, colorcoded as pertaining to either Borhyaenoidea, Hathliacynidae, or basal Sparassodonta.
FIGURE 10 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 10. Plot of the first two canonical variates (CVs) of the all taxon, trigon + talon discriminant analysis, with tooth locus coded by symbol and incorrectly-classified specimens uncolored. Convex hulls represent morphospace occupied by each tooth locus.
FIGURE 9 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 9. Plot of teeth by locus on the first two principal components for the all-taxon, trigon + talon dataset, colorcoded by relative grinding area (RGA) for that particular taxon. Gray symbols represent taxa for which RGA could not be measured.
FIGURE 17 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 17. Comparison of the TPS deformation grids for the M3 of Procladosictis anomala (A) and the mean M3 shape for the entire sample exaggerated by a factor of 3 (B), both contrasted against the mean tooth shape for the entire sample.
FIGURE 5 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 5. Plot of the first two principal components (PCs) of variation of the Procrustes-transformed landmark dataset for the all-taxon, trigon-only analysis along with deformation grids representing the extreme changes in shape on each axis relative to the mean shape of the entire sample. Upper molar loci are plotted by color, with unknown specimens (M?) in black.
FIGURE 1 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 1. Right upper molar rows (M1-3) of three representative sparassodonts in occlusal view: (A) Patene coluapiensis (AMNH 28448); (B) Sipalocyon gracilis (AMNH 9254, left reversed), and (C) Cladosictis patagonica (MACN-A 5950), showing how the teeth at a certain position in the tooth row (tooth locus) in one taxon can resemble a different tooth position in another taxon (e.g., the M3 of C. patagonica resembles both the M2 of Sipalocyon gracilis and the M1 of Patene coluapiensis). Anterior is to the right in all images. Scales equal 5 mm.
FIGURE 4 in Identifying tooth position of isolated teeth of sparassodonts (Mammalia: Metatheria) using geometric morphometrics
FIGURE 4. Plot of the first two principal components (PCs) of variation of the Procrustes-transformed landmark dataset for the all-taxon, trigon + talon dataset along with deformation grids representing the extreme changes in shape on each axis relative to the mean shape of the entire sample. Upper molar loci are plotted by color, with unknown specimens (M?) in black. Circled region in the upper right corner of the graph represents specimens of the Tiupampa taxa Allqokirus and Mayulestes.
ScienceDex guides
Understand access before you commit
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.