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.
33
datasets available to search
ShareScore release 0.7.1
Dataset results
33 results for “Boidae”
Figure 5 in Morphological trends and genetic divergence in anacondas, genus Eunectes Wagler, 1830 (Serpentes: Boidae)
Figure 5. Phylogenetic tree (left) and haplotype network (right) based on the analysis of mitochondrial Cytochrome b sequences. Bayesian inference tree is shown; the nodes with the posterior probability support below 0.5 are shown as unresolved. Above the nodes, posterior probabilities are shown, and bootstrap values inferred from ML analysis with RaxML if exceeding 50. The boxes indicate 95% HPD intervals for the estimated split times. Haplotype/ allele networks: size of the pies are proportional to the number of individuals/ alleles.
Figure 1 in Morphological trends and genetic divergence in anacondas, genus Eunectes Wagler, 1830 (Serpentes: Boidae)
Figure 1. Sampling locations of Eunectes spp. Sampling locations of specimens used for genetic analysis pointed, and the individual sample numbers, indicated in supplementary table S1 and figs 4 and 5 shown in frames. Outlines depict ranges of the Eunectes species, after the IUCN Red List website: green – E. murinus, orange – E. deschauenseei, yellow – E. notaeus, red – E. beniensis.
Figure 4 in Morphological trends and genetic divergence in anacondas, genus Eunectes Wagler, 1830 (Serpentes: Boidae)
Figure 4. Assignment of the 20 individuals in the RAPD dataset to genetic groups using STRUCTURE analyses for K = 3 optimal number of clusters (L(K) = -914.64). Each individual is represented by a column, which is partitioned in K coloured segments that represent the genetically based membership to each species cluster. The labels below indicate the species and specimens labels used in the RAPD (and partly sequencing) analysis.
Figure 3 in Morphological trends and genetic divergence in anacondas, genus Eunectes Wagler, 1830 (Serpentes: Boidae)
Figure 3. Dendrogram (between-group average linkage) based on the squared Euclidean distance between population centroids based on the first two discriminant scores.
Figure 2 in Morphological trends and genetic divergence in anacondas, genus Eunectes Wagler, 1830 (Serpentes: Boidae)
Figure 2. Principal Component analyses based on 23 morphological traits, depicting the separation of E. murinus from the other three species of Eunectes along the first two PCA axes.
Figure 3 in A dicephalic yellow anaconda snake, Eunectes notaeus (Serpentes: Boidae), from Southern Pantanal, Brazil
Figure 3. Heads and necks of dicephalic Eunectes notaeus (CEUCH 6024) from Corumbá, MS, Brazil.
Figure 2 in A dicephalic yellow anaconda snake, Eunectes notaeus (Serpentes: Boidae), from Southern Pantanal, Brazil
Figure 2. Ventral view of dicephalic Eunectes notaeus (CEUCH 6024) from Corumbá, MS, Brazil.
Figure 2 from: Martin-Solano S, Toulkeridis T, Addison A, Pozo-Rivera WE (2016) Predation of Desmodus rotundus Geoffroy, 1810 (Phyllostomidae, Chiroptera) by Epicrates cenchria (Linnaeus, 1758) (Boidae, Reptilia) in an Ecuadorian Cave. Subterranean Biology 19: 41-50. https://doi.org/10.3897/subtbiol.19.8731
Figure 2 - A Rainbow Boa (Epicrates cenchria) maintains the prey in the mouth with the interest to make sure it is dead, elongated thumb with three typical bearings evidences the species of the Common Vampire Bat (Desmodus rotundus) B Epicrates cenchria releases the dead prey C Epicrates cenchria turns around Desmodus rotundus having the first attempt to swallow prey D Evidence of sex-age category of the prey, being a female adult; 2e: Starting the second constriction F After the second constriction Epicrates cenchria swallows almost entirely Desmodus rotundus G, H Prey is almost completely eaten except for the wings, but the three typical bearings can be seen on the thumb of Desmodus rotundus.
Figure 1 from: Martin-Solano S, Toulkeridis T, Addison A, Pozo-Rivera WE (2016) Predation of Desmodus rotundus Geoffroy, 1810 (Phyllostomidae, Chiroptera) by Epicrates cenchria (Linnaeus, 1758) (Boidae, Reptilia) in an Ecuadorian Cave. Subterranean Biology 19: 41-50. https://doi.org/10.3897/subtbiol.19.8731
Figure 1 - Location of Napo Province and Tena as well as Castillo cave. Map of Castillo Cave in which circles represent sites where boas have been observed in the floor and crosses where boas have been observed close to the roof of the cave. The easternmost site is the one described in the text.
Figure 6 in Reevaluation of the taxonomic status of sand boas of the genus Eryx (Daudin, 1803) (Serpentes: Boidae) in northeastern Iran
Figure 6. The general view of E. miliaris: a) dorsal and b) ventral view.
Figure 7 in Systematic revision of the early Miocene fossil Pseudoepicrates (Serpentes: Boidae): implications for the evolution and historical biogeography of the West Indian boid snakes (Chilabothrus)
Figure 7. Close up of the zygosphene of different boine vertebrae. Note the differences between the median lobe and lateral lobe of the specimens. A, mid-precloacal vertebra of Chilabothrus angulifer (AMNH 77596); B, Chilabothrus inornatus (MCZ 2341); C, mid-precloacal vertebra of 'barbouri' (= P. stanolseni) material (MCZ 1978); D, mid-precloacal vertebra of P. stanolseni (MCZ 2417); E, mid-precloacal vertebra of Epicrates cenchria (MCN PV DR 002); and F, mid-precloacal vertebra of Epicrates crassus (MCN PV DR 003). Abbreviations are given in the relevant section. Scale bar: 2 mm.
Figure 8 in Systematic revision of the early Miocene fossil Pseudoepicrates (Serpentes: Boidae): implications for the evolution and historical biogeography of the West Indian boid snakes (Chilabothrus)
Figure 8. Specimens of Thomas Farm compared with the extant Boa constrictor. Note differences concerning the zygosphene roof and the neural spine morphology. All vertebrae are in dorsal view. A, midtrunk vertebra of 'barbouri' MCZ 1978; B, midtrunk vertebra of B. constrictor MCN. D. 344; C, midtrunk vertebra of P. stanolseni MCZ 2417; D, anterior vertebra paratype of P. stanolseni MCZ 1977; E, anterior vertebra of B. constrictor; F, midtrunk paratype vertebra of P. stanolseni MCZ 1977; G, midtrunk vertebra of P. stanolseni AMNH 7627. Abbreviations are given in the relevant section. Scale bar: 5 mm.
Figure 1 in A dicephalic yellow anaconda snake, Eunectes notaeus (Serpentes: Boidae), from Southern Pantanal, Brazil
Figure 1. Dorsal view of dicephalic Eunectes notaeus (CEUCH 6024) from Corumbá, MS, Brazil.
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.