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.
907
datasets available to search
ShareScore release 0.9.0
Dataset results
907 results for “tadpoles”
Figure 1 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 1. Drawings of the tadpole of Boophis boehmei (ZSM 534/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 2 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 2. Drawings of the tadpole of Boophis reticulatus (ZSM 525/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
FIG. 9 in The tadpole of Leptobrachium (Vibrissaphora) echinatum (Amphibia, Anura, Megophryidae)
FIG. 9. — Roof of the buccal cavity of the tadpole of Leptobrachium (Vibrissaphora) echinatum (MNHN 1998.8654, stage 37); A, upper beak; B, prenarial arena; C, prenarial papilla; D, choana; E, lareral ridge papilla; F, postnarial arena; G, median ridge; H, buccal roof arena (bra); I, bra papilla; J, posterolateral ridge; K, glandular zone. Scale bar: 5 mm.
FIG. 7 in The tadpole of Leptobrachium (Vibrissaphora) echinatum (Amphibia, Anura, Megophryidae)
FIG. 7. — Dorsal view of tadpole of Leptobrachium (Vibrissaphora) echinatum (MNHN 1998.8664, stage 43, svl 39.8 mm and tl 101.3 mm).
FIG. 5 in The tadpole of Leptobrachium (Vibrissaphora) echinatum (Amphibia, Anura, Megophryidae)
FIG. 5. — Oral disk of the tadpole of Leptobrachium (Vibrissaphora) echinatum (MNHN 1998.8654, stage 37). Scale: 5 mm.
FIG. 8 in The tadpole of Leptobrachium (Vibrissaphora) echinatum (Amphibia, Anura, Megophryidae)
FIG. 8. — Floor of the buccal cavity of the tadpole of Leptobrachium (Vibrissaphora) echinatum (MNHN 1998.8654, stage 37); A, lower beak; B, prelingual papillae; C, tongue anlage; D, prepocket papilla; E, buccal pocket; F, buccal floor arena (bfa); G, bfa papilla; H, ventral velum; I, median notch; J, marginal projection; K, branchial basket. Scale bar: 5 mm.
FIG. 4 in The tadpole of Leptobrachium (Vibrissaphora) echinatum (Amphibia, Anura, Megophryidae)
FIG. 4. — Profile view of the tadpole of Leptobrachium (Vibrissaphora) echinatum (MNHN 1998.8669, stage 36, svl 34.7 mm and tl 94.9 mm).
Data for: Effect of heterospecific and conspecific competition on individual differences in tadpole behavior
<p>Repeated social interactions with conspecifics and/or heterospecifics during early development may drive the differentiation of behaviour among individuals. This behavioural differentiation may occur through individuals behaving more different from each other on average and/or individuals behaving more consistently. Competition is a major form of social interaction and its impacts can depend on whether interactions occur between conspecifics or heterospecifics and the directionality of a response could be specific to different behavioural traits. To test this, we reared tungara frog tadpoles (<em>Engystomops pustulosus</em>) either in isolation, with a conspecific tadpole or with an aggressive heterospecific tadpole, the whistling frog tadpole, <em>Leptodactylus fuscus</em>. In each treatment, we measured the body size, activity, exploration and risk taking in the presence of a predator in focal <em>E. pustulosus</em> tadpoles six times during development. We used univariate and multivariate hierarchical mixed effect models to investigate the effect of treatment on mean behaviour and on among individual variance between and within individuals across behavioural traits. There was a strong effect of competition on behaviour, with different population and individual level responses across social treatments. Within their home tank, individuals were more consistent in their movements under conspecific competition but heterospecific competition caused more variance in the average movement among individuals. Behavioural responses were also trait specific as conspecific competition caused greater variability in movements among individuals in a novel environment. The results highlight that the impact of competition on inter-individual differences in behaviour is dependent on competitor species identity and is trait specific. Keywords: animal personality, competition, conspecific, heterospecific, individual differences, variance partitioning.</p>
A new cryptic species of Nyctibatrachus (Amphibia, Anura, Nyctibatrachidae) with description of its tadpole from the central Western Ghats, India
<p>We describe a new species of night frog belonging to the genus <em>Nyctibatrachus</em> from the central Western Ghats, India.</p>
Transcriptomes for Ranitomeya imitator and R. variabilis: Evidence for a Parabasalian Gut Symbiote in Egg-Feeding Poison Frog Tadpoles in Peru
<p>This dataset contains the assembled transcriptomes for our paper. The three assemblies are for <em>Ranitomeya imitator, R. variabilis, </em>and a merged assembly of the two species. For methodological details, see the published manuscript.</p>
figure 3 in EFfects of background color on pigmentation, morphological traits, and behavior in the European tree frog (Hyla arborea, Hylidae, Anura) tadpoles
figure 3 Variation in body pigmentation between different background coloration treatments during ethe xperimental time in H. arborea tadpoles. dl – dark-light treatment; d – dark treatment; dd – darkdark treatment; ld – light-dark treatment; l – light treatment; ll – light-light treatment
figure 4 in EFfects of background color on pigmentation, morphological traits, and behavior in the European tree frog (Hyla arborea, Hylidae, Anura) tadpoles
figure 4 The tadpole body coloration by treatment: day 0 – the start of the experiment, average pigmentation 69% of dark pixels, no treatment groups; day 20 of the experiment (day 20) – two treatment groups, Dark and Light, average pigmentation d – 93% and l – 62% of dark pixels; day 36 – the end of the experiment (day 36) – four treatments, dd – dark-dark treatment, ld – light-dark treatment, dl – dark-light treatment, ll – light-light treatment, average pigmentation dd – 90%, dl – 60%, ld – 91%, ll – 70% of dark pixels.
figure 1 in EFfects of background color on pigmentation, morphological traits, and behavior in the European tree frog (Hyla arborea, Hylidae, Anura) tadpoles
figure 1 Experimental design of the study. n – sample size; gs – developmental stage by Gosner, 1960
figure 6 in EFfects of background color on pigmentation, morphological traits, and behavior in the European tree frog (Hyla arborea, Hylidae, Anura) tadpoles
figure 6 Mean body shape of each treatment in two time points (after 20 days of the experiment – two treatments, and after 36 days/at the end of the experiment – four treatments) visualized in the canonical variate space (cv1 vs. cv 2). 20 d – dark treatment after 20 days; 20 l – light treatment after 20 days; 36 dd – dark-dark treatment after 36 days; 36 dl – dark-light treatment after 36 days; 36 ll – light-light treatment after 36 days; 36 ld – light-dark treatment after 36 days.
figure 8 in EFfects of background color on pigmentation, morphological traits, and behavior in the European tree frog (Hyla arborea, Hylidae, Anura) tadpoles
figure 8 How many times on average (with standard error) H. arborea tadpoles from different treatments were detected in the dark background: without predator chemical cues (black bars), with predator chemical cues (grey bars). dl – dark-light treatment; dd – dark-dark treatment; ld – light-dark treatment; ll – light-light treatment.
figure 2 in EFfects of background color on pigmentation, morphological traits, and behavior in the European tree frog (Hyla arborea, Hylidae, Anura) tadpoles
figure 2 Position of landmarks (l) and semi-landmarks (sl): l 1 – the tip of the snout, l 2 & 3 – dorsal and ventral points of anterior eye edge, l 4 – the intersection of head-body and dorsal edge of the tail fin, l 7 – the intersection of head-body and the ventral edge of the tail muscle, sl 5, 6 & 8 – the dorsal side of the tail fin, the dorsal side of the tail muscle, the ventral side of the tail muscle, the ventral side of the tail fin, all in the same vertical line as l 7, sl 9–12 – the dorsal side of the tail fin, the dorsal side of the tail muscle, the ventral side of the tail muscle, the ventral side of the tail fin ¼ the distance between l 7 and l 21, sl 13–16 – the dorsal side of the tail fin, the dorsal side of the tail muscle, the ventral side of the tail muscle, the ventral side of the tail fin ½ the distance between l 7 and l 21, sl 17–20 – the dorsal side of the tail fin, the dorsal side of the tail muscle, the ventral side of the tail muscle, the ventral side of the tail fin ¾ the distance between l 7 and l 21, l 21 – the tip of the tail
figure 7 in EFfects of background color on pigmentation, morphological traits, and behavior in the European tree frog (Hyla arborea, Hylidae, Anura) tadpoles
figure 7 Ontogenetic trajectories of each treatment in two time points (after 20 days of the experiment – two treatments, and after 36 days/at the end of the experiment – four treatments) visualized in the space of principal components (pc1 vs. pc2). 20 d – dark treatment after 20 days; 20 l – light treatment after 20 days; 36 dd – dark-dark treatment after 36 days; 36 dl – dark-light treatment after 36 days; 36 ll – light-light treatment after 36 days; 36 ld – light-dark treatment after 36 days.
figure 5 in EFfects of background color on pigmentation, morphological traits, and behavior in the European tree frog (Hyla arborea, Hylidae, Anura) tadpoles
figure 5 Body length variation between different background coloration treatments during experimental time in H. arborea tadpoles. dl – dark-light treatment; d – dark treatment; dd – dark-dark treatment; ld – light-dark treatment; l – light treatment; ll – light-light treatment.
Data from: Lungless tadpoles breathe fresh air into hypotheses for tetrapod lung loss and trait regain
Open the record for dataset details and reuse information.
Biological and chemical quantification of tadpole nurseries (phytotelmata)
Open the record for dataset details and reuse information.
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.