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.
63
datasets available to search
ShareScore release 0.9.0
Dataset results
63 results for “Elachistocleis”
Fig. 3 in Description of Cystodiscus elachistocleis sp. nov. (Cnidaria: Myxosporea) parasitizing the gallbladder of Elachistocleis cesarii from Brazil, based on morphological and molecular analyses
Fig. 3. Phylogenetic tree of Bayesian analysis based on partial SSU rDNA partial sequences showing the position of Cystodiscus elachistocleis sp. nov. (INPA79) among genetically similar species. Node numbers represent the Bayesian posterior probabilities and bootstrap (BI/ML). Values less than 0.7 are represented by dashes. The scale bar represents the number of substitutions per site.
Fig. 1 in Description of Cystodiscus elachistocleis sp. nov. (Cnidaria: Myxosporea) parasitizing the gallbladder of Elachistocleis cesarii from Brazil, based on morphological and molecular analyses
Fig. 1. Myxospores and pseudoplasmodia of Cystodiscus elachistocleis sp. nov. (INPA79) found parasitizing the gallbladder of Elachistocleis cesarii (Miranda-Ribeiro, 1920) from Araguaiana, Mato Grosso State, Brazil. A. Front view of C. elachistocleis sp. nov. B. Front and side view of C. elachistocleis sp. nov. C. Pseudoplasmodium (P) containing several myxospores of C. elachistocleis sp. nov. highlights myxospores (M) through the pseudoplasmodium-forming tissue.
Fig. 2 in Description of Cystodiscus elachistocleis sp. nov. (Cnidaria: Myxosporea) parasitizing the gallbladder of Elachistocleis cesarii from Brazil, based on morphological and molecular analyses
Fig. 2. Schematic drawing of Cystodiscus elachistocleis sp. nov. (INPA79) found parasitizing the gallbladder of Elachistocleis cesarii (Miranda-Ribeiro, 1920) in front and side view.
FIGURE 7 in Description and phylogenetic relationships of a new trans-Andean species of Elachistocleis Parker 1927 (Amphibia, Anura, Microhylidae)
FIGURE 7. Comparison of dorsal (above) and ventral (below) views of Elachistocleis araios sp. n. in preservative. (A) holotype (SLV 25.7 mm); (B) paratype (SVL 26.1 mm); and, E. panamensis, (C) (ICN-48708) female (SVL 23.6 mm).
FIGURE 4 in Description and phylogenetic relationships of a new trans-Andean species of Elachistocleis Parker 1927 (Amphibia, Anura, Microhylidae)
FIGURE 4. Holotype of Elachistocleis araios sp. n., female, in life. Above left, Lateral view; below left, dorsal view; right, frontal view.
FIGURE 5 in Description and phylogenetic relationships of a new trans-Andean species of Elachistocleis Parker 1927 (Amphibia, Anura, Microhylidae)
FIGURE 5. Holotype of Elachistocleis araios sp. n., female, in preservative. (A) Lateral view of head, (B) dorsal view of head, (C) ventral view of right hand, (D) ventral view of right foot.
FIGURE 6 in Description and phylogenetic relationships of a new trans-Andean species of Elachistocleis Parker 1927 (Amphibia, Anura, Microhylidae)
FIGURE 6. Paratype of Elachistocleis araios sp. n. in life. (A) Profile view, (B) ventral view, (C) dorsal view.
FIGURE 3 in Description and phylogenetic relationships of a new trans-Andean species of Elachistocleis Parker 1927 (Amphibia, Anura, Microhylidae)
FIGURE 3. Map showing records of Elachistocleis araios sp. n. Red square = holotype, Azuay province; red circle = paratype, Guayas province. Ecuador is shown on green on the small map. Black lines represent province boundaries.
FIGURE 2 in Description and phylogenetic relationships of a new trans-Andean species of Elachistocleis Parker 1927 (Amphibia, Anura, Microhylidae)
FIGURE 2. Phylogenetic relationships of Elachistocleis based on maximum likelihood analyses of DNA sequences. Above: phylogeny based on nuclear genes (BDNF, cmyc2, H3A, 28S, SIA1, and Tyr). Below: phylogeny based on mitochondrial genes (12S, 16S, and CO1). Numbers on branches correspond to ultrafast bootstrap support values (≥ 95 are considered as signifi- cant).
FIGURE 1 in The tadpole of Elachistocleis helianneae Caramaschi, 2010 (Anura: Microhylidae)
FIGURE 1. Elachistocleis helianneae tadpole at Stage 36. (A) Lateral, (B) dorsal and (C) ventral views, (D) oral disc in frontal view, (E) oral disc in ventral view. Tadpole at Stage 32: (F) detail of the spiracle (sp), vent tube (vt), and hind limb (hd). CZPB-LA tadpole lot 419/886, collected at the campus of the Universidade Federal do Amapá, Macapá municipality, Amapá, Brazil.
Figure 3 in Elucidating the diel and seasonal calling behaviour of Elachistocleis matogrosso (Anura: Microhylidae)
Figure 3. Estimated probability of detecting the presence of Elachistocleis matogrosso during (a) January and (b) February. Calculations were based on logistic regression, with the detection/lack of detection of the species at the seven monitored sites as the dependent variable and the date as the predictor variable. Dashed lines show the 95% probability of detecting the species.
Figure 1 in Elucidating the diel and seasonal calling behaviour of Elachistocleis matogrosso (Anura: Microhylidae)
Figure 1. Diel pattern of Elachistocleis matogrosso calling activity during an entire year in the Pantanal Matogrossense, Brazil. Calling activity was detected with acoustic monitoring from 15 November of 2013 to 14 November 2014 at one site (a, Table 1) and from 8 June 2015 to 2 June 2016 at six other sites (b–g, Table 1). The diel pattern is expressed as the mean percentage of calls detected at all sites at each recording time. The hours are expressed in 24-h notation of the winter local time (GMT −4).
Figure 2 in Elucidating the diel and seasonal calling behaviour of Elachistocleis matogrosso (Anura: Microhylidae)
Figure 2. Seasonal pattern of Elachistocleis matogrosso calling activity during two entire years in the Pantanal Matogrossense, Brazil. Calling activity was detected with acoustic monitoring from 15 November of 2013 to 14 November 2014 at one site (a, Table 1) and from 8 June 2015 to 2 June 2016 at six other sites (b–g, Table 1). The seasonal pattern is expressed as the percentage of calls detected per month (2013–2014) or as the mean percentage of calls detected at all sites per month (2015–2016).
FIGURE 1 in A new species of Elachistocleis (Anura; Microhylidae) from the Brazilian Amazon
FIGURE 1. Elachistocleis magnus sp. n., ZUEC 11384 (holotype; adult male). (A) Dorsal and (B) lateral views of head. Ventral views of hand (C) and foot (D).
FIGURE 2 in A new species of Elachistocleis (Anura; Microhylidae) from the Brazilian Amazon
FIGURE 2. Ventral (A) and dorsal (B) views of the holotype (ZUEC 11384; adult male) of Elachistocleis magnus sp. n.
FIGURE 5 in Revalidation and redescription of Elachistocleis cesarii (Miranda-Ribeiro, 1920) (Anura: Microhylidae)
FIGURE 5. Geographic distribution map of Elachistocleis cesarii in the states of São Paulo (SP), Minas Gerais (MG), and Goiás (GO), Brazil. Gray triangle represents the type locality (municipality of Piquete, São Paulo) and black circles represent other localities based on specimens deposited in scientific collections.
FIGURE 4 in Revalidation and redescription of Elachistocleis cesarii (Miranda-Ribeiro, 1920) (Anura: Microhylidae)
FIGURE 4. Spectrograms (above) and waveforms (below) of the advertisement calls of (A) Elachistocleis cesarii recorded in the district of Itapé, municipality of Rio Claro, São Paulo, Brazil, on 29 January 2002, air temperature of 23.1ºC and (B) Elachistocleis piauiensis recorded in the municipality of Caucaia, Ceará, Brazil, on 15 May 2005, air temperature of 27 ºC.
FIGURE 3 in Revalidation and redescription of Elachistocleis cesarii (Miranda-Ribeiro, 1920) (Anura: Microhylidae)
FIGURE 3. Dorsal (A) and ventral (B) views of Elachistocleis piauiensis from the municipality of Viçosa do Ceará, state of Ceará, Brazil; dorsal (C) and ventral (D) views of E. cesarii from Itapé, municipality of Rio Claro, state of São Paulo, Brazil (In C an arrow indicates the postcommisural gland); (E) dorsal view of E. surinamensis from Trinidad and Tobago; (F) gelatinous egg mass of Elachistocleis cesarii photographed in nature, where it is possible to visualize the embryos in development inside the egg capsules.
FIGURE 2 in Revalidation and redescription of Elachistocleis cesarii (Miranda-Ribeiro, 1920) (Anura: Microhylidae)
FIGURE 2 Dorsal and ventral views of: Elachistocleis bicolor from the state of Rio Grande do Sul, Brazil (A and B, respectively); E. erythrogaster from the municipality of São Francisco de Paula, state of Rio Grande do Sul, Brazil (C and D, respectively); E. skotogaster from Aguas Blancas, provincia de Salta, Argentina (E and F, respectively).
FIGURE 2 in A new species of Elachistocleis Parker (Anura, Microhylidae) from the State of Acre, Northern Brazil
FIGURE 2. First and second (A), first and third (B) principal components of the PCA distinguishing three groups represented by Elachistocleis muiraquitan sp. nov. (black circles), E. helianneae (red squares), and E. matogrosso (blue triangles). Analysis made based only on adult males.
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.