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.
83
datasets available to search
ShareScore release 0.7.1
Dataset results
83 results for “Tetraodontidae”
Figure 7 in Metazoan parasites in Colomesus asellus (Pisces: Tetraodontidae) from Amazon River, in Brazil: an ecological, annual and seasonal study
Figure 7. Principal coordinate analysis (PCoA) using a Bray-Curtis distance matrix for communities of metazoan parasites of Colomesus asellus from the Amazon River, in the eastern Amazon region, Brazil, during the rainy and dry seasons. The percentage of the variation explained by the plotted principal coordinates is indicated on the axes.
Figure 4 in Metazoan parasites in Colomesus asellus (Pisces: Tetraodontidae) from Amazon River, in Brazil: an ecological, annual and seasonal study
Figure 4. Diversity parameters for metazoan parasites in Colomesus asellus from the Amazon River, in the eastern Amazon region, Brazil, collected in 2020 and 2021 (box plots show medians, interquartile ranges, minimum–maximum ranges and outliers). Different letters indicate differences between the medians according to Dunn̍s test (p <0.001).
Figure 1 in Metazoan parasites in Colomesus asellus (Pisces: Tetraodontidae) from Amazon River, in Brazil: an ecological, annual and seasonal study
Figure 1. Collection area for Colomesus asellus in the Amazon River, in the state of Amapá, in the eastern Amazon region, Brazil.
Figure 6 in Metazoan parasites in Colomesus asellus (Pisces: Tetraodontidae) from Amazon River, in Brazil: an ecological, annual and seasonal study
Figure 6. Species richness of metazoan parasites in Colomesus asellus from the Amazon River during the rainy and dry seasons.
Figure 3 in Metazoan parasites in Colomesus asellus (Pisces: Tetraodontidae) from Amazon River, in Brazil: an ecological, annual and seasonal study
Figure 3. Principal coordinate analysis (PCoA) using a Bray-Curtis distance matrix for communities of metazoan parasites of Colomesus asellus from the Amazon River, in the state of Amapá, Brazil, during 2020 and 2021. The percentage of the variation explained by the plotted principal coordinates is indicated on the axes.
Supplementary material 2 from: Martínez-Aquino A, García-Teh JG, Ceccarelli FS, Aguilar-Aguilar R, Vidal-Martinez VM, Leopoldina Aguirre-Macedo M (2020) New morphological and molecular data for Xystretrum solidum (Gorgoderidae, Gorgoderinae) from Sphoeroides testudineus (Tetraodontiformes, Tetraodontidae) in Mexican waters. ZooKeys 925: 141-161. https://doi.org/10.3897/zookeys.925.49503
Figure S1
Supplementary material 1 from: Martínez-Aquino A, García-Teh JG, Ceccarelli FS, Aguilar-Aguilar R, Vidal-Martinez VM, Leopoldina Aguirre-Macedo M (2020) New morphological and molecular data for Xystretrum solidum (Gorgoderidae, Gorgoderinae) from Sphoeroides testudineus (Tetraodontiformes, Tetraodontidae) in Mexican waters. ZooKeys 925: 141-161. https://doi.org/10.3897/zookeys.925.49503
Table S1
Figure 5 from: Martínez-Aquino A, García-Teh JG, Ceccarelli FS, Aguilar-Aguilar R, Vidal-Martinez VM, Leopoldina Aguirre-Macedo M (2020) New morphological and molecular data for Xystretrum solidum (Gorgoderidae, Gorgoderinae) from Sphoeroides testudineus (Tetraodontiformes, Tetraodontidae) in Mexican waters. ZooKeys 925: 141-161. https://doi.org/10.3897/zookeys.925.49503
Figure 5 Scanning electron microscopy (SEM) images of Xystretrum solidum (from three specimens collected at Progreso Port, Yucatan, Mexico) A whole adult specimen (ventral view) with scattered rosette papillae on forebody B forebody, showing 6 pairs of robust papillae (white arrowhead) C oral sucker, showing 13 pairs of papillae: 5 on interior margin surrounding mouth (yellow arrowhead); one posterolateral to interior margin (dark blue arrowhead); three anterolateral to interior margin (light blue arrowhead); 2 on stylet scar (dark green arrowhead); one lateral to stylet scar (light green arrowhead); one on posterior external margin of oral sucker (black arrowhead); one inside of mouth (red arrowhead) (only right hand side papillae are indicated) D genital atrium detail E ventral sucker (side view), showing long papillae on inner margin (white arrowhead) F ventral sucker (ventral view), showing long papillae on inner margin (white arrowhead). Scale bars: 1000 µm (A); 200 µm (B); 500 µm (C, D); 100 µm (E, F). For more details of observed characters by SEM from other localities analyzed in this study, see Suppl. material 2: Figure S1.
Figure 4 from: Martínez-Aquino A, García-Teh JG, Ceccarelli FS, Aguilar-Aguilar R, Vidal-Martinez VM, Leopoldina Aguirre-Macedo M (2020) New morphological and molecular data for Xystretrum solidum (Gorgoderidae, Gorgoderinae) from Sphoeroides testudineus (Tetraodontiformes, Tetraodontidae) in Mexican waters. ZooKeys 925: 141-161. https://doi.org/10.3897/zookeys.925.49503
Figure 4 Line drawings of the 532 CHCM-voucher of Xystretrum solidum from the urinary bladder of Sphoeroides testudineusA whole specimen (ventral view) B details of reproductive organs C details of genital atrium. Scale bars: 1000 µm (A); 250 µm (B–D).
Figure 3 from: Martínez-Aquino A, García-Teh JG, Ceccarelli FS, Aguilar-Aguilar R, Vidal-Martinez VM, Leopoldina Aguirre-Macedo M (2020) New morphological and molecular data for Xystretrum solidum (Gorgoderidae, Gorgoderinae) from Sphoeroides testudineus (Tetraodontiformes, Tetraodontidae) in Mexican waters. ZooKeys 925: 141-161. https://doi.org/10.3897/zookeys.925.49503
Figure 3 Phylogenetic tree obtained using Bayesian inference for the COI dataset. The scale bar represents the number of nucleotide substitutions per site. GenBank accession numbers of the new sequences of Xystretrum solidum are shown in bold. Filled circles above/below branches and at the nodes represent Bayesian Posterior Probability ≥ 0.95.
Figure 2 from: Martínez-Aquino A, García-Teh JG, Ceccarelli FS, Aguilar-Aguilar R, Vidal-Martinez VM, Leopoldina Aguirre-Macedo M (2020) New morphological and molecular data for Xystretrum solidum (Gorgoderidae, Gorgoderinae) from Sphoeroides testudineus (Tetraodontiformes, Tetraodontidae) in Mexican waters. ZooKeys 925: 141-161. https://doi.org/10.3897/zookeys.925.49503
Figure 2 Phylogenetic tree obtained using Bayesian inference for the 28S rRNA dataset. The scale bar represents the number of nucleotide substitutions per site. GenBank accession numbers of the new sequences of Xystretrum solidum are shown in bold. Filled circles above/below branches and at the nodes represent Bayesian Posterior Probability ≥ 0.95.
Figure 1 from: Martínez-Aquino A, García-Teh JG, Ceccarelli FS, Aguilar-Aguilar R, Vidal-Martinez VM, Leopoldina Aguirre-Macedo M (2020) New morphological and molecular data for Xystretrum solidum (Gorgoderidae, Gorgoderinae) from Sphoeroides testudineus (Tetraodontiformes, Tetraodontidae) in Mexican waters. ZooKeys 925: 141-161. https://doi.org/10.3897/zookeys.925.49503
Figure 1 . Northern Yucatan Peninsula, Mexico, showing localities where the specimens of Xystretrum solidum were collected.
Data from: Do habitat shifts drive the diversity in teleost fishes? An example from the pufferfishes (Tetraodontidae)
Habitat shifts are implicated as the cause of many vertebrate radiations, yet relatively few empirical studies quantify patterns of diversification following colonization of new habitats in fishes. The pufferfishes (family Tetraodontidae) occur in several habitats, including coral reefs and freshwater, which are thought to provide ecological opportunity for adaptive radiation, and thus provide a unique system for testing the hypothesis that shifts to new habitats alter diversification rates. To test this hypothesis we sequenced eight genes for 96 species of pufferfishes and closely related porcupine fishes, and added 19 species from sequences available in GenBank. We time-calibrated the molecular phylogeny using three fossils, and performed several comparative analyses to test whether colonization of novel habitats led to shifts in the rate of speciation and body size evolution, central predictions of clades experiencing ecological adaptive radiation.. Colonization of freshwater is associated with lower rates of cladogenesis in pufferfishes though these lineages also exhibit accelerated rates of body size evolution. Increased rates of cladogenesis are associated with transitions to coral reefs, but reef lineages surprisingly exhibit significantly lower rates of body size evolution. These results suggest that ecological opportunity afforded by novel habitats may be limited for pufferfishes due to competition with other species, constraints relating to pufferfish life history and trophic ecology, and other factors.
FIGURE 12 in Distribution of Tetraodontiformes (Family: Tetraodontidae) along the Parangipettai Coast, Southeast coast of India
FIGURE 12. Distribution of puffer fishes in all the three stations along the Parangipettai coast.
FIGURE 11 in Distribution of Tetraodontiformes (Family: Tetraodontidae) along the Parangipettai Coast, Southeast coast of India
FIGURE 11. Percentage of puffer fishes belonging to the tetraodontidae family.
Figure 7 in Canthigaster caeruleolineata, a new species of toby (Teleostei: Tetraodontidae) from La Réunion, southwestern Indian Ocean
Figure 7. – Geographical distribution of species of Canthigaster with short blue lines. A: Canthigaster caeruleolineata n. sp.; B: C. callisterna; C: C. flavoreticulata; D: C. rapaensis.
Figure 1. Lagocephalus guentheri Miranda Riberio, 1915 a in First record of Lagocephalus guentheri Miranda Riberio 1915 (Tetraodontiformes: Tetraodontidae) from the West Coast of India
Figure 1. Lagocephalus guentheri Miranda Riberio, 1915 a. from Maharashtra (F 12487/2), 73.6 mm SL b. from Gujarat (F 11746/2), 83.9mm SL. c. from Kerala (F 10765/2), 190 mm.
FIGURE 6. Canthigaster amboinensis, USNM 399907, 81.6 in A new species of Indo-Pacific fish, Canthigaster criobe, with comments on other Canthigaster (Tetraodontiformes: Tetraodontidae) at the Gambier Archipelago
FIGURE 6. Canthigaster amboinensis, USNM 399907, 81.6 mm SL, Gambier Archipelago (J.T. Williams).
FIGURE 5. Canthigaster rapaensis, USNM 400531, 71.4 in A new species of Indo-Pacific fish, Canthigaster criobe, with comments on other Canthigaster (Tetraodontiformes: Tetraodontidae) at the Gambier Archipelago
FIGURE 5. Canthigaster rapaensis, USNM 400531, 71.4 mm SL, Gambier Archipelago (J.T. Williams).
FIGURE 4. Canthigaster axiologus, USNM 400503, 73.9 in A new species of Indo-Pacific fish, Canthigaster criobe, with comments on other Canthigaster (Tetraodontiformes: Tetraodontidae) at the Gambier Archipelago
FIGURE 4. Canthigaster axiologus, USNM 400503, 73.9 mm SL, Gambier Archipelago (J.T. Williams).
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.