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.
84
datasets available to search
ShareScore release 0.9.0
Dataset results
84 results for “Holothuria”
FIGURE 9 in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 9. Bayesian inference tree of the COI mitochondrial gene of the specimens obtained for the present study. Numbers in nodes refer to posterior probability.
FIGURE 8 in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 8. Type ossicles of Holothuria inornata; syntype no. 84.3.8.18, Natural History Museum, London. A. Dorsal body wall (bars from tables = 50 µm; rod = 80 µm). B. Dorsal podia (bars from table = 50 µm; rods = 80 µm) C. Ventral body wall (bar = 30 µm). D. Tentacles (bar = 100 µm). E. Ventral podia (bars from tables = 50 µm; endplate = 500 µm; pseudoplate = 80 µm; rod = 100 µm).
FIGURE 7 in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 7. Type ossicles of Holothuria kefersteinii; syntype no. 4.19, Göttingen Museum of Natural History. A. Dorsal body wall. B. Ventral body wall. C. Ventral tube feet. D. Tentacles. (bars from tables = 40 µm; endplate = 500 µm; pseudoplate = 50 µm; rods = 40 µm).
FIGURE 6 in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 6. SEM ossicles of Holothuria inornata ("red") collected for the present study. A. Dorsal body wall (bar = 50 µm). B. Dorsal tube feet (first rod bar = 100 µm; second rod = 50 µm; endplate = 200 µm). C. Dorsal papillae on warts (bar = 100 µm). D. Ventral body wall (bar = 30 µm). E. Ventral tube feet (pseudoplate bar = 50 µm; endplate = 500 µm). F. Tentacles (first to third rod bar = 100 µm; fourth rod = 50 µm).
FIGURE 4 in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 4. SEM ossicles of Holothuria kefersteinii ("green") collected for the present study. A. Dorsal body wall (bar = 40 µm). B. Dorsal tube feet (endplate bar = 100 µm; table = 50 µm). C. Dorsal papillae on warts (bar = 50 µm). D. Ventral tube feet (bar = 40 µm).
FIGURE 3 in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 3. Copy of original drawing of specimen and ossicles from original description of Selenka's Stichopus kefersteinii.
FIGURE 2b in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 2b. Preserved specimens of Holothuria inornata ("red"). A. Dorsal view. B. Ventral view. C. Side view. Bar = 2 cm.
FIGURE 1b in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 1b. Preserved specimens of Holothuria kefersteinii ("green"). A. Dorsal view. B. Ventral view. C. Side view. Bar = 2 cm.
FIGURE 1a in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 1a. Live specimens of Holothuria kefersteinii ("green"). A. Dorsal side of collected specimen; bar = 2 cm. B and C. Live specimens in situ, after removal of covering rock.
FIGURE 2a in A revision of Holothuria (Halodeima) kefersteinii (Selenka, 1867) and the revival of Holothuria inornata Semper, 1868 from sea cucumbers collected in Mexico and Central America
FIGURE 2a. Live specimens of Holothuria inornata ("red"). A. Dorsal and ventral sides of collected specimen; partial removal of sand covering the body; bar = 2 cm. B and C. Live specimens in situ not covered by rocks.
FIGURE 3 in First record of a Lessepsian migrant: the sea cucumber Holothuria (Theelothuria) hamata Pearson, 1913
FIGURE 3. Holothuria (Theelothuria) hamata Pearson, 1913. A. Rods of tentacles; B. Tables of dorsal body wall; C. Tables of ventral body wall; D. 'Compact-look' table; E. Buttons/fenestrated ellipsoids of dorsal body wall; F. Perforated rods of papillae; G. Lateral view of tag-like tables of papillae. Scale bars B–E represent 50 mm; scale bars F& G 100 mm.
FIGURE 2 in First record of a Lessepsian migrant: the sea cucumber Holothuria (Theelothuria) hamata Pearson, 1913
FIGURE 2. Holothuria (Theelothuria) hamata Pearson, 1913. A. Dorso-lateral view; B. Ventral view (Photo's by M. Aydin)
FIGURES 8–15 in Small-sized and discoid species of the genus Cocconeiopsis (Bacillariophyta) on Holothuria atra (Juan de Nova, Mozambique Channel)
FIGURES 8–15: Cocconeiopsis juandenovensis sp. nov. (SEM) from "JDN2 Holothuria atra". Fig. 8: External view of central raphe endings, curved in opposite side. Fig. 9: Note elevated virgae and well identifiable areola at each end of stria. Fig. 10: External view of one apex and terminal raphe ending. Fig. 11: marginal row composed of one areola toped by a horse-shoe shaped marginal areola. This marginal group of areolae is well separated from the rest of the stria by a hyaline rim (arrow). Fig. 12: Note short slits randomly scattered on stria with no well identifiable areolae. Fig. 13: Detail of horse-shoe shaped marginal areolae (arrow). Figs 14, 15: cingulum composed of several narrow open bands (arrows). Scale bars = 0.6 µm (Fig. 15); 0.5 µm (Figs 8–12); 0.4 µm (Fig. 14); 0.3 µm (Fig. 13).
FIGURES 16–20 in Small-sized and discoid species of the genus Cocconeiopsis (Bacillariophyta) on Holothuria atra (Juan de Nova, Mozambique Channel)
FIGURES 16–20: Cocconeiopsis juandenovensis sp. nov. (SEM) from "JDN2 Holothuria atra". Internal views. Fig. 16: Complete valve with helictoglossae (arrows). Fig. 17: Tilted apex of the valve illustrated in Fig. 16. Note virgae (short arrows), marginal rim (long arrow), and marginal row of areolae. Figs 18, 19: Note reticulate structure (short arrows) and marginal rim (long arrow). Fig. 20: Detail of edge of valvocopula, slightly undulated (short arrows). Scale bars = 2 µm (Fig. 16); 0.7 µm (Fig. 17); 0.4 µm (Figs 18–20).
FIGURES 45–47 in Small-sized and discoid species of the genus Cocconeiopsis (Bacillariophyta) on Holothuria atra (Juan de Nova, Mozambique Channel)
FIGURES 45–47: (?)Cocconeiopsis sp. (SEM) from "JDN2 Holothuria atra". Internal views. Fig. 45: Valve broken along the raphe (arrows). Fig. 46, detail of Fig. 45, marginal rim (long arrow) with fimbriate ornamentation, minute pores on a cingular band (small arrows). Fig. 47: Valve slightly asymmetrical with helictoglossae (arrows) and marginal fimbriate ornamentation. Scale bars = 4 µm (Fig. 47); 3 µm (Fig. 45); 0.5 µm (Fig. 46).
FIGURES 32–33 in Small-sized and discoid species of the genus Cocconeiopsis (Bacillariophyta) on Holothuria atra (Juan de Nova, Mozambique Channel)
FIGURES 32–33: Cocconeiopsis discoides sp. nov. (SEM) from "JDN2 Holothuria atra". Internal views. Fig. 32: detail of Fig. 33, cingulum composed of several low bands, apparently un-perforated, virgae marginally elevated and ornamented by pearls, presence of a pearl (long arrows) between each marginal areola (short arrows). Fig. 33: Complete valve with helictoglossae (arrow) and radiate striae. Scale bars = 3 µm (Fig. 33); 1 µm (Fig. 32).
FIGURE 1 in Small-sized and discoid species of the genus Cocconeiopsis (Bacillariophyta) on Holothuria atra (Juan de Nova, Mozambique Channel)
FIGURE 1: Map of the Scattered Islands (Europa, Bassa da India, Juan de Nova, Grandes Glorieuses and Tromelin), inset for position and map of Juan de Nova Island.
FIGURES 2–7 in Small-sized and discoid species of the genus Cocconeiopsis (Bacillariophyta) on Holothuria atra (Juan de Nova, Mozambique Channel)
FIGURES 2–7: Cocconeiopsis juandenovensis sp. nov. (SEM) from "JDN2 Holothuria atra". Figs 2–5: Fig. 5: illustration of holotype specimen). External views of valve. Figs 6, 7: details of central area. Note areolae well identifiable at the end of each stria (long arrows in Fig. 7) and difficult to observe, or absent, on stria (Fig. 7, short arrows). Scale bars = 3 µm (Figs 2, 4–5); 2 µm (Fig. 3); 1 µm (Fig. 7); 0.4 µm (Fig. 6).
Metis holothuriae SPAdes preassembly
<p>.</p>
Transcriptome-derived SNP markers for population assignment of sandfish, Holothuria (Metriatyla) scabra
<p>The genotype data used for the assignment analyses provided as a GenePop file (.gen)</p>
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.