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.
65
datasets available to search
ShareScore release 0.9.0
Dataset results
65 results for “deep-water corals”
FIGURE 4 in A new deep-water coral species Telestula ridgensis sp. nov (Scleralcyonacea: Sarcodictyonidae)from the seamount of theCentral Indian Ridge
FIGURE 4. Telestula ridgensis sp. nov. NCPOR/HYD-CIR/0048, arrangement of sclerites in the neck zone. A, is the neck zone; B, is towards tentacles, after removal of the soft tissue; C, the arrangement of the sclerites in the tentacle after removal of the soft tissue.
FIGURE 7 in A new deep-water coral species Telestula ridgensis sp. nov (Scleralcyonacea: Sarcodictyonidae)from the seamount of theCentral Indian Ridge
FIGURE 7. Sclerites of Telestula ridgensis sp. nov. NCPOR/HYD-CIR/0048 A, irregularly shaped with dense tubercular ornamentation in the calyx wall; B, irregular-shaped plate with slightly tubercular ornamentation in the stolon
FIGURE 6 in A new deep-water coral species Telestula ridgensis sp. nov (Scleralcyonacea: Sarcodictyonidae)from the seamount of theCentral Indian Ridge
FIGURE 6. Sclerites of Telestula ridgensis sp. nov. NCPOR/HYD-CIR/0048 A, irregularly shaped with dense tubercular ornamentation in a neck zone; B, intrusion tissue with branched forms with dense tubercular ornamentation
FIGURE 8 in A new deep-water coral species Telestula ridgensis sp. nov (Scleralcyonacea: Sarcodictyonidae)from the seamount of theCentral Indian Ridge
FIGURE 8. Maximum likelihood reconstruction (2575 nt of concatenated mtMutS, COI, 28S rDNA) of the family Clavulariidae clade of Octocorallia
FIGURE 5 in A new deep-water coral species Telestula ridgensis sp. nov (Scleralcyonacea: Sarcodictyonidae)from the seamount of theCentral Indian Ridge
FIGURE 5. Sclerites of Telestula ridgensis sp. nov. NCPOR/HYD-CIR/0048 A, tentacles with stellate plates, blunt rods with slightly tubercular ornamentation; B, pharyngeal with blunt rods.
FIGURE 2 in A new deep-water coral species Telestula ridgensis sp. nov (Scleralcyonacea: Sarcodictyonidae)from the seamount of theCentral Indian Ridge
FIGURE 2. Telestula ridgensis sp. nov. NCPOR/HYD-CIR/0048 A, preserved colonies on the dead Corallidae coral; B, polyps; C, budding of secondary polyps; D, tentacles.
FIGURE 3 in A new deep-water coral species Telestula ridgensis sp. nov (Scleralcyonacea: Sarcodictyonidae)from the seamount of theCentral Indian Ridge
FIGURE 3. Illustration of a Telestula ridgensis sp. nov. NCPOR/HYD-CIR/0048, A-C, polyp indicating the locations and types of sclerites; D, arrangement of sclerites in the calyx wall region; E, ribbon-like stolon.
Data from: Early life history of deep-water gorgonian corals may limit their abundance
Open the record for dataset details and reuse information.
Figures 8-10 from: De Assis JE, Souza JRB, Lima MM, Lima GV, Cordeiro RTS, Pérez CD (2019) Association between deep-water scale-worms (Annelida: Polynoidae) and black corals (Cnidaria: Antipatharia) in the Southwestern Atlantic. Zoologia 36: 1-13. https://doi.org/10.3897/zoologia.36.e28714
Figures 8-10 (8) Corallum morphology of Stylopathesadinocrada; (9) pinnulation pattern of S.adinocrada, showing the "worm run"; (10) organization of spines in S.adinocrada. Scale bars: 8–9 = 10 mm, 10: 100 µm.
Figures 2-7 from: De Assis JE, Souza JRB, Lima MM, Lima GV, Cordeiro RTS, Pérez CD (2019) Association between deep-water scale-worms (Annelida: Polynoidae) and black corals (Cnidaria: Antipatharia) in the Southwestern Atlantic. Zoologia 36: 1-13. https://doi.org/10.3897/zoologia.36.e28714
Figures 2-7 (2) Benhamypolynoecf.antipathicola on the branches of Stylopathesadinocrada: (3) median chaetigers of B.antipathicola showing elytrophores, elytra and dorsal cirri; (4) head of B.antipathicola showing the prostomium, palps and antennae; (5) posterior chaetigers of B.antipathicola showing the ventral cirrus and neuropodia; (6) neurochaetae from posterior chaetigers, showing a faint serration; (7) detail of distal tip of neurochaetae. (ch) chaetae, (dc) dorsal cirrus, (el) elytra, (et) elytrophore, (ct) cirratophore, (la) lateral antennae; (ma) median antennae, (ne) neuropodium, (pa) parapodium, (pl) palp, (pr) prostomium, (tc) tentacular cirrus. Scale bars: 2–4: 1 mm, 5 = 200 µm, 6 = 100 µm, 7 = 10 µm.
Figures 15-18 from: De Assis JE, Souza JRB, Lima MM, Lima GV, Cordeiro RTS, Pérez CD (2019) Association between deep-water scale-worms (Annelida: Polynoidae) and black corals (Cnidaria: Antipatharia) in the Southwestern Atlantic. Zoologia 36: 1-13. https://doi.org/10.3897/zoologia.36.e28714
Figures 15-18 (15) Head of P.cf.greeffi showing the prostomium and their structures; (16) Parapodia of P.cf.greeffi showing notochaetae and neurochaetae; (17) Neurochaetae from median chaetigers of P.cf.greeffi; (18) Detail of distal tip of neurochaetae. (ch) Chaetae, (cp) cephalic peak, (la) lateral antennae, (ma) median antennae, (ng) nuchal groove, (pl) palp, (pr) prostomium. Scale bars: 15 = 1 mm, 16–17 = 100 µm, 18 = 10 µm.
Figures 19-21 from: De Assis JE, Souza JRB, Lima MM, Lima GV, Cordeiro RTS, Pérez CD (2019) Association between deep-water scale-worms (Annelida: Polynoidae) and black corals (Cnidaria: Antipatharia) in the Southwestern Atlantic. Zoologia 36: 1-13. https://doi.org/10.3897/zoologia.36.e28714
Figures 19-21 (19) Corallum morphology of Tanacetipathestanacetum; (20) cross section showing pinnules cycle of T.tanacetum; (21) organization of spines in T.tanacetum. Sacale bars: 19, 20 = 1 cm, 21 = 200 μm.
Figure 1 from: De Assis JE, Souza JRB, Lima MM, Lima GV, Cordeiro RTS, Pérez CD (2019) Association between deep-water scale-worms (Annelida: Polynoidae) and black corals (Cnidaria: Antipatharia) in the Southwestern Atlantic. Zoologia 36: 1-13. https://doi.org/10.3897/zoologia.36.e28714
Figure 1 Records of association of scale-worm polynoids and black corals from deep-water in South America, Northeastern Brazil: (A) record of Benhamypolynoecf.antipathicola, and its antipatharian hosts Stylopathesadinocrada in Potiguar Basin; (B) records of association of Parahololepidellacf.greeffi and its antipatharian hosts (Tanacetipathesbarbadensis, T.tanacetum and T.thamnea) in Potiguar Basin, Brazil.
Figures 11-14 from: De Assis JE, Souza JRB, Lima MM, Lima GV, Cordeiro RTS, Pérez CD (2019) Association between deep-water scale-worms (Annelida: Polynoidae) and black corals (Cnidaria: Antipatharia) in the Southwestern Atlantic. Zoologia 36: 1-13. https://doi.org/10.3897/zoologia.36.e28714
Figures 11-14 (11) Parahololepidellacf.greeffi on the branches of Tanacetipathestanacetum; (12) median chaetigers of P.greeffi showing elytra and dorsal cirri; (13) head of P.greeffi showing the prostomium, palps and antennae; (14) elytrae from posterior chaetigers of P.cf.greeffi showing a smooth edge. (cp) Cephalic peak, (dc) dorsal cirrus, (el) elytra, (et) elythophore, (la) lateral antennae, (ma) median antennae, (pa) parapodium, (pl) palp, (pr) prostomium, (tc) tentacular cirrus. Scale bars: 11–13 = 1 mm, 14 = 100 µm.
Figures 22-27 from: De Assis JE, Souza JRB, Lima MM, Lima GV, Cordeiro RTS, Pérez CD (2019) Association between deep-water scale-worms (Annelida: Polynoidae) and black corals (Cnidaria: Antipatharia) in the Southwestern Atlantic. Zoologia 36: 1-13. https://doi.org/10.3897/zoologia.36.e28714
Figures 22-27 (22) Corallum morphology of Tanacetipathesbarbadensis; (23) cross section showing pinnules cycle of T.barbadensis; (24) organization of spines in T.barbadensis; (25) corallum morphology of Tanacetipathesthamnea; (26) cross section showing pinnules cycle of T.thamnea; (27) organization of spines in T.thamnea. Scale bars: 22, 23, 25, 26 = 1 cm, 24 = 200 μm, 27 = 150 μm.
Figure 1 from: Pica D, Cairns SD, Puce S, Newman WA (2015) Southern hemisphere deep-water stylasterid corals including a new species, Errina labrosa sp. n. (Cnidaria, Hydrozoa, Stylasteridae), with notes on some symbiotic scalpellids (Cirripedia, Thoracica, Scalpellidae). ZooKeys 472: 1-25. https://doi.org/10.3897/zookeys.472.8547
Figure 1 - Stephanohelia sp. a Colony. SEM micrographs of b branch with polychotomous tiny branches and male ampullae c small abcauline spines d texture e polychotomous branches with aligned dactylopores f gastrostyle g female ampulla.
Figure 2 from: Pica D, Cairns SD, Puce S, Newman WA (2015) Southern hemisphere deep-water stylasterid corals including a new species, Errina labrosa sp. n. (Cnidaria, Hydrozoa, Stylasteridae), with notes on some symbiotic scalpellids (Cirripedia, Thoracica, Scalpellidae). ZooKeys 472: 1-25. https://doi.org/10.3897/zookeys.472.8547
Figure 2 - Errina fissurata Gray, 1872. a Colony. SEM micrographs of b apical branch c–d reticulate-granular coenosteal texture e gastrostyle f bifurcating spines of gastrostyle g different type of pores: gastropore (black arrow), large dactylopore spine (yellow arrow), small dactylopore spine (orange arrow) and large round pore (red arrow) h large dactylopore spine (yellow arrow), small dactylopore spines (orange arrows) and large round pore (red arrow) i large adcauline dactylopore spines j dactylostyles k small dactylopore spine l female ampulla m male ampulla.
Figure 5 from: Pica D, Cairns SD, Puce S, Newman WA (2015) Southern hemisphere deep-water stylasterid corals including a new species, Errina labrosa sp. n. (Cnidaria, Hydrozoa, Stylasteridae), with notes on some symbiotic scalpellids (Cirripedia, Thoracica, Scalpellidae). ZooKeys 472: 1-25. https://doi.org/10.3897/zookeys.472.8547
Figure 5 - Errina labrosa sp. n. SEM micrographs of a dactylopore without spine b dactylostyle c–d ampullae.
Figure 7 from: Pica D, Cairns SD, Puce S, Newman WA (2015) Southern hemisphere deep-water stylasterid corals including a new species, Errina labrosa sp. n. (Cnidaria, Hydrozoa, Stylasteridae), with notes on some symbiotic scalpellids (Cirripedia, Thoracica, Scalpellidae). ZooKeys 472: 1-25. https://doi.org/10.3897/zookeys.472.8547
Figure 7 - a–b Peduncle of Arcoscalpellum sp. 1 not covered by coenosteum of Errina labrosa sp. n. c–d Peduncle of Arcoscalpellum sp. 2 not covered by coenosteum in Inferiolabiata spinosa and SEM micrograph of same species e scalpelline sp. 2 concentrated in the basal portion in Errina antarctica f peduncle Ornatoscalpellum cf. gibberum attached to but free of coral skeleton in Errina antarctica g circular bumps with little depressions on the top in Errina antarctica h scalpelline sp. 3 with peduncle fully and lower margin of capitulum partially covered by the calcareous skeleton of Stephanohelia sp.
Figure 3 from: Pica D, Cairns SD, Puce S, Newman WA (2015) Southern hemisphere deep-water stylasterid corals including a new species, Errina labrosa sp. n. (Cnidaria, Hydrozoa, Stylasteridae), with notes on some symbiotic scalpellids (Cirripedia, Thoracica, Scalpellidae). ZooKeys 472: 1-25. https://doi.org/10.3897/zookeys.472.8547
Figure 3 - Errina labrosa sp. n. a–b Holotype. SEM micrographs of c spiny branch apex with gastropores and dactylopores uniformly distributed d middle portion of the colony e lateral view of the colony branch with gastropores are aligned and surrounded by the dactylopores f superficial coenosteum without pore g texture reticulate-granular h gastropore with lip i gastropore without lip.
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.