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.
247
datasets available to search
ShareScore release 0.9.0
Dataset results
247 results for “sponge association”
Figure 6 in Two new species of asterocherid (Copepoda: Siphonostomatoida) associated with a sponge from the Strait of Messina, Italy: taxonomic and ecological traits
Figure 6. Psilomyzon laetitiae sp. nov.: adult male. (A) antennule; (B) detail of antennule segments 8–11; (C) leg 4; (D) detail of the second endopodal segment of leg 4.
Figure 2 in Two new species of asterocherid (Copepoda: Siphonostomatoida) associated with a sponge from the Strait of Messina, Italy: taxonomic and ecological traits
Figure 2. Psilomyzon laetitiae sp. nov.: adult female. (A) habitus, dorsal; (B) antennule; (C) detail of antennule segments 8–11.
Figure 3 in Two new species of asterocherid (Copepoda: Siphonostomatoida) associated with a sponge from the Strait of Messina, Italy: taxonomic and ecological traits
Figure 3. Psilomyzon laetitiae sp. nov.: adult female. (A) antenna; (B) mandible; (C) maxillule; (D) maxilla; (E) maxilliped.
Figure 4 in Morphology and natural history of the cryptogenic sponge associate Polydora colonia Moore, 1907 (Polychaeta: Spionidae)
Figure 4. Polydora colonia and its sponge host Microciona prolifera. (A) Uncolonized branch of Microciona prolifera. (B) Colonized branch of M. prolifera showing the network of worm tubes on surface of the sponge. (C) Regenerating adult worm with gut containing sponge material. (D) Gut contents showing orange sponge material and two sponge spicules (arrows). Scale: 10 mm (A, B); 200 µm (C); 50 µm (D).
Figure 6 in Morphology and natural history of the cryptogenic sponge associate Polydora colonia Moore, 1907 (Polychaeta: Spionidae)
Figure 6. Symbionts of Polydora colonia, scanning electron micrographs. (A) The ciliate Urceolaria sp. attached to the posterior end of a regenerating worm. (B) Oblique lateral view of oral surface of Urceolaria sp. showing main ring. (C) Lateral view of Urceolaria sp. showing the oral (or) and aboral (ab) region. (D) Overview of the parasitic copepod Cymbasoma sp. with one pair of non-fused antennae (arrowhead showing intact non-fused antenna and arrow showing point of attachment of the second non-fused antenna) and one pair of fused antennae (fu). (E) Abdominal region showing protective sheath that houses the thoracic appendages, arrow pointing to posterior end of the sheath. (F) Lateral view of non-fused antenna. Scale: 100 µm (A); 40 µm (B, C); 500 µm (D); 200 µm (E, F).
Figure 2 in Morphology and natural history of the cryptogenic sponge associate Polydora colonia Moore, 1907 (Polychaeta: Spionidae)
Figure 2. Polydora colonia, adult morphology based on scanning electron microscopy. (A) Overview of P. colonia. (B) Ventral view of palps showing the food groove lined by frontal cilia (fc) and papillae (pa). (C) Fifth chaetiger showing modified spines (arrow). (D) Single fifth chaetiger spine and dorsal fascicle of notochaetae. (E) Posterior end of worm showing cupshaped pygidium along with boat hooks of varying curvature. (F) Posterior end and pygidium showing boat hooks on posterior chaetigers. Scale: 500 µm (A); 50 µm (B); 100 µm (C); 25 µm (D); 200 µm (E, F).
Figure 1 in Morphology and natural history of the cryptogenic sponge associate Polydora colonia Moore, 1907 (Polychaeta: Spionidae)
Figure 1. Polydora colonia, adult morphology based on light microscopy (USNM1156935, 1156936, 1156937). (A) Anterior end, dorsal view showing ciliates (arrow) attached to chaetigers 5, 6 and 7. (B) Anterior end, lateral view. (C) Posterior chaetigers and pygidium, dorsal view showing curved boat hooks. (D) Notochaetae from chaetiger 5. (E) Three modified fifth chaetiger spines with companion chaetae. (F) Bidentate hooded hooks from chaetiger 10. (G) Two boat hooks from the posterior end. Scale: 250 µm (A); 100 µm (B, C); 25 µm (D–G).
Figure 3 in Morphology and natural history of the cryptogenic sponge associate Polydora colonia Moore, 1907 (Polychaeta: Spionidae)
Figure 3. Map showing worldwide distribution of Polydora colonia. References for records: 1, Moore 1907, Blake 1971; 2, present study; 3, Hartman 1945; 4, Dauer 1974; 5, Jones 1962; 6, Radashevsky unpublished; 7, Neves and Rocha 2008, Cangussu et al. 2010; 8, Blake 1983; 9, Day 1957; 10, Aguirre et al. 1986, Tena et al. 2000, Zenetos et al. 2010, Occhipinti-Ambrogi et al. 2010.
Figure 5 in Morphology and natural history of the cryptogenic sponge associate Polydora colonia Moore, 1907 (Polychaeta: Spionidae)
Figure 5. Polydora colonia, larvae and individual regenerating after architomic division. (A) Seven-chaetiger larva, dorsal view. (B) 13-chaetiger larva that settled on the sponge, dorsal view. (C) Individual with four original segments regenerating anterior and posterior ends. Scale: 100 µm (A); 250 µm (B, C).
FIG. 1 in Development of external sexual characters in the deep-sea sponge-associated shrimp Spongicola japonica Kubo (Crustacea: Decapoda: Spongicolidae)
FIG. 1. Spongicola japonica Kubo. (A) Ventral view of the posterior thoracic segments of male (5.2 mm CL), (B) same of female (5.7 mm CL), (C) merus of pereopod 3 of male (7.1 mm CL), (D) same of female (7.6 mm CL).
FIG. 7 in Development of external sexual characters in the deep-sea sponge-associated shrimp Spongicola japonica Kubo (Crustacea: Decapoda: Spongicolidae)
FIG. 7. Relative growth of AW against CL in Spongicola japonica Kubo. Triangles, open circles and closed circles indicate males, non-ovigerous and ovigerous females, respectively.
FIG. 6 in Development of external sexual characters in the deep-sea sponge-associated shrimp Spongicola japonica Kubo (Crustacea: Decapoda: Spongicolidae)
FIG. 6. Spongicola japonica Kubo. (A) Lateral view of abdomen of non-ovigerous female (5.1 mm CL), (B) same of non-ovigerous female (5.7 mm CL), (C) same of nonovigerous female (5.7 mm CL), (D) same of ovigerous female (6.8 mm CL), (E) same of male (6.3 mm CL).
FIG. 4 in Development of external sexual characters in the deep-sea sponge-associated shrimp Spongicola japonica Kubo (Crustacea: Decapoda: Spongicolidae)
FIG. 4. Spongicola japonica Kubo. (A) Frontal view of left pleopod 1 of non-ovigerous female (5.1 mm CL), (B) same of non-ovigerous female (5.7 mm CL), (C) same of non-ovigerous female (5.7 mm CL), (D) same of ovigerous female (6.8 mm CL), (E) same of male (6.3 mm CL).
FIG. 3 in Development of external sexual characters in the deep-sea sponge-associated shrimp Spongicola japonica Kubo (Crustacea: Decapoda: Spongicolidae)
FIG. 3. Relative growth in CHL of pereopod 3 against CL in Spongicola japonica Kubo. Triangles, open circles and closed circles indicate males, non-ovigerous and ovigerous females, respectively.
FIG. 2 in Development of external sexual characters in the deep-sea sponge-associated shrimp Spongicola japonica Kubo (Crustacea: Decapoda: Spongicolidae)
FIG. 2. Size relationship between males and females in CL and CHL of sexual pairs. A female and male are equal size at the line. Triangles and circles indicate CHL and CL.
FIGURE 7 in Typtonomenaeus formosanus gen. et sp. nov., a new sponge-associated pontoniine shrimp (Crustacea: Decapoda: Palaemonidae: Pontoniinae) from northern Taiwan
FIGURE 7. Alive coloration of Typtonomenaeus formosanus gen. et sp. nov., general view: a, b—holotype, non-ovigerous female; c, d—paratype, male. Scale—1 mm.
FIGURE 5 in Typtonomenaeus formosanus gen. et sp. nov., a new sponge-associated pontoniine shrimp (Crustacea: Decapoda: Palaemonidae: Pontoniinae) from northern Taiwan
FIGURE 5. Typtonomenaeus formosanus gen. et sp. nov., holotype, non-ovigerous female: a, b—major pereiopod II, general view; c–e—same, distal part of propodus and dactylus, different views; f—minor pereiopod II, general dorsal view; g–i—same, distal part of propodus and dactylus, different views.
FIGURE 1 in Typtonomenaeus formosanus gen. et sp. nov., a new sponge-associated pontoniine shrimp (Crustacea: Decapoda: Palaemonidae: Pontoniinae) from northern Taiwan
FIGURE 1. Typtonomenaeus formosanus gen. et sp. nov., general lateral view: a—holotype, non-ovigerous female; b— paratype, male.
FIGURE 2 in Typtonomenaeus formosanus gen. et sp. nov., a new sponge-associated pontoniine shrimp (Crustacea: Decapoda: Palaemonidae: Pontoniinae) from northern Taiwan
FIGURE 2. Typtonomenaeus formosanus gen. et sp. nov., a, b, d–f—holotype, non-ovigerous female; c—paratype, male: a— front of carapace, dorsal view; b, c—same, lateral view; d—sixth abdominal somite, uropods and telson, dorsal view; e— antennula; f—antenna.
FIGURE 6 in Typtonomenaeus formosanus gen. et sp. nov., a new sponge-associated pontoniine shrimp (Crustacea: Decapoda: Palaemonidae: Pontoniinae) from northern Taiwan
FIGURE 6. Typtonomenaeus formosanus gen. et sp. nov., paratype, male: a—major pereiopod II, lateral view; b—same, dorsal view; c—same, distal part of propodus and dactylus, ventral view; d—minor pereiopod II, lateral view; e—same, dorsal view; f—pleopod II with appendix interna and appendix masculina.
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.