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.
413
datasets available to search
ShareScore release 0.9.0
Dataset results
413 results for “Stalk”
Fig. 1 in New species of Rhizomyces (Ascomycota, Laboulbeniales) parasitic on African stalk-eyed flies (Diptera, Diopsidae)
Fig. 1. Photomicrographs of the new species of Rhizomyces Thaxt.: A. R. forcipatus W.Rossi & Feijen sp. nov. (FI 4100a). B. Thallus of R. forcipatus sp. nov. from the wing of Teloglabrus sp. (FI 4125). C. Immature thallus of R. forcipatus sp. nov. showing the trichogyne and the basal cell holding firmly a piece of the exoskeleton of the host insect (FI 4099). D. R. tschirnhausii W.Rossi & Feijen sp. nov. (FI 4091). E. Upper portion of the perithecium of R. tschirnhausii sp. nov. (FI 4090). F. R. ramosus W.Rossi & Feijen sp. nov. (FI 4201a), amid the four mature perithecia, near the base of the stalk cells, it can be seen a fifth very immature perithecium bearing the trichogyne. G. R. ramosus sp. nov. (FI 4201a), the pyriform haustorium with remains of the host integument and cell I showing two primordia of new branches. Scale bars: 50 µm.
Figure 7 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 7. Columnal ontogeny in the proxistele of the phenotype liliaceus: specimen USNM 35996. A, B, young internodal. C, D, mature internodal of the distal proxistele. A, C, general view. B, D, interpetaloid zone.
Figure 2 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 2. Segment of arm (tertibrachial, IIIBr) showing the everted distal border of brachials united by a muscular articulation (m), and a brachial pair united by a synostosis (s). Specimen USNM 36068.
Figure 3 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 3. Nonmuscular brachial articulations: specimen USNM 35996. A, B, transverse synarthry at secundibrachial (IIBr)1+2. A, distal facet of IIBr1. B, proximal facet of IIBr2. C, D, synostoses in a tertibrachial (IIIBr). C, distal synostosis with flat undifferentiated facet. D, more proximal flat synostosis, with a narrow syzygial crenularium appearing on the outer border.
Figure 4 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 4. Proximal arm syzygies in the phenotype springeri specimen USNM 36068 (A–C) and the phenotype liliaceus specimen USNM 35996 (D–F). A, D, distal facet of primibrachial 1 (IBr1). B, C, proximal facet of secundibrachial 4 (IIBr4). E, F, proximal facet of IIBr4.
Figure 1 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 1. External morphology of Teliocrinus springeri. Specimen from the Natural History Museum (London) described by Clark (1932). A, general view. B, detail of the proximal crown.
Figure 9 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 9. Infranodal cryptosymplexy: phenotype springeri, specimen 36068 (A–C), and phenotype liliaceus, specimen 35996 (D–F). A, D, general view of mature nodal. B, flat petaloid zone and fine axial groove in interpetaloid zone. C, D, detail of lumen. E, slightly concave petaloid zone and conspicuous axial groove in interpetaloid zone.
Figure 10 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 10. Cirrus socket and cirral: specimen USNM 36068 (A) and specimen USNM 35996 (B, C). A, B, cirrus socket. C, cirral synarthry.
Figure 8 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 8. Columnal ontogeny of the phenotype springeri from the distal proxistele to mature noditaxis without interarticular pores: specimen USNM 36068. A, B, immature internodal of the last noditaxis with conspicuous interarticular pores. C, mature internodal of mature noditaxis.
Figure 5 in The genus Teliocrinus (Crinoidea, Echinodermata): a key taxon among pentacrinid stalked crinoids
Figure 5. Muscular brachial articulations: specimen USNM 35996. A, quadribrachial (IVBr). B, IIBrax. C, IIIBrax.
◂Fig. 3 Gynoecium of C. crenata %yellow frames), C. cf. grandicalyx %blue frames) and C. sinensis %pink frames; A, B stack shot images; C–K light microscopy; G polarised light; TS in horizontal orientation). A, B Anthetic female flower, calyx and corolla partly removed. B LS of gynoecium. C LS of functionally female flower %note strongly stained peripheral tissue of corolla, anther and gynoecium). D LS of gynoecium. E, F TS of functionally female flower %note strongly stained, peripheral tissue). G TS of functionally female flower %note crystal deposition). H LS of ovule %note stalked embryo sac). J TS of functionally male flower with non-functional ovules. K LS of functionally male flower %style lacking, original position indicated by an asterisk) %LS, longisection; TS, transverse section; a,anther; bs, basal septum; c, calyx; car, carpel; co, corolla; db, dorsal bundles; es, embryo sac; fs, false septum; lb, lateral bundles; o, ovule; stg, stigma; sty, style; t, trichomes; tt, transmission tissue; ut, peripheral, strongly stained tissue; vb, ventral bundles; vs, ventral slit) in Observations on flower and fruit anatomy in dioecious species of Cordia (Cordiaceae, Boraginales) with evolutionary interpretations
◂Fig. 3 Gynoecium of C. crenata %yellow frames), C. cf. grandicalyx %blue frames) and C. sinensis %pink frames; A, B stack shot images; C–K light microscopy; G polarised light; TS in horizontal orientation). A, B Anthetic female flower, calyx and corolla partly removed. B LS of gynoecium. C LS of functionally female flower %note strongly stained peripheral tissue of corolla, anther and gynoecium). D LS of gynoecium. E, F TS of functionally female flower %note strongly stained, peripheral tissue). G TS of functionally female flower %note crystal deposition). H LS of ovule %note stalked embryo sac). J TS of functionally male flower with non-functional ovules. K LS of functionally male flower %style lacking, original position indicated by an asterisk) %LS, longisection; TS, transverse section; a,anther; bs, basal septum; c, calyx; car, carpel; co, corolla; db, dorsal bundles; es, embryo sac; fs, false septum; lb, lateral bundles; o, ovule; stg, stigma; sty, style; t, trichomes; tt, transmission tissue; ut, peripheral, strongly stained tissue; vb, ventral bundles; vs, ventral slit)
Figs 90–92 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Figs 90–92. Panjange bukidnon Huber sp. nov. (ZFMK, Ar 13023). 90. Male prosoma and chelicerae, frontal view. 91–92. Left male palp, prolateral and retrolateral views. Abbreviations: a = appendix; b = genital bulb; e = embolus; h = hinge; p = procursus. Scale bars = 0.5 mm.
Figs 2–15. Live specimens. 2–4 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Figs 2–15. Live specimens. 2–4. Pa. lanthana, Mt. Isarog, Ƌ, ♀ with eggsac, and penultimate Ƌ. 5. Pa. malagos Huber sp. nov., Ƌ. 6–7. Pa. casaroro Huber sp. nov., ƋƋ. 8–10. Pa. camiguin Huber sp. nov. 8. ♀ with parasitized eggsac, from Camiguin Island. 9. Ƌ from Bohol Island. 10. Ƌ from Camiguin Island. 11–13. Pa. dinagat Huber sp. nov., Ƌ, ♀ with eggsac, and penultimate Ƌ. 14–15. Pa. marilog Huber sp. nov., ƋƋ showing color variation.
Figs 84–89 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Figs 84–89. Panjange marilog Huber sp. nov., SEM micrographs (ZFMK, Ar 13019). 84. Male prosoma, frontal view (asterisk marks stronger hairs below ocular area). 85. Spines on male clypeus. 86. Left male palp, prolateral view. 87. Right eye stalk, triad, and hooked process, oblique frontal view. 88. Male gonopore. 89. Male palpal tarsal organ. Abbreviations: a = appendix; b = genital bulb; p = procursus; te = tarsal elongation; sp = spines on clypeus; vp = ventral process. Scale bars: 84 = 300 µm; 85 = 40 µm; 86 = 200 µm; 87 = 80 µm; 88 = 30 µm; 89 = 20 µm.
Figs 69–73 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Figs 69–73. Panjange isarog Huber sp. nov. (ZFMK, Ar 13013, 13014). 69–70. Left male palp, prolateral and retrolateral views. 71. Male prosoma and chelicerae, frontal view. 72–73. Cleared female genitalia, ventral and dorsal views. Abbreviations: a = appendix; b = genital bulb; e = embolus; p = procursus; ps = proximal bulbal sclerite; te = tarsal elongation; tp = toothed process of proximal bulbal sclerite; tr = trochanter. Scale bars: 69–71 = 0.5 mm; 72–73 = 0.3 mm.
Figs 35–37 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Figs 35–37. Panjange camiguin Huber sp. nov. (ZFMK, Ar 13003, 13004). 35. Male prosoma and chelicerae, frontal view. 36–37. Cleared female genitalia, ventral and dorsal views. Scale bars = 0.5 mm.
Figs 59–63 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Figs 59–63. Panjange camiguin Huber sp. nov., SEM micrographs (ZFMK, Ar 13003, 13004). 59. Female spinnerets. 60. Male gonopore. 61. Epigynum and scape, ventral view. 62. Female ALS. 63. Female PMS. Abbreviations: ALS = anterior lateral spinneret; PLS = posterior lateral spinneret; PMS = posterior median spinneret. Scale bars: 59 = 60 µm; 60 = 30 µm; 61 = 100 µm; 62–63 = 10 µm.
Figs 20–23 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Figs 20–23. Panjange malagos Huber sp. nov. (ZFMK, Ar 12999). 20–21. Right male palp, prolateral and retrolateral views. 22–23. Cleared female genitalia, ventral and dorsal views. Scale bars = 0.5 mm.
Fig. 1 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Fig. 1. Strict consensus of two most parsimonious cladograms of Panjange Deeleman-Reinhold & Deeleman, 1983 resulting from analyses of the matrix in Appendix 1 using equal character weights, successive weighting, and implicit enumeration. Only unambiguous character changes are shown. A = clade with asymmetric male palps; * = positions of Pa. bukidnon Huber sp. nov. in preliminary cladistic analyses. See Cladistic analysis section for further details.
Figs 31–34 in Evolution of genital asymmetry, exaggerated eye stalks, and extreme palpal elongation in Panjange spiders (Araneae: Pholcidae)
Figs 31–34. Panjange casaroro Huber sp. nov., SEM micrographs (ZFMK, Ar 13001). 31. Female spinnerets. 32. Female ALS. 33–34. Epigynum and scape. 33. Lateral (slightly posterior) view. 34. Ventral view. Abbreviations: ALS, anterior lateral spinneret; PLS = posterior lateral spinneret; PMS = posterior median spinneret. Scale bars: 31 = 60 µm; 32 = 10 µm; 33–34 = 100 µm.
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.