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.
123
datasets available to search
ShareScore release 0.9.0
Dataset results
123 results for “Light microscopy”
FIGURE 5 in Pollen morphology of selected species of Lentibulariaceae Rich. from Western Cuba based on light microscopy and its taxonomic implications
FIGURE 5. Principal Component Analysis (PCA) performed on the pollen metric variables for Genlisea, Pinguicula, and Utricularia. G.fil = Genlisea filiformis, P.alb = Pinguicula albida, P.cub= P. cubensis, P.fil.a = P. filifolia subsp. alba, P.fil.f = Pinguicula filifolia subsp. filifolia, U.fol = Utricularia foliosa, U.gib = U. gibba, U.jun = U. juncea, U.pus = U. pusilla, U.res = U. resupinata, U.sim = U. simulans, U.sub = U. subulata.
FIGURE 3 in Pollen morphology of selected species of Lentibulariaceae Rich. from Western Cuba based on light microscopy and its taxonomic implications
FIGURE 3. Photomicrographs of pollen grains of Utricularia L. Utricularia pusilla (A, polar view; B, equatorial view); U. resupinata (C, polar view; D, equatorial view; E, ornamentation); U. simulans (F, polar view; G, equatorial view); U. subulata (H, polar view; I, equatorial view). Bars = 10 μm.
FIGURE 2 in Pollen morphology of selected species of Lentibulariaceae Rich. from Western Cuba based on light microscopy and its taxonomic implications
FIGURE 2. Photomicrographs of pollen grains of Utricularia L. Utricularia foliosa (A, polar view; B, equatorial view; C, ornamentation); U. gibba (D, polar view; E, equatorial view; F, ornamentation); U. juncea (G, polar view, H, equatorial view; I, ornamentation). Bars = 10 μm.
FIGURE 1. Germainiella spp. Light microscopy. Figs 1–7. Germainiella engimatica. Valve views. Figs 8–10 in First Report and New Freshwater Species of Germainiella (Bacillariophyta) from the Maolan Nature Reserve, Guizhou Province, China
FIGURE 1. Germainiella spp. Light microscopy. Figs 1–7. Germainiella engimatica. Valve views. Figs 8–10. Germainiella maolaniana, sp. nov. Valve views. All specimens from the holotype slide. Figs 11–13. Germainiella guizhouiana, sp. nov. Valve views. All specimens from the holotype slide. Scale bars = 10 μm.
Figure 1. Light microscopy z in The feeding apparatus and taxonomic position of clawless Apodibius confusus Dastych, 1983 (Tardigrada: Isohypsibiidae)
Figure 1. Light microscopy z–stack images (1000X, oil immersion) of the feeding apparatuses of Apodibius confusus in (A) ventral view and (B) lateral view, and Isohypsibius dastychi in (C) ventral view and (D) lateral view. White arrows point to ventral lamina, black arrows to lateral rod-shaped thickenings, and stars mark peribuccal papulae. Scale bars: 20 µm.
FIGURE 3. Light microscopy. A & B in Cimaria vargasi n. gen, n. sp. (Gastropoda: Pyramidellidae: Odostomiinae) from the Pacific Coast of Costa Rica, Central America
FIGURE 3. Light microscopy. A & B - Cimaria vargasi. Two views of largest shell found (ZMBN 87909); 2.7 mm long. Showing the thickened outer lip in fully grown shells. C - Cimaria sp. Shell from Macau, Brazil (ZMBN 87911); 1.4 mm long.
FIGURE 5–10. Amblyomma oblongoguttatum larva. 5 in Redescription of the larva of Amblyomma oblongoguttatum Koch, 1844 (Acari: Ixodidae) by light and scanning electron microscopy
FIGURE 5–10. Amblyomma oblongoguttatum larva. 5. Gnathosoma, dorsal view (30 µm); 6 Gnathosoma, ventral view (30 µm); 7. Detail of tibiotarsus and hypostome (30 µm); 8. Detail of scutum (30 µm); 9. Coxae I–III (20 µm); 10.Tarsus I, dorsal view (30 µm).
FIGURE 2. Amblyomma oblongoguttatum larva. Tarsus I in Redescription of the larva of Amblyomma oblongoguttatum Koch, 1844 (Acari: Ixodidae) by light and scanning electron microscopy
FIGURE 2. Amblyomma oblongoguttatum larva. Tarsus I dorsal views. Abbreviations: d—dorsal; a— antiaxial; p—paraxial; la—lateral anterior; lp—lateral posterior.
FIGURE 1 in Redescription of the larva of Amblyomma oblongoguttatum Koch, 1844 (Acari: Ixodidae) by light and scanning electron microscopy
FIGURE 1. Amblyomma oblongoguttatum larva. Gnathosoma dorsal (right) and ventral (left) views. Abbreviations: d—dorsal; v—ventral; a—antiaxial; p—paraxial; t—terminal; F—femur; G—genu; Tt—tibiotarsus.
FIGURE 4 in Redescription of the larva of Amblyomma oblongoguttatum Koch, 1844 (Acari: Ixodidae) by light and scanning electron microscopy
FIGURE 4. Amblyomma oblongoguttatum larva. Segmentation model of the idiosoma. Segments are indicated by Roman numbers (III–VI e VIII–XIV) and delimitated by dashed lines (----); series are indicated by Arabic numbers and delimitated by dotted lines (........). Integumentary structures are illustrated.
FIGURE 3. Amblyomma oblongoguttatum larva. Tarsus I in Redescription of the larva of Amblyomma oblongoguttatum Koch, 1844 (Acari: Ixodidae) by light and scanning electron microscopy
FIGURE 3. Amblyomma oblongoguttatum larva. Tarsus I ventral views. Abbreviations: v—ventral; a— antiaxial; p—paraxial; la—lateral anterior; lp—lateral posterior.
(11)-Strobl2023A-DS0001--0010 – Ten Tribolium castaneum long-term live imaging datasets of embryonic development acquired with light sheet fluorescence microscopy
<p>(11)-Strobl2023A-DS0001--0010 – Ten <em>Tribolium castaneum</em> long-term live imaging datasets of embryonic development acquired with light sheet fluorescence microscopy</p>
Supplementary movies and datasets of the paper: Precise targeting for 3D cryo-correlative light and electron microscopy volume imaging of tissues using a FinderTOP
<p>Imaging data supporting the paper: </p> <p>Precise targeting for 3D cryo-correlative light and electron microscopy volume imaging of tissues using a FinderTOP, containing raw and processed data from fluorescent and electron microscopy.</p> <p> </p>
Second wave, late-phase neuroinflammation in the brain of aged 5xFAD transgenic Alzheimer's disease model mice iden-tified using macrolaser light sheet microscopy imaging with tissue clearing
Open the record for dataset details and reuse information.
Light-sheet microscopy enabled by a miniaturized plane illuminator
<p>Light-sheet microscopy enabled by a miniaturized plane illuminator </p>
Figures 31-33 from: Schmidt J, Scholz S, Will K (2022) Character analysis and descriptions of Eocene sphodrine fossils (Coleoptera, Carabidae) using light microscopy, micro-CT scanning, and 3D imaging. Deutsche Entomologische Zeitschrift 69(1): 19-44. https://doi.org/10.3897/dez.69.79931
Figures 31-33 Quasicalathus, light microscopic images of the holotypes of Q. agonicollis sp. nov. (31.) and Q. conservans sp. nov. (32, 33.). 31. Ventral side of head showing chaetotaxy of mentum; 32. General view of the amber piece with fossil in dorsal view; 32. Left lateral view. Abbreviations: ce – compound eye; el – elytron; ems – external seta of submentum; gu – gula; ims – internal seta of submentum; msf – mesofemur; mt – mentum; mtf – metafemur; prf – profemur; pt – pronotum.
Figures 47-51 from: Schmidt J, Scholz S, Will K (2022) Character analysis and descriptions of Eocene sphodrine fossils (Coleoptera, Carabidae) using light microscopy, micro-CT scanning, and 3D imaging. Deutsche Entomologische Zeitschrift 69(1): 19-44. https://doi.org/10.3897/dez.69.79931
Figures 47-51 Quasicalathus elpis (Ortuño and Arillo 2009), volume rendering of specimen "Groehn 7889". 47. Dorsal aspect; 48. Left lateral aspect; 49. Ventral aspect; 50. Pronotum (the arrows point to the insertions of the lateral setae); 51. Prosternum (for better view the prolegs are partly removed using the clipping plane function of Amira software. Abbreviations: cx – procoxa; psp – prosternal process; tr – protrochanter.
Figures 6-12 from: Schmidt J, Scholz S, Will K (2022) Character analysis and descriptions of Eocene sphodrine fossils (Coleoptera, Carabidae) using light microscopy, micro-CT scanning, and 3D imaging. Deutsche Entomologische Zeitschrift 69(1): 19-44. https://doi.org/10.3897/dez.69.79931
Figures 6-12 Quasicalathus elpis (Ortuño and Arillo 2009), light microscopic images of specimens "Groehn 7889" (6–8.) and "Groehn 7962" (9–12.). 6, 10. General view of the amber pieces (in Fig. 6, only the part of the large amber piece bearing the Quasicalathus fossil is shown); 7. Ventral side of body; 8. Left mesotarsi iv + v; 9. Pronotum and anterior part of elytra, left side of body; 11, 12. Medial part of left elytron (Fig. 12 shows the enlarged part of the elytron marked by the white frame in Fig. 11; the white arrow points to the insertion of the discal seta). Abbreviations: bs – insertion of the pronotal laterobasal seta; hm – humerus; I–VIII – elytral intervals 1–8.
Figures 34-38 from: Schmidt J, Scholz S, Will K (2022) Character analysis and descriptions of Eocene sphodrine fossils (Coleoptera, Carabidae) using light microscopy, micro-CT scanning, and 3D imaging. Deutsche Entomologische Zeitschrift 69(1): 19-44. https://doi.org/10.3897/dez.69.79931
Figures 34-38 Quasicalathus elpis (Ortuño and Arillo 2009), volume rendering of specimens "Groehn 4879" (34–37.) and "Groehn 7814" (38.). 34. Dorsal aspect; 35. Right lateral aspect; 36. Ventral aspect; 37, 38. Prosternum and basal portions of prolegs. Abbreviations: cx – procoxa; fm – profemur; psp – prosternal process; tr – protrochanter.
Figures 81-89 from: Schmidt J, Scholz S, Will K (2022) Character analysis and descriptions of Eocene sphodrine fossils (Coleoptera, Carabidae) using light microscopy, micro-CT scanning, and 3D imaging. Deutsche Entomologische Zeitschrift 69(1): 19-44. https://doi.org/10.3897/dez.69.79931
Figures 81-89 Quasicalathus conservans sp. nov., volume rendering of the holotype. 81. Head, dorsal aspect (the arrows point to the insertions of the supraorbital setae); 82. Head, ventral aspect; 83. Left external part of metathorax, ventral view; 84. Submentum (the arrows point to the insertions of the four lateral setae); 85. Posterior part of prosternum and procoxae; 86. Posterior part of metasternum and metacoxae; 87–89. Preserved remains of the aedeagus (87. Right lateral aspect; 88. Dorsal aspect; 89. Left lateral aspect). Abbreviations: bb – basal bulb of aedeagal median lobe; ce – compound eye; cxp – metacoxal plate; eph – partly evaginated lobes of endophallus; gu – gula; mem – metepimeron; mes – metepisternum; mtt – mentum tooth; mv – metaventrite; pcx – procoxa; pmr –preserved distal part of right paramere of aedeagal median lobe; psp – prosternal process; sc – scutellum; sps – setae of sensory pit; tl – terminal lamella of aedeagal median lobe.
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.