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Fig. 4 in First Record of Maculobates (Acari: Oribatida: Liebstadiidae) from Japan, with a Redescription Based on Specimens from the Ryukyu Archipelago
Fig. 4. SEM photographs of Maculobates bruneiensis Ermilov, Chatterjee and Marshall, 2013, sex unknown. A, ventral view; B: base of leg 4, ventral view, leg 4 removed; C, base of leg 4, lateral view. Scale bars: 50 µm for A; 30 µm for B and C.
Fig. 7 in First Record of Maculobates (Acari: Oribatida: Liebstadiidae) from Japan, with a Redescription Based on Specimens from the Ryukyu Archipelago
Fig. 7. Maximum likelihood (ML) tree of Maculobates bruneiensis Ermilov, Chatterjee and Marshall, 2013 and brachypyline mites based on 18S rRNA sequence data. Numbers adjacent to clades represent the bootstrap percentages of the ML analysis based on 1000 replicates. Family and superfamily names follow Subías (2013).
Fig. 3 in First Record of Maculobates (Acari: Oribatida: Liebstadiidae) from Japan, with a Redescription Based on Specimens from the Ryukyu Archipelago
Fig. 3. Maculobates bruneiensis Ermilov, Chatterjee and Marshall, 2013. A, palp, sex unknown (NSMT-Ac 13818); B, SEM photographs of tarsus of palp, lateral view, sex unknown; C, SEM photograph of ventral view, sex unknown; D, chelicerae, sex unknown (NSMT-Ac 13818). Scale bars: 30 µm for A and D; 5 µm for B and C.
Fig. 10 in Redescriptions of Chromis notata (Temminck and Schlegel, 1843) and C. kennensis Whitley, 1964 with the Description of a New Species of Chromis (Perciformes: Pomacentridae)
Fig. 10. Photographs of Chromis yamakawai sp. nov. A, KAUM-I. 40100, juvenile, 31.9 mm SL, Iou-jima island, Kagoshima, Japan; B, NSMT-P 111948, holotype, 83.0 mm SL, Yoron-jima island, Kagoshima, Japan; C, juvenile, Hachijo-jima island, Izu Islands, Japan (photo by S. Kato); D, adult, Hachijo-jima island, Izu Islands, Japan (photo by S. Kato).
Fig. 12 in Redescriptions of Chromis notata (Temminck and Schlegel, 1843) and C. kennensis Whitley, 1964 with the Description of a New Species of Chromis (Perciformes: Pomacentridae)
Fig. 12. Heads of three species of Chromis. A–D, C. notata (A, KAUM-I. 26534, 97.7 mm SL, Tobi-shima island, Yamagata, Japan; B, KAUM-I. 33715, 104.5 mm SL, Kagoshima, Japan; C, KPM-NI 24878, 100.0 mm SL, Enoshima island, Kanagawa, Japan; D: ZUMT 53957, 126.3 mm SL, Miyake-jima island, Izu Islands, Japan); E, C. kennensis (AMS IB. 4973, holotype, 77.6 mm SL, Kenn Reef, Coral Sea); F, C. yamakawai sp. nov. (NSMT-P 111948, holotype, 83.0 mm SL, Yoron-jima island, Kagoshima, Japan). AN, anterior nostril; PN, posterior nostril.
Fig. 11 in Redescriptions of Chromis notata (Temminck and Schlegel, 1843) and C. kennensis Whitley, 1964 with the Description of a New Species of Chromis (Perciformes: Pomacentridae)
Fig. 11. Relationships of (A) basal width of pelvic fin axillary scale and (B) basal width of scale between bases of pelvic fins to standard length in Chromis kennensis (◆) and C. yamakawai sp. nov. (★).
Fig. 2 in Redescriptions of Chromis notata (Temminck and Schlegel, 1843) and C. kennensis Whitley, 1964 with the Description of a New Species of Chromis (Perciformes: Pomacentridae)
Fig. 2. Primary type specimens of nominal species regarded as Chromis notata. A, lectotype of Heliases notatus (RMNH.PISC. 895, 86.8 mm SL); B, holotype of Chromis villadolidi (FMNH 59185, 101.0 mm SL); C, holotype of Chromis miyakeensis (ZUMT 53957, 126.3 mm SL); D, holotype of Chromis flavomaculatus (BSKU 8482, 84.8 mm SL).
Fig. 9 in Redescriptions of Chromis notata (Temminck and Schlegel, 1843) and C. kennensis Whitley, 1964 with the Description of a New Species of Chromis (Perciformes: Pomacentridae)
Fig. 9. Distributional records of Chromis kennensis (◆) and C. yamakawai sp. nov. (★) on the basis of specimens examined in this study. Some symbols include more than one specimen.
Fig. 1 in Redescriptions of Chromis notata (Temminck and Schlegel, 1843) and C. kennensis Whitley, 1964 with the Description of a New Species of Chromis (Perciformes: Pomacentridae)
Fig. 1. Measurements of basal widths of scales. A, pelvic fin axillary scale, lateral view; B, scale between bases of pelvic fins, ventral view.
Fig. 10 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 10. Dendronephthya flabellifera (Studer, 1888), NMBE-299. A, Sclerites from surface layer of upper part of stalk; B, sclerites from interior of upper part of stalk; C–E, details of uppermost parts of such sclerites; F, flattened radiates from interior of upper part of stalk; G, rods from interior of upper part of stalk. Scales: 0.10 mm (A, C–G); 1.0 mm (B).
Fig. 17 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 17. Kükenthal's (1895) Dendronephthya pumilio, (ZSM). A, Polyp showing anthocodial armature; B, point spindles; C, tentacle sclerites. Scales: 0.1 mm.
Fig. 16 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 16. Dendronephthya pumilio (Studer, 1888), NMBE-310. A, Sclerites from surface layer of stalk; B, C, sclerites from interior of stalk. Scale: 0.10 mm.
Fig. 3 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 3. Dendronephthya doederleini Külenthal, 1905, NMBE-295-1. A, Spindles from surface layer of branches; B, detail of upper part of such a spindle; C, rod from surface layer of branches; D, flat radiates from interior of branches; E, rods from interior of branches. Scales: 1 mm (A); 0.10 mm (B–E).
Fig. 7 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 7. Dendronephthya punicea (Studer, 1888), NMBE-303-1. A, Spindles from surface layer of branches; B, detail of upper part of such a spindle; C, rod from surface layer of branches; D, detail of lower part of such a rod; E, sclerites from interior of branches; F, sclerites from surface layer of stalk, G, sclerites from interior of stalk, H, detail of sclerite in F; I, caterpillar-like sclerites from interior of stalk. Scales: 0.50 mm (A, C, F); 0.10 mm (E, G, I); 0.05 mm (B, D).
Fig. 6 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 6. Dendronephthya punicea (Studer, 1888), NMBE-303-1. A, B, Polyps showing anthocodial armature; C, detail of uppermost part of a supporting bundle spindle; D, tentacle sclerites; E, point spindles; F, detail of upper part of a point spindle; G, detail of middle part of a point spindle; H, intermediate spindle; I, crown spindle. Scales: 0.10 mm.
Fig. 2 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 2. Dendronephthya doederleini Külenthal, 1905, NMBE-295-1. A, B, Polyp showing anthocodial armature; C, detail of uppermost part of a supporting bundle spindle; D, tentacle sclerites; E, point spindles; F, detail of uppermost part of a point spindle; G, detail of middle part of a point spindle. Scales: 0.10 mm.
Fig. 8 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 8. Dendronephthya flabellifera (Studer, 1888), NMBE-299. A, B, Polyps showing anthocodial armature; C, tentacle sclerites; D, tentacle rachis sclerites; E, point spindles, F, detail of uppermost part of a supporting bundle spindle; G, detail of uppermost part of a point spindle; H, detail of lowest part of a point spindle. Scales: 0.10 mm.
Fig. 5 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 5. Dendronephthya sp., NMBE-295-2. A, B, Polyps showing anthocodial armature; C, tentacle sclerites; D, point spindles; E, F, details of upper parts of point spindles; G, detail of uppermost part of a supporting bundle spindle. Scales: 0.10 mm.
Fig. 14 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 14. Dendronephthya pumilio (Studer, 1888), NMBE-310. A, B, Polyp showing anthocodial armature; C, tentacle sclerites; D, point spindles; E, detail of upper part of a point spindle; F, detail of lower part of a point spindle; G, supporting bundle spindle; H, detail of upper part of a supporting bundle spindle; I, detail of lower part of a supporting bundle spindle. Scales: 0.10 mm.
Fig. 1 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 1. Diagram of anthocodial armature of Dendronephthya. Abbreviations: Cr, crown sclerites; M, intermediate sclerites; p, point sclerites; P, dominant uppermost sclerites; S.B., supporting bundle; SS, supplementary sclerites; t, tentacle sclerites.
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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.