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Figure 26 in A review of Australian Conescharellinidae (Bryozoa: Cheilostomata)
Figure 26. Crucescharellina australis sp.nov. A–D, NMV F99024, holotype. A, colony from adapical surface, scale = 2 mm. B, detail of branch showing orifices, avicularia and root pore (arrowed), scale = 500 µm. C, detail of root pore, scale = 200 µm. D, detail of orifice with adapical pore, direction of growth arrowed, scale = 100 µm. E, NMV F99025, paratype, large spatulate axillary avicularium, scale = 100 µm.
Figure 24 in A review of Australian Conescharellinidae (Bryozoa: Cheilostomata)
Figure 24. Trochosodon anomalus sp.nov. A–B, NMV F99018, holotype. A, lateral view of colony, direction of growth arrowed, scale = 500 _m. B, antapical view showing developing zooid, scale = 500 µm. C–D, BMNH 2003.11.27.2. C, lateral view of colony, growth direction arrowed, scale = 500 µm. D, antapical view, scale = 500 µm. E–F, NMV F99018, holotype. E, adapical region showing root pores and avicularia, scale = 200 µm. F, detail of orifices and avicularia, scale = 200 µm.
Figure 28. Zeuglopora lanceolata Maplestone, 1909. NMV F99026. A in A review of Australian Conescharellinidae (Bryozoa: Cheilostomata)
Figure 28. Zeuglopora lanceolata Maplestone, 1909. NMV F99026. A, detail of orifice with adapical pore, scale = 100 µm. B, detail of large, marginal zooid orifice with surrounding avicularia, direction of growth arrowed, scale = 200 µm. C. adapical region showing lunate root pores, scale =200 µm.
Figure 13. A–D in A review of Australian Conescharellinidae (Bryozoa: Cheilostomata)
Figure 13. A–D, Conescharellina ocellata sp. nov. A–B, NMV P311805. A, adapical view of colony, scale = 500 µm. B, detail of orifices, avicularia and septular pores, scale = 200 µm. C–D, NMV P311806. C, antapical view, scale = 500 µm. D, marginal view showing peristomes and paired avicularia (arrow), scale = 200 µm. E–F, Conescharellina macgillivrayi sp. nov. NMV P311810. E, adapical view of colony, scale = 500 µm. F, detail of orifices with adapical pores, peristomes and avicularia, scale = 200 µm.
Figure 16 in A review of Australian Conescharellinidae (Bryozoa: Cheilostomata)
Figure 16. Trochosodon ampulla (Maplestone, 1909). A, NMV F99005, adapical view of colony, scale = 1 mm. B–C, NMV F99006. B, lateral view of larger colony, scale = 1 mm. C, detail of orifice and avicularia, scale = 100 µm.
Figure 13 in A review of the Tertiary fossil Cetacea (Mammalia) localities in Australia
Figure 13. Fossil Cetacea locality in the Gambier Basin, extreme south-east of South Australia. Solid circles represent fossil Cetacea localities. Modified from Alley et al. (1995).
Figure 5 in A review of the Tertiary fossil Cetacea (Mammalia) localities in Australia
Figure 5. Fossil Cetacea localities in the Otway Basin, western Victoria. Solid circles represent fossil Cetacea localities.
Figure 1 in A review of the Tertiary fossil Cetacea (Mammalia) localities in Australia
Figure 1. Correlation chart of Oligocene–Pliocene Australian fossil cetacean-bearing stratigraphic units. Abbreviations: Fmn=Formation; Lst=Limestone; Mbr=Member; Sst=Sandstone. Broken lines indicate uncertain maximum and minimum age ranges of stratigraphic units. Ages, chronostratigraphy, and planktonic foram zones modified from Alley et al. (1995) and Holdgate and Gallagher (2003).
Figure 9 in A review of the Tertiary fossil Cetacea (Mammalia) localities in Australia
Figure 9. Fossil Cetacea localities in the Gippsland Basin, eastern Victoria. Solid circles represent fossil Cetacea localities.
Figure 4 in A review of the Tertiary fossil Cetacea (Mammalia) localities in Australia
Figure 4. Areas with fossil cetacean-bearing localities in Victoria and Tasmania. Solid circles represent fossil Cetacea localities. Modified from Abele et al. (1988) and Holdgate and Gallagher (2003).
Figure 7 in A review of the Tertiary fossil Cetacea (Mammalia) localities in Australia
Figure 7. Fossil Cetacea localities in the Torquay and Port Phillip basins, central coastal Victoria. Solid circles represent fossil Cetacea localities. Modified from Holdgate and Gallagher (2003).
Figure 2 in A review of the Tertiary fossil Cetacea (Mammalia) localities in Australia
Figure 2. Tertiary sedimentary basins with fossil Cetacea localities in Victoria and Tasmania. Modified from Abele et al. (1988) and Holdgate and Gallagher (2003).
Figure 15 in A review of the Tertiary fossil Cetacea (Mammalia) localities in Australia
Figure 15. Fossil Cetacea localities offshore southern Tasmania. Solid circles represent fossil Cetacea localities. Modified from Exon et al. (1997).
FIG. 23 in A review of the genus Macromitrium Brid. (Orthotrichaceae, Bryophyta) in New Caledonia
FIG. 23. — Macromitrium tongense Sull.: morphological diversity among the New Caledonian types with special emphasis on M. villosum var. intermedium (P-V). A-H, P, R, S, transverse sections in the top quarter of branch leaves; Q, transverse section at apex of branch leaf; I-O, U, V, branch leaves; T, dry branch. Drawn from the M. tongense isotype PC0695994 (A) and specimen of Smith 1443 (C), from the M. villosum (Besch.) Broth. syntypes Pancher 574 (B), Balansa 2979 (D, I), Pancher 578 (E-G), from the lectotype of M. subvillosum Broth. & Paris (H, J), lectotype of M. villosum var. intermedium Thér. (Q-S, U), lectotype of M. villosum var. elongatum Thér. (K), lectotype of M. ludoviciae Broth. & Paris (L, M), lectotype of M. densifolium Thér. (N, O), from the specimen M. villosum var. intermedium Thér. Thouvenot NC2311 (P, T, V). Scale bars: A-H, P-S, 10 µm; T, 1 mm; I-O, U, V, 500 µm.
FIG. 20 in A review of the genus Macromitrium Brid. (Orthotrichaceae, Bryophyta) in New Caledonia
FIG. 20. — Macromitrium rufipilum Cardot.: A, capsule; B, upper cells; C, basal cells; D, E, branch leaves; F, half transverse section in transitional part of branch leaf; G, transverse section in top quarter of branch leaf (fragment). All drawn from the lectotype except for E from the specimen Sarasin 391. Scale bars: A, D, E, 1 mm; B, C, 10 µm; F, G, 20 µm.
FIG. 16 in A review of the genus Macromitrium Brid. (Orthotrichaceae, Bryophyta) in New Caledonia
FIG. 16. — Macromitrium pilosum Thér.: A, upper part of dry branch with sporophyte; B-F, branch leaves; G, transverse section in upper third of branch leaf; H, transverse section in mid-leaf; I, transverse section in apex; J, basal and marginal cells; K, upper cells in surface view; L, upper and marginal cells; M, calyptra; N, transitional and marginal cells. Drawn from the lectotype (A, C, J-N), from the lectotype of M. subsessile Broth. & Paris (D-F), from the specimen Guilloud NC2295 (B, G-I). Scale bars: A, M, 1 mm; B-F, 1 mm; G-I, 20 µm; J-L, N, 10 µm.
FIG. 15 in A review of the genus Macromitrium Brid. (Orthotrichaceae, Bryophyta) in New Caledonia
FIG. 15. — Macromitrium panduraefolium Thouvenot: A-F, branch leaves; G, H, branch leaf apices; I, transverse section in top quarter of branch leaf; J, capsule; K, M, perichaetial leaves; L, upper part of dry branch with sporophyte. All drawn from the holotype.Scale bars: A-F, J, K, M, 500 µm; G, H, 100 µm; I, 20 µm; L, 1 mm.
FIG. 22. — Macromitrium tongense Sull. A in A review of the genus Macromitrium Brid. (Orthotrichaceae, Bryophyta) in New Caledonia
FIG. 22. — Macromitrium tongense Sull. A, Dry branch with sporophyte; B, C, E, G, Branch leaves; D, Dwarf male plant; F, Upper cells; H, Basal cells; I, Perichaetial leaf; J, Cells in upper half of basal par of branch leaf. All drawn from the M. villosum (Besch.) Broth. syntypes Pancher 574 (A, B, I), Pancher 578 (D), Balansa 2979 (C, E, F-H, J). Scale bars: A, 1 mm; B-D, E, G, I, 500 µm; F, H, J, 10 µm.
FIG. 13 in A review of the genus Macromitrium Brid. (Orthotrichaceae, Bryophyta) in New Caledonia
FIG. 13. — Macromitrium leratii Broth. & Paris: A, perichaetium and sporophyte; B-E, branch leaves; F, upper cells; G, basal cells; H, I, perichaetial leaves; J, K, transverse section in apices of branch leaves; L, transverse section in upper third of branch leaf; M, perichaetial leaf apex. Drawn from isotypes PC0096510 (K, L) and PC0096497 (A); from specimens Thouvenot NC1018 (B, C, E), NC870 (D), NC2237 (H, I); Larraín 35492 (F, G, M); Müller NC210 (J). Scale bars: A, 1 mm; B-E, H, I, 1 mm; F, G, 10 µm; J-L, 20 µm; M, 100 µm.
FIG. 12 in A review of the genus Macromitrium Brid. (Orthotrichaceae, Bryophyta) in New Caledonia
FIG. 12. — Macromitrium larrainii Thouvenot & K.T.Yong: A, upper part of dry branch; B-E, branch leaves; F, upper cells; G-H, branch leaf apices; I, capsule; J, calyptra; K, basal cells; L, transverse section in basal part of branch leaf; M, transverse section in top quarter of lamina; N, transitional cells. All drawn from the holotype, except I, J from the specimen Müller NC98. Scale bars: A, I, J, 1 mm; B-E, 500 µm; F, K, N, 10 µm; G, L, M, 50 µm; H, 100 µm.
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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.