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FIGURE 23 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 23. Caulibugula bocki Silén, 1941. A. Holotype UPSZTY 2461, Bonin Islands, Japan. A. Stem of strongly calcified kenozooids and chitinous tubes. B–F. Paratype UPSZTY 191151, Bonin Islands, Japan. B. Branch bifurcation. C. Close-up of zooids at bifurcation. D. Close-up of autozooids along the branch. E. Branch with a partially preserved tubular autozooid. F. Close-up of the tubular autozooid in (E). Scale bars: A, C = 300 µm; B = 500 µm; D, E = 200 µm; F = 100 µm.
FIGURE 38 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 38. Triphyllozoon mauritzoni Silén, 1943. Lectotype (designated here) LUZM 57a (unbleached), Australia. A. General view of the frontal surface. B. Group of autozooids. C. Close-up of an autozooid with large frontal avicularium with bifurcate rostrum and mandible. D. Close up of an autozooid with elliptical frontal avicularium. E. Close-up of the primary orifice. F. Group of zooids, one ovicellate. G. Close-up of the ovicell in (F). H. General view of the dorsal side. I. Dorsal side with basal pillars. Scale bars: A = 1 mm; B, F, H, I = 500 µm; C = 200 µm; D, G = 150 µm; E = 50 µm.
FIGURE 20 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 20. Bugulina kiuschiuensis (Silén, 1941). Holotype UPSZTY 2458, Japan. A. Overview of part of a colony. Arrows indicate putative brooding zooids with folded distolateral margins. B. Close-up of the first basal zooid with rhizoids. C. Close-up of branches at bifurcation. D. Close-up of avicularia and autozooids with folded distolateral margins. Scale bars: A = 400 µm; B, C = 200 µm; D = 120 µm.
FIGURE 27 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 27. Microporina okadai Silén, 1941. Holotype UPSZTY 2468, Japan. A. View of internodes at branch bifurcation. B. Close-up of autozooids, one without operculum. Arrows indicate putative opesiules. C, D. Close-up of autozooids, showing the arrangement in alternating back-to-back rows, and distal avicularia. The arrow in (C) pointing to the triangular downward curved mandible. E, F. Close-up of avicularia. Scale bars: A = 500 µm; B–D = 300 µm; E = 120 µm; F = 200 µm.
FIGURE 26 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 26. Tricellaria dubia Silén, 1941. Paratype UPSZTY 2475, Japan. A, B. View of internodes at branch bifurcation. C. Close-up of autozooids, two with preserved scuta. D, E. Close-up of opesiae with scuta. F. Close-up of an opesia (scutum broken). G. Dorsal view of internodes at branch bifurcation. F. Close-up of the dorsal side of some autozooids. Scale bars: A, B, G = 500 µm; C, D = 150 µm; E, F = 100 µm; H = 200 µm.
FIGURE 25 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 25. Beania discodermiae boninensis Silén, 1941. Lectotype (designated here) UPSZTY 2456A, Bonin Islands, Japan. A. Group of zooids. B. Close-up of an autozooid with paired pedunculate avicularia. C. Close-up of an avicularium in lateral view, showing the hooked, slightly serrated rostrum. D. Dorsal view of a group of zooids. E. Dorsal close-up of an autozooid and paired avicularia. Scale bars: A, D = 300 µm; B = 200 µm; C, E = 120 µm.
FIGURE 34 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 34. Stylopoma magnovicellata Silén, 1954. Holotype LUZM 52, Western Australia. A. Transverse section of the tip of the colony showing bilamellar colony lobe. B, C. Close-up of two zooids with suboral and frontal adventitious avicularia. D. Close-up of the orifice and suboral avicularium. E. Close-up of the vicarious avicularium. F. Portion of the colony with an ovicell cluster. G. Close-up of two fused ovicells with adventitious avicularia. Scale bars: A, F = 1 mm; B, C, E = 200 µm; D = 100 µm; G = 500 µm.
FIGURE 35 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 35. Celleporaria firmispinosa Silén, 1954. A–E. Holotype LUZM 56.2, off Rockingham, Western Australia. F–I. Specimen LUZM 56.1, Warnbro beach, Western Australia. A. Group of zooids. B. Close-up of an orifice with elliptical suboral avicularium and two stout spines. C. Close-up of suboral avicularium with open mandible. D. Close-up of an orifice, showing the proximal margin, and a broken suboral avicularium. E. Ovicellate zooids. F, G. General view of two areas of the mounded colony showing zooids with long spines and mucro and the algal substrate. H. Close-up of ovicellate zooids. I. Lateral view of zooids with well-developed suboral mucro. Scale bars: A = 500 µm; B, D = 100 µm; C = 50 µm; E = 250 µm; F, G = 1 mm; H = 300 µm; I = 200 µm.
FIGURE 33 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 33. Stylopoma magnovicellata Silén, 1954. Holotype LUZM 52, Western Australia. A, B. Photographs of two sides of the type specimen. C. Labels accompanying the specimen. Scale bars: A, B = 3 cm.
FIGURE 22 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 22. Camptoplites tubifera Silén, 1941. Paralectotype UPSZTY 2460A, Japan. A. General view of the specimen. B. Close-up of an autozooid emanating two connecting branch tubes. C. Close-up of an autozooid. Arrow indicates a putative attachment scar left by an avicularium. D. Close-up of a narrow, elongate avicularium. E. Close-up of two ovicells. F. Close-up of a rounded avicularium. Scale bars: A = 1 mm; B = 500 µm; C, D, F = 150 µm; E = 200 µm.
FIGURE 12 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 12. Mangana canui (Silén, 1941) n. comb. Paratype UPSZTY 191145, Japan. A. Group of zooids and proximal avicularia. B. Close-up of two autozooids with large proximally placed avicularia and an additional smaller avicularium placed laterally (see arrow). C. Autozooids and avicularia of different sizes. D. Close-up of two large avicularia showing the serrated rostrum. E. Group of ovicellate zooids. F. Close-up of two ovicells, one deformed or damaged. All scale bars are 200 µm except D = 100 µm.
FIGURE 37 in Scanning electron microscopy study of Lars Silén's cheilostome bryozoan type specimens in the historical collections of natural history museums in Sweden
FIGURE 37. Triphyllozoon cornutum Silén, 1954. Holotype LUZM 54, Western Australia. A. General view of a portion of the colony. B. Group of ovicellate zooids showing suboral and frontal adventitious avicularia of different size and shape. C. Close-up of ooecia and frontal adventitious avicularia. D. Close-up of the large, frontal, lozenge-shaped avicularium directed distolaterally and suboral avicularium with denticulate rostrum. E. Close-up of ooecia with associated avicularia and large frontal lozenge-shaped avicularium directed proximolaterally. F, G. Lateral close-ups of large frontal avicularia either directed distolaterally or proximolaterally, showing the raised rostrum with raised lateral wings of calcification. H. Close-up of the secondary orifice with peristomial avicularium and two lateral spine bases visible only in some zooids. I. General view of the dorsal side of the colony fragment. J. Close-up of the figure-eight-shaped dorsal avicularia. K. Close-up of the lozenge-shaped dorsal avicularium. Scale bars: A, I = 1 mm; B = 500 µm; C = 300 µm; D, G, H = 100 µm; E = 250 µm; F, J = 200 µm; K = 50 µm.
FIGURES 5–18. Figures 5, 6 in Notes on the diatom collection of the Natural History Museum, London (BM) IX: Campylodiscus hardmanianus, with a discussion on synapomorphy and the poverty of molecular monophyly
FIGURES 5–18. Figures 5, 6: Specimens from BM 8909 ('L.H.[ardman] (D) | No. 199 | HoNg KoNg', scaLe bar = 20μm. Figures 7, 8: Specimens from BM 9000 ('L.H.[ardman] | No. 200 | HoNg KoNg' [seLected specimeNs], scaLe bar = 20μm. Figures 9, 10: Specimens from BM Adams G304 ('Hong Kong | E.G.[rove] 12/87'), scaLe bar = 50μm. Figures 11, 12: Specimens from BM8910 ('Campylodiscus hardmanianus Grev. | 9/81 | Hong Kong', broken coverslip), scale bar = 20μm. Figure 13: Specimens from BM 12860 (Cleve & Möller slide no. 80), 'Carpentaria Bay' [= Arafura Sea, Gulf of Carpenteria], Australia, scaLe bar = 20μm. Figure 14: Unpublished drawing of Campylodiscus hardmanianus Grev. Figures 15, 16: Specimens from BM Adams GC833 ('Campylodiscus daemelianus | SamaraNg | 29/12/88), scaLe bar = 20μm. Figures 17, 18: Specimens from BM Adams GC831 ('Campylodiscus daemelianus | 9.81 | 26/33 | HoNg KoNg', scaLe bar = 20μm.
FIGURES 19–29. Figures 19, 20 in Notes on the diatom collection of the Natural History Museum, London (BM) IX: Campylodiscus hardmanianus, with a discussion on synapomorphy and the poverty of molecular monophyly
FIGURES 19–29. Figures 19, 20: Specimens of Campylodiscus hardmanianus var. grovei Deby from BM Adams GC829, 'Derbend', Caspian Sea, Russia, scaLe bar = 20μm. Figures 21, 22: Specimens of Campylodiscus hardmanianus var. grovei Deby from BM 53492, 'Derbent', Caspian Sea, Russia, scale bar = 50μm. Figure 23: Specimen (?) of 'C. sonderianus' from BM 35870, 'TypeN-PLatte | I.D. MöLLer', scaLe bar = 50μm. Figure 24: Reproduction of the published name (designation) for 'Campylodiscus Sonderianus Grun. n. sp.' in Möller (1877, p. 13). Figures 25, 6: Specimens of Campylodiscus daemelianus from BM 26853, 'Yarra, Yarra', Australia (Van Heurck, Types du Synopsis des Diatomées de Belgique, No. 542 ('Yarra-Yarra (AUstraLie)', scaLe bar = 50μm. Figure 27: Specimen of Coronia echeneis from Wismar, Germany, BM 12875, Cleve & Möller, no. 115, 'Lebend im Hafen von Wismar', scaLe bar = 20μm. Figures 28, 9: Specimen of 'C. sonderianus' from BM 64450, 'ChaLLeNger StatioN 233', 'T.E.Doeg', scaLe bar = 50μm.
FIG. 1 in On the Paraguayan specimens of Nothura darwinii (Aves: Tinamidae) and Glaucis hirsutus (Aves: Trochilidae) in the collection of the Natural History Museum of Geneva (Switzerland), with a review of South Brazilian reports of the latter
FIG. 1 Nothura maculosa specimens, previously labeled as Nothura darwinii: MHNG 1720.054 (above), MHNG 1720.053 (below).
FIG. 2 in On the Paraguayan specimens of Nothura darwinii (Aves: Tinamidae) and Glaucis hirsutus (Aves: Trochilidae) in the collection of the Natural History Museum of Geneva (Switzerland), with a review of South Brazilian reports of the latter
FIG. 2 Details of the primaries for MHNG 1720.054 (above) and MHNG 1720.053 (below). The barring present on both webs of the underside of the primaries is characteristic of Nothura maculosa.
Data from Wilson et al.: Applying computer vision to digitised natural history collections for climate change research: temperature-size responses in British butterflies
<p>This dataset supports the publication: Wilson et al. "Applying computer vision to digitised natural history collections for climate change research: temperature-size responses in British butterflies". These are the data used for the data figures (Fig 3-6, SI Figs 1-2) and the supplementary information tables.</p>
FIGURE 10 in Revision of the type species of some cheilostome bryozoan genera in the collection of the Swedish Museum of Natural History
FIGURE 10. Terwasipora complanata (Norman, 1864), Holotype SMNH-Type-1772, Ireland. A. General view of the colony. B. Label on the underside of the rock substrate. Scale bars: A = 1 mm; B = 3 cm.
FIGURE 9 in Revision of the type species of some cheilostome bryozoan genera in the collection of the Swedish Museum of Natural History
FIGURE 9. Stenopsella fenestrata (Smitt, 1873), Holotype SMNH-Type-1800, Tortugas, United States, here proposed as Gigantopora fenestrata comb. nov. A. General view of the colony. B. Group of zooids some in frontal and other in lateral view. C. Close-up of some zooids in lateral view, showing the development of the peristome, a variable position of the avicularium in relation to the spiramen, and the prickly appearance of the frontal shield. D. Close-up of a zooid with broken peristome and showing the primary orifice. E. Close-up of the adventitious, peristomial avicularium with complete crossbar. Scale bars: A = 1 mm; B, C = 500 µm; D = 300 µm; E = 100 µm.
FIGURE 7 in Revision of the type species of some cheilostome bryozoan genera in the collection of the Swedish Museum of Natural History
FIGURE 7. Fedorella minima Silén, 1947, Anguilla. A–C. Lectotype (designated here) SMNH-128088a. A. General view of the colony. B. Group of zooids, showing avicularian variability, the shape of the orifice and opercula. C. Close-up of a zooid with paired giant avicularia and lateral view of an ovicell. D. Paralectotype SMNH-128088b, group of ovicellate zooids showing the triangular opening of the ooecium. E, F. Paralectotype SMNH-128088c. E. Close-up of two zooids with only one or completely lacking avicularia; the orifice of the zooid on the left shows signs of repetitive intramural budding. F. Close up of an orifice with closure plate. Scale bars: A = 500 µm; B, D = 300 µm; C, E = 200 µm; F = 100 µm.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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