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1,102 results for “collection descriptions”
Fig. 9 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 9. Phyllosoma larva of Chelarctus aureus, stageVII. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 6 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 6. Phyllosoma larva of Chelarctus virgosus, stage VII. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E, ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 8 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 8. Phyllosoma larva of Chelarctus aureus, stage VI. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 8 in Brief description of newly recorded eight ciliate species (Protozoa, Ciliophora) collected from South Korea
Fig. 8. Uronemella filificum in vivo (A-C) and after protargol impregnation (D). A. Right side view showing body shape (arrow indicates caudal cilium). B, C. Left side views showing oral apparatus, macronucleus, and extrusomes (arrowheads). D. Ventral view showing oral, somatic infraciliature, and nuclear apparatus. Scale bar = 20 μm.
Fig. 5 in Brief description of newly recorded eight ciliate species (Protozoa, Ciliophora) collected from South Korea
Fig. 5. Loxophyllum chinense in vivo (A) and after protargol impregnation (B). A. Left side view showing body shape, warts on dorsal side, and contractile vacuoles. Asterisk indicates original body shape under low magnification. B. Right side view showing somatic kineties. Scale bars = 50 μm.
Fig. 4. Hemiamphisiella granulifera after protargol impregnation. A in Brief description of newly recorded eight ciliate species (Protozoa, Ciliophora) collected from South Korea
Fig. 4. Hemiamphisiella granulifera after protargol impregnation. A. Ventral view showing somatic, oral infraciliature and macronuclear nodules. B. Dorsal view showing dorsal kineties. Scale bars = 50 μm.
Fig. 3 in Brief description of newly recorded eight ciliate species (Protozoa, Ciliophora) collected from South Korea
Fig. 3. Protocruzia labiata in vivo (A, D-M) and after protargol impregnation (B, C, N, O). A. Typical individual showing body shape and extrusomes. B, C. Right and left side view showing somatic, oral infraciliature, and nuclear apparatus. D-G. Various body shapes, gray circles denote anterior portion of adoral membranelles, specimen in (G) slightly squashed. H. Schematic drawing of cortical and cytoplasmic granules. I-K. Various body shapes (arrows and arrowheads indicate anterior and posterior portion of AM, respectively). L, M. Right side views showing extrusomes, cortical granules (arrowheads), and cytoplasmic granules (blood cell-like shaped granules). N, O. Right and left side view showing somatic, oral infraciliature, and nuclear apparatus. AM, adoral membranelles; AMa, adoral membranelles on anterior portion; CG, cortical granules; CyG, cytoplasmic granules; EX, extrusomes; FV, food vacuoles; MA, macronuclei; MI, micronuclei; PM, paroral membrane; SK1-n, somatic kinety1-n; SKC, somatic dikinetid cilium. Scale bars: A, D, I-K = 20 μm; C, L, N, O = 10 μm; H, M = 5 μm.
Fig. 6. Trochilioides recta after protargol impregnation. A, B in Brief description of newly recorded eight ciliate species (Protozoa, Ciliophora) collected from South Korea
Fig. 6. Trochilioides recta after protargol impregnation. A, B. Ventral views showing somatic kineties, three rows of circumoral kineties, macronucleus, and the strongly curved cytopharyngeal basket. C. Dorsal view showing dorsally extended right kinety. Scale bars = 20 μm.
Figs 29–36 in Taxonomic Descriptions of Two Marine Ciliates, Euplotes dammamensis n. sp. and Euplotes balteatus (Dujardin, 1841) Kahl, 1932 (Ciliophora, Spirotrichea, Euplotida), Collected from the Arabian Gulf, Saudi Arabia
Figs 29–36. Photomicrographs of Euplotes dammamensis n. sp. during binary division after protargol impregnation. 29, 32 – ventral and dorsal views of a specimen at an early stage of morphogenesis to show the frontoventral-transverse cirral anlagen (29, arrowheads) and denote the parental dikinetids (32, arrowheads); 30, 33, 34 – ventral and dorsal views of a specimen at a slightly later stage of morphogenesis, to show the frontoventral-transverse cirral anlagen developed and broadened (30), the newly formed dorsal kineties anlagen (33, arrowheads) and the marginal anlagen (34, arrowheads); 31, 35, 36 – ventral and dorsal views of a specimen at middle-stage to show the rightmost frontoventral-transverse cirral anlagen (31, arrowheads), the migratory cirral anlage in the proter (31, double-arrowhead), the marginal cirral anlagen (31, arrows), the dorsal kineties anlagen (35, arrowheads) and the replication bands (36, arrowheads).
Figs 19–28 in Taxonomic Descriptions of Two Marine Ciliates, Euplotes dammamensis n. sp. and Euplotes balteatus (Dujardin, 1841) Kahl, 1932 (Ciliophora, Spirotrichea, Euplotida), Collected from the Arabian Gulf, Saudi Arabia
Figs 19–28. Photomicrographs of Euplotes dammamensis n. sp. in vivo (19–25) and after protargol impregnation (26–28). 19, 20 – ventral views of different specimens, arrowheads in (19) to show the ventral ridges; 21 – dorsal view, arrowheads point to the dominant dorsal ridges; 22 – lateral view; 23 – ventral view of the posterior end, arrowhead marks the longest caudal cirrus; 24 – detailed dorsal view, arrowheads point to the apical view of the granules around the dorsal brush; 25 – arrowheads to show the lateral view of granules around the dorsal brush; 26 – arrow indicates the curved C-shaped macronucleus; 27, 28 – infraciliature on the ventral and dorsal sides, arrowheads indicate the dorsal kineties. Scale bars: 50 μm.
Figs 1–9. Euplotes dammamensis n in Taxonomic Descriptions of Two Marine Ciliates, Euplotes dammamensis n. sp. and Euplotes balteatus (Dujardin, 1841) Kahl, 1932 (Ciliophora, Spirotrichea, Euplotida), Collected from the Arabian Gulf, Saudi Arabia
Figs 1–9. Euplotes dammamensis n. sp. in vivo (1–7) and after protargol impregnation (8, 9). 1, 2 – ventral views of different individuals, arrows indicate the longest caudal cirrus; 3 – dorsal view, showing the conspicuous ridges; 4 – lateral view; 5 – frontoventral cirri, arrows indicate the cortical granules around the cirri; 6 – apical view of the cortical granules distributed on the dorsal side; 7 – lateral view of the cortical granules; 8, 9 – ventral and dorsal views of the same specimen, showing the general infraciliature and the micronucleus (arrow). AZM – adoral zone of membranelles, CC – caudal cirri, DK – dorsal kineties, FVC – frontoventral cirri, MC – marginal cirri, PM – paroral membrane, TC – transverse cirri, 1–11 – dorsal kineties. Scale bars: 50 μm.
Fig. 91 in Taxonomic Descriptions of Two Marine Ciliates, Euplotes dammamensis n. sp. and Euplotes balteatus (Dujardin, 1841) Kahl, 1932 (Ciliophora, Spirotrichea, Euplotida), Collected from the Arabian Gulf, Saudi Arabia
Fig. 91. Phylogenetic tree inferred by Maximum Likelihood (ML) based on SSU-rRNA gene sequences, showing the positions of Euplotes dammamensis n. sp. and Euplotes balteatus (red highlighted). The topology of the tree constructed with Bayesian analysis (BI) was essentially identical. Fully supported (100%/1.00) branches are marked with solid circles. The scale bar corresponds to 2 substitutions per 100 nucleotide positions. Systematic classification follows Lynn (2008).
Figure 3 in Description of three new species of Aseptate Gregarine, Monocystis von Stein, 1848 of Oligochaetes collected from Dhaka, Bangladesh
Figure 3. Monocystis hamidae sp. nov. (photomicrographs of different stages of the life cycle) A. Trophozoite; B. Gametocyst; C. Oocyst. Scale-bars. A-B, 100 µm; C, 10 µm.
Figure 5 in Description of three new species of Aseptate Gregarine, Monocystis von Stein, 1848 of Oligochaetes collected from Dhaka, Bangladesh
Figure 5. Monocystis ribbonae sp. nov. (photomicrographs of different stages of the life cycle) A. Trophozoite; B. Gametocyst; C. Oocyst. Scale-bars. A-B, 100 µm; C, 10 µm.
Figure 4 in Description of three new species of Aseptate Gregarine, Monocystis von Stein, 1848 of Oligochaetes collected from Dhaka, Bangladesh
Figure 4. Monocystis hamidae sp. nov. (camera lucida drawings of different stages of the life cycle) A. Trophozoite; B. Gametocyst; C. Oocyst. Scale-bars. A-B, 100 µm; C, 10 µm.
Figure 1 in Description of three new species of Aseptate Gregarine, Monocystis von Stein, 1848 of Oligochaetes collected from Dhaka, Bangladesh
Figure 1. Monocystis bangladeshensis sp. nov. (photomicrographs of different stages of the life cycle) A. Trophozoite; B. Gametocyst; C. Oocyst. Scale-bars. A-B, 100 µm; C, 10 µm.
Figures 60–65 in Descriptions of new Hypotrabala Holland, 1893 (Lepidoptera: Lasiocampidae: Lasiocampinae: Selenepherini) in the collections of the African Natural History Research Trust, with notes on allied genera and the description of a new genus
Figures 60–65. Male genitalia of Hypotrabala species, a: clasping apparatus, b: lateral view of phallus, c: eighth sternite, d: dorsal view of phallus (a, b, c to scale, d magnified). 60. H. guttata (Aurivillius, 1915), Liberia [LG 6298]. 61. H. magnimacula sp. n., holotype [LG 6299]. 62. H. aurantiaca sp. n., holotype [LG 6301]. 63. H. retorta sp. n., holotype [LG 6303]. 64. H. castanea, Republic of Congo [LG 6317]. 65. H. smithi sp. n., holotype [LG 6315].
Figures 84–90 in Descriptions of new Hypotrabala Holland, 1893 (Lepidoptera: Lasiocampidae: Lasiocampinae: Selenepherini) in the collections of the African Natural History Research Trust, with notes on allied genera and the description of a new genus
Figures 84–90. Male genitalia of Hypotrabala species, a: clasping apparatus, b: lateral view of phallus, c: eighth sternite, d: dorsal view of phallus (a, b, c to scale, d magnified). 84. H. neavei (Aurivillius, 1915), Malawi [LG 6288]. 85. H. lunda sp. n., holotype [LG 6313]. 86. H. horridula Tams, 1925, Zambia [LG 6321]. 87. Id., Zambia [LG 6325]. 88. Id., holotype, Zambia [BM Lasiocampidae 506]. 89. Id., Zambia [LG 6340]. 90. H. dollmani Tams, 1925, paratype, Zambia [BM Lasiocampidae 193].
Figure 1 in Descriptions of new Hypotrabala Holland, 1893 (Lepidoptera: Lasiocampidae: Lasiocampinae: Selenepherini) in the collections of the African Natural History Research Trust, with notes on allied genera and the description of a new genus
Figure 1. Maximum likelihood tree of Hypotrabala species and Selenepherini outgroups based on DNA barcodes. Numbers indicate bootstrap values and posterior probabilities (BS/PP). Scale bar indicates substitution rates per site.
Figures 14–21 in Descriptions of new Hypotrabala Holland, 1893 (Lepidoptera: Lasiocampidae: Lasiocampinae: Selenepherini) in the collections of the African Natural History Research Trust, with notes on allied genera and the description of a new genus
Figures 14–21. Hypotrabala species: 14. H. castanea Holland, 1893, ♂, Republic of Congo, Nouabalé-Ndoki NP [ANHRTUK 00284967]. 15. Id., ♂, Uganda, Kampala [NHMUK 010292297]. 16. H. smithi sp. n., holotype ♂. 17. Id., paratype ♂. 18. H. exquisita sp. n., holotype ♂. 19. Id., paratype ♂. 20. H. extenuata sp. n., holotype ♂. 21. Id., paratype ♂.
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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.