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13,397 results for “sp. nov.”
FIGURE 1. A–D in Description of a new species of Deinodryinus from Ecuador: D. hubeni sp. nov. (Hymenoptera, Dryinidae)
FIGURE 1. A–D: Deinodryinus hubeni n. sp., holotype male. A: dorsal view. B: lateral view. C: head in dorsal view. D: mesosoma in dorsal view. E: Deinodryinus incaicus Olmi, 1984: right antenna. Scale bar: 2.3 mm for A; 2.2 mm for B; 0.4 mm for C; 0.5 mm for D; 0.2 mm for E.
Supplementary material 1 from: Zehnpfennig JR, Mahon AR (2023) Austropallene halanychi sp. nov., a new species of sea spider (Pycnogonida, Callipallenidae) from the Ross Sea, Antarctica. ZooKeys 1185: 163-180. https://doi.org/10.3897/zookeys.1185.108286
All species used in phylogenetic analyses for this study, which phylogenetic analysis the data was used for, and the correlated GenBank accession numbers
FIGURES 14–21 in Zherikhinia matobai sp. nov., a second species of the genus Zherikhinia Alonso-Zarazaga (Coleoptera, Brentidae, Nanophyinae) from the Ryukyu Archipelago, Japan
FIGURES 14–21. Zherikhinia matobai sp. nov.—14. aedeagus, dorsal; 15. ditto, lateral; 16. tegmen, dorsal; 17. ditto, lateral; 18. sternite 8; 19. spiculum gastrale; 20. spiculum ventrale; 21. Female genitalia (gonocoxites, bursa copulatrix, spermathecal duct, spermatheca). Scale= 0.2mm
FIGURES 22–24 in Zherikhinia matobai sp. nov., a second species of the genus Zherikhinia Alonso-Zarazaga (Coleoptera, Brentidae, Nanophyinae) from the Ryukyu Archipelago, Japan
FIGURES 22–24. Pattern variation of Zherikhinia matobai sp. nov.—22. yellow type (Kume-jima Is.); 23. Brown type (Ishigaki-jima Is.); 24. Blackish brown type (Okinawa-honto jima Is.). Scale= 1.0 mm.
FIGURES 4–13 in Zherikhinia matobai sp. nov., a second species of the genus Zherikhinia Alonso-Zarazaga (Coleoptera, Brentidae, Nanophyinae) from the Ryukyu Archipelago, Japan
FIGURES 4–13. Zherikhinia matobai sp. nov.—4. head, male apical; 5. ditto, female; 6. head, male lateral; 7. ditto, female; 8–11. legs (8. trochanters & femora, 9. tibia, 10. tarsi); 12. abdomens, male; 13. ditto, female. Scale=0.2 mm.
FIGURES 1–3 in Zherikhinia matobai sp. nov., a second species of the genus Zherikhinia Alonso-Zarazaga (Coleoptera, Brentidae, Nanophyinae) from the Ryukyu Archipelago, Japan
FIGURES 1–3. Habitus photographs of Zherikhinia matobai sp. nov.—1, lateral, male (holotype); 2, dorsal, male (holotype); 3, dorsal, female (paratype, from, Ishigaki Is., Okinawa Pref.). Scale=1.0 mm.
FIGURE 69 in Aulacoseira huguang sp. nov., a new Lateglacial fossil diatom from South China
FIGURE 69. Variation in the relative abundances of A. huguang, A. granulata,A. Ambigua, D. stelligera and Lindavia balatonis in the sediment sequence from Huguangyan Maar lake for the period spanning the Lateglacial from 10,000 to 17,000 years ago. The ages are reported in calibrated kilo-anni before present (cal. ka BP). The asterisk (*) indicates the position of the sample selected as type material for A. huguang sp. nov.
FIGURES 2–55 in Aulacoseira huguang sp. nov., a new Lateglacial fossil diatom from South China
FIGURES 2–55. LM images of Aulacoseira huguang sp. nov., taken from the holotype population (sample HGY-A5-189) under bright field and DIC (except for Figs 10–11, taken under phase contrast). 2–25. Valve views, each specimen is seen under two different focus plans. 26–31. Girdle views of single valves showing the range in mantle height. 32–51. Girdle views of complete frustules, each specimen seen under two or three different focus plans. 54–55. Short chain composed of two frustules in girdle view. Scale bar = 5 µm. Figs 45–47 correspond to the holotype specimen.
FIGURE 68 in Aulacoseira huguang sp. nov., a new Lateglacial fossil diatom from South China
FIGURE 68. Relationship between diameter and mantle height in Aulacoseira huguang and similar species of Aulacoseira. The list of the images derived from the literature is given in Table 2.
FIGURE 1 in New diatom species Diploneis zhui sp. nov. from Jiuzhaigou National Nature Reserve, China
FIGURE 1. Map of Jiuzhaigou National Nature Reserve and location of the study sites (1= Rhinoceros Lake, 2=Long Lake, 3= Arrow Bamboo Lake, 4= Mirror Lake, 5= The Peacock Riverbed, and 6= Reed Lake).
FIGURES 20–23 in Giffenia koreana sp. nov. (Bacillariophyta): A newly identified epipelic diatom in the tidal flat sediments of Suncheonman Bay, extant for over 1,400 Years
FIGURES 20–23. SEM images of Giffenia koreana sp. nov. using type materials. Figs 20, 21: Valve face displaying the terminal valve apex with a hyaline area. Fig. 22: The apex of the epi/hypo-valve featuring a terminal hooked raphe and numerous alveoli. Fig. 23: The mantle showing numerous nail-shaped pores clusters positioned below the raphe slit (arrow). Scale bars: 5 µm for Fig. 21; 10 µm for Figs 20, 22, 23.
FIGURES 15–19 in Giffenia koreana sp. nov. (Bacillariophyta): A newly identified epipelic diatom in the tidal flat sediments of Suncheonman Bay, extant for over 1,400 Years
FIGURES 15–19. SEM images of Giffenia koreana sp. nov. on the type materials. Fig. 15: A whole cell displaying the central thin lipshaped sternum (arrow), numerous alveoli, and raphe slit. Figs 16–19: A hyaline area between the raphe slit and the alveoli (arrow). Figs 17–19: Valve apex featuring a downturned raphe apex, and with curved alveoli (arrow). Scale bars: 5 µm for Figs 18, 19; 10 µm for Figs 15–17.
FIGURES 3–8 in Giffenia koreana sp. nov. (Bacillariophyta): A newly identified epipelic diatom in the tidal flat sediments of Suncheonman Bay, extant for over 1,400 Years
FIGURES 3–8. LM images of the undulating external valve view of Giffenia koreana sp. nov. on the holotype (Figs 3–5) and isotype (Figs 6–8). Fig. 3, 4: The valve face focused on the slightly convex side. Fig. 5: The valve face focused on the slightly concave side, with an uneven central sternum positioned along the apical axis. Figs 6–8: The valve face observed on various focuses. Scale bar: 10 µm.
FIGURES 1, 2 in Giffenia koreana sp. nov. (Bacillariophyta): A newly identified epipelic diatom in the tidal flat sediments of Suncheonman Bay, extant for over 1,400 Years
FIGURES 1, 2. Map of the study area. Fig. 1: A satellite map of the Republic of Korea. Fig. 2: Location of the study area, SCW03.
FIGURE 1 in Aulacoseira huguang sp. nov., a new Lateglacial fossil diatom from South China
FIGURE 1. Geographical position of the Huguangyan maar lake in southeast China (a) and bathymetric map of its basin (b). The yellow star indicates the coring location from which the material investigated in this study was retrieved.
FIGURES 26–30 in New diatom species Diploneis zhui sp. nov. from Jiuzhaigou National Nature Reserve, China
FIGURES 26–30. Diploneis zhui sp. nov. Scanning electron microscopy. Figs 26, 27. External view of the entire valve. Figs 28, 30. External view of the middle of the valve. Fig. 29. Detailed external view of the valve end. Scale bar = 5 μm (26, 27), 2 μm (28–30).
FIGURES 56–67 in Aulacoseira huguang sp. nov., a new Lateglacial fossil diatom from South China
FIGURES 56–67. SEM images of Aulacoseira huguang, taken from the holotype population (sample HGY-A5-189) Fig. 56. Oblique view of a single valve showing from the top to the bottom of the valve: the row of spines that occurs around the circumference of the valve face, the pervalvar rows of areolae slightly dextrorse, the smooth collum with tiny nodules, the ringleist, projecting deep into the valve interior. Fig. 57. Mantle view of a single valve showing the pervalvar rows of areolae slightly dextrorse, the smooth collum with tiny nodules and external opening of one rimoportula (arrow). Fig. 58. Oblique view of a complete frustule, showing the pervalvar rows of areolae slightly dextrorse, the smooth collum with tiny nodules and external opening of one rimoportula (arrow). Fig. 59. Oblique view showing the valve face with evenly spaced areolae, decreasing in size from the edges to the centre of the valve. An areola is positioned between each spine. Figs 60–62. External views of partly corroded valves showing round areolae of various size. Fig. 63. Ringleist view. Fig. 64. Girdle view showing conical spines, stout at the base and bluntly rounded at the tip, raised from two ribs on the mantle. Siliceous nodules are visible on the collum at the basis of each rib, with more nodules on the ribs. Fig. 65. Internal view of a broken valve. The internal opening of one rimoportula (arrow) is visible on the ringleist. Fig. 66. External view of a broken frustule. In the broken valve, both rimoportulae are visible. They are placed in opposite positions on the perimeter of the valve (arrows). Fig. 67. Internal view of a broken valve showing the internal openings of two rimoportulae (arrows) which are visible on the ringleist. The two rimoportulae are placed in opposite positions on the perimeter of the valve. Scale bars = 3µm.
FIGURES 31–35 in New diatom species Diploneis zhui sp. nov. from Jiuzhaigou National Nature Reserve, China
FIGURES 31–35. Diploneis zhui sp. nov. Scanning electron microscopy. Figs 31, 32. Internal view of the entire valve. Figs 33. Internal view of half of the valve. Fig. 34. Detailed internal view of the valve end. Fig. 35. Detailed internal view of the valve centre. Scale bar = 5 μm (31, 32), 2 μm (33–35).
FIGURES 2–25 in New diatom species Diploneis zhui sp. nov. from Jiuzhaigou National Nature Reserve, China
FIGURES 2–25. Diploneis zhui sp. nov. Light microscopy. Valve size diminution series. Scale bar = 10 μm.
FIGURE 1–8. 1 in A new species of Eocene whitefly-Snotra herczeki sp. nov. (Hemiptera, Sternorrhyncha, Aleyrodidae) from Baltic amber
FIGURE 1–8. 1. Snotra herczeki sp. nov. body dorsal side. Scale bars: 0.5 mm. 2. Snotra herczeki sp. nov. head, thorax dorsal side. Scale bars: 0.2 mm. 3. Snotra herczeki sp. nov. drawing of body dorsal side. Scale bars: 0.5 mm. 4. Snotra herczeki sp. nov. drawing of head, thorax dorsal side. Scale bars: 0.2 mm. 5. Snotra herczeki sp. nov. left wings. Scale bars: 0.2 mm. 6. Snotra herczeki sp. nov. drawing of right forewing. Scale bars: 0.5 mm. 7. Snotra herczeki sp. nov. right forewing. Scale bars: 0.2 mm. 8. Snotra herczeki sp. nov. drawing of right hindwing. Scale bars: 0.5 mm.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.