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2,185 results for “integrated taxonomy”
Figure 10 from: Garces JM, Sartori M, Freitag H (2020) Integrative taxonomy of the genus Dudgeodes Sartori, 2008 (Insecta, Ephemeroptera, Teloganodidae) from the Philippines with description of new species and complementary description of Southeast Asia species. ZooKeys 910: 93-129. https://doi.org/10.3897/zookeys.910.48659
Figure 10 Brown dorsal part of male eyes color across conspecific samples. Dudgeodes pangantihoni sp. nov. A EPH165 B EPH166 C EPH168 D EPH207 E EPH210 F EPH212 G EPH213 H EPH220.
Figure 1 from: Garces JM, Sartori M, Freitag H (2020) Integrative taxonomy of the genus Dudgeodes Sartori, 2008 (Insecta, Ephemeroptera, Teloganodidae) from the Philippines with description of new species and complementary description of Southeast Asia species. ZooKeys 910: 93-129. https://doi.org/10.3897/zookeys.910.48659
Figure 1 Molecular species delimitation of Southeast Asian Dudgeodes using generalized mixed Yule coalescence (GMYC), Poisson Tree Processes (PTP) and multi-rate Poisson Tree Processes (mPTP) using partial COI sequence (593 bp). The phylogenetic tree shows the topology of COI gene tree following Maximum Likelihood method and Tamura 3-parameter+GI model, 1000 bootstrap. Only nodes with bootstrap > 70% are indicated. Statistical parsimony network of the new species and D. pescadori are given depicting the haplotype diversity and localities. Colors based on intra-Philippine biogeographic regions; black circles correspond to intermediate or missing haplotypes.
Fig. 23 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 23. Tenuibiotus cf. voronkovi (Tumanov, 2007) from the Edgeøya population, body cuticle and eggs seen in PCM. A. Uniformly distributed granulation on the dorsal side of the body at the level between leg pairs II and III. B–D. Three different eggs under 1000× magnification. Scale bars in μm.
Fig. 15 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 15. Tenuibiotus zandrae sp. nov. Buccal apparatus and the oral cavity armature seen in LCM. A. Dorso-ventral projection of the entire buccal apparatus (holotype, IZiBB, slide GL.011.17, PCM). B–C. Oral cavity armature seen in NCM, dorsal (B, paratype) and ventral (C, holotype) view, respectively. D–E. Placoid morphology seen in NCM, dorsal (D) and ventral (E) view, respectively (both holotype). Filled flat arrowheads indicate faintly visible second band of teeth in the oral cavity, empty flat arrowheads indicate the third band of teeth in the oral cavity, empty indented arrowheads indicate central constrictions in the first macroplacoids and the subterminal constriction in the second macroplacoid. Scale bars in μm.
Fig. 7 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 7. Macrobiotus engbergi sp. nov. Egg chorion morphology seen in PCM. A. Midsection under 400× magnification. B–C. Midsection under 1000× magnification. D–E. Terminal discs under 1000× magnification. F–G. Surface under 1000× magnification. Scale bars in μm.
Fig. 6 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 6. Macrobiotus engbergi sp. nov. The oral cavity armature seen in SEM (paratypes). A–B. The oral cavity armature seen in SEM from different angles, dorsal (A) and ventral (B) view, respectively. Filled indented arrowheads indicate the first band of teeth in the oral cavity, filled flat arrowheads indicate the second band of teeth in the oral cavity whereas empty flat arrowheads indicate the third band of teeth in the oral cavity. Scale bars in μm.
Fig. 3 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 3. Macrobiotus engbergi sp. nov. Cuticular structures on legs (paratypes). A–B. External granulation on leg III and II seen in PCM (A) and SEM (B), respectively. C–D. A cuticular bulge (pulvinus) and a faint cuticular fold, covered by granulation, on the internal surface of legs III seen in PCM (C) and SEM (D), respectively. E–F. Granulation on leg IV seen in PCM (E) and SEM (F). Filled flat arrowheads indicate the cuticular bulge, empty flat arrowheads indicate the faint cuticular fold under the claws whereas filled indented arrowhead indicate double muscle attachments under claws. Scale bars in μm.
Fig. 10 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 10. Tenuibiotus zandrae sp. nov. Habitus. Dorso-ventral projection (holotype, IZiBB, slide GL.011.17, Hoyer's medium, PCM). Scale bars in μm.
Fig. 1 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 1. Macrobiotus engbergi sp. nov. Habitus. A. Dorso-ventral projection (holotype, IZiBB, slide GL.052.22, Hoyer's medium, PCM). B–C. Cuticular pores on the dorso-cephalic and dorso-caudal part of the body seen in PCM, respectively. Arrowheads indicate small oval pores. Scale bars in μm.
Fig. 17 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 17. Tenuibiotus zandrae sp. nov. Buccal apparatus seen in SEM (paratype). A. Entire buccal apparatus. B. Lateral view of the buccal crown. C. Placoids. Filled indented arrowhead indicate the first band of teeth in the oral cavity, empty indented arrowheads indicate the central constriction in the first macroplacoids and the subterminal constriction in the second macroplacoid. Scale bars in μm.
Fig. 13 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 13. Tenuibiotus zandrae sp. nov. Patches of dense granulation on legs seen in SEM (paratypes). A. External granulation on leg II (patch of dense granulation encircled). B. Internal granulation on leg III. C. Granulation on leg IV. D. Granulation on legs IV and uniformly distributed body granulation on the dorso-caudal region. Scale bars in μm.
Fig. 22 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 22. Tenuibiotus voronkovi (Tumanov, 2007), egg chorion morphology seen in SEM. A. Entire egg. B–D. Details of the egg processes and surface between them. Filled flat arrowheads indicate thickenings/ striae on the surface between processes, filled indented arrowheads indicate elongated and flexible apices of egg processes which are often folded, whereas empty indented arrowheads indicate micro pores on the chorion surface between processes. Scale bars in μm.
Fig. 2 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 2. Macrobiotus engbergi sp. nov. Cuticular pores (paratype). A–B. Cuticular pores on the dorsocephalic and dorso-caudal part of the body seen in SEM, respectively. Arrowheads indicate small oval pores Scale bars in μm.
Fig. 9 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 9. Macrobiotus engbergi sp. nov. Secondary sexual dimorphism. A. Female without gibbosities on the hind legs. B. Male with gibbosities on the hind legs. Arrowheads indicate gibbosities. Scale bars in μm.
Fig. 16 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 16. Tenuibiotus zandrae sp. nov. The oral cavity armature seen in SEM (paratype). The oral cavity armature of a single paratype seen in SEM from different angles, dorsal (A) and ventral (B) view, respectively. Filled indented arrowheads indicate the first band of teeth in the oral cavity, filled flat arrowheads indicate the second band of teeth in the oral cavity, whereas empty flat arrowheads indicate the third band of teeth in the oral cavity. Scale bars in μm.
Fig. 24 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 24. Tenuibiotus cf. voronkovi (Tumanov, 2007) from the Nordaustlandet population, eggs seen in PCM. Four different eggs under 1000× magnification. Scale bars in μm.
Fig. 51 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Fig. 51. Compared dimensions of the elytra of Dyscolus denigratus (Bates, 1891) and D. palatus Moret, 1998.
Figs 19–24 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 19–24. Dyscolus spp., habitus (19–21) and aedeagus, median lobe in lateral view (22–24). 19. D. rugitarsis Moret sp. nov., male holotype (QACZ). 20. D. sulcipedis Moret sp. nov., male holotype (QACZ). 21. D. marini Moret sp. nov., female paratype. 22. D. rugitarsis Moret sp. nov. 23. D. sulcipedis Moret sp. nov. 24. D. marini Moret sp. nov.
Figs 56–59 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 56–59. Group of Dyscolus verecundus Moret, 1998, male aedeagus, median lobe in lateral and dorsal view. 56. D. verecundus, paratype from Rucu Pichincha. 57. D. verecundus, paratype from Guagua Pichincha. 58. D. verecundior Moret sp. nov., holotype (MNHN, COI voucher PM136- 04);.59. D. verecundissimus Moret sp. nov., holotype (MNHN).
Figs 32–35. 32–33 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 32–35. 32–33. Dyscolus salazarae Moret sp. nov. 32. Habitus of the male holotype (MNHN, COI voucher PM392-09). 33. Aedeagus, median lobe in lateral view. 34–35. D. ruizi Moret sp. nov. 34. Habitus of a male paratype from Saraguro (CPM). 35. Aedeagus, median lobe in lateral view.
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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
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.