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Fig. 1 in Descriptions of two new Vietomartyria species (Lepidoptera, Micropterigidae) from China
Fig. 1. Adults and habitat of Vietomartyria spp. A. Vietomartyria wuyunjiena sp. nov., holotype, ♂. B. Vietomartyria maoershana sp. nov., holotype, ♂. C. One adult of V. wuyunjiena sp. nov. perching on fern. D. Habitat of V. wuyunjiena sp. nov. E. Specimen collection of V. wuyunjiena sp. nov. by sweep net. F. One adult of V. wuyunjiena sp. nov. perching on the white curtain of a light trap.
Fig. 4 in Descriptions of two new Vietomartyria species (Lepidoptera, Micropterigidae) from China
Fig. 4. Male genitalia of Vietomartyria maoershana sp. nov. A. Dorsal view, with phallus removed. B. Ditto, ventral view. C. Ditto, lateral view. D. Phallus, dorsal view. E. Ditto, ventral view. F. Ditto, lateral view.
Fig. 3 in Descriptions of two new Vietomartyria species (Lepidoptera, Micropterigidae) from China
Fig. 3. Male genitalia of Vietomartyria wuyunjiena sp. nov. A. Dorsal view, with phallus removed. B. Ditto, ventral view. C. Ditto, lateral view. D. Phallus, dorsal view. E. Ditto, ventral view. F. Ditto, lateral view.
Figs 6–8 in Two new species of Heleomyzidae (Diptera) from Czech Republic and Crimea
Figs 6–8. Heleomyza kovali sp. nov., male genitalia. 6 – paratype (Crimea), last two abdominal segments and genitalia sublaterally; 7 – holotype (Czech Republic, Jizerské hory PLA), genitalia laterally; 8 – paratype (Crimea), aedeagal complex and hypandrium, dorsal view. For abbreviations see page 268.
Figs 9–14 in Two new species of Heleomyzidae (Diptera) from Czech Republic and Crimea
Figs 9–14. Comparison of males of Eccoptomera nevrlyi sp. nov. and E. ornata Loew, 1862. 9–11, 13–14 – Eccoptomera nevrlyi: 9 – head and thorax, dorsal view; 10 – left wing, lateral view; 11 – hind leg, inner lateral view; 13 – head, anterior view; 14 – head and antennae, lateral view. 12 – E. ornata, basal part of hind leg of E. ornata, inner lateral view.
Figures 10–17. Cyrtinus fisheri. 10–13 in Taxonomic notes on Western Hemisphere Cyrtinini (Coleoptera: Cerambycidae: Lamiinae) including description of two new Cyrtinus LeConte species
Figures 10–17. Cyrtinus fisheri. 10–13) Holotype male. 10) Dorsal habitus. 11) Ventral habitus. 12) Head, frontal view. 13) Lateral habitus. 14–17) Paratype female. 14) Lateral habitus. 15) Head, frontal view. 16) Dorsal habitus. 17) Ventral habitus.
Figures 22–28. Decarthria stephensii. 22–25 in Taxonomic notes on Western Hemisphere Cyrtinini (Coleoptera: Cerambycidae: Lamiinae) including description of two new Cyrtinus LeConte species
Figures 22–28. Decarthria stephensii. 22–25) Female. 22) Dorsal habitus. 23) Ventral habitus. 24) Lateral habitus. 25) Head, frontal view. 26–28) Syntypes, dorsal view.
Figures 29–34. Decarthria spp. 29–32 in Taxonomic notes on Western Hemisphere Cyrtinini (Coleoptera: Cerambycidae: Lamiinae) including description of two new Cyrtinus LeConte species
Figures 29–34. Decarthria spp. 29–32) Decarthria stephensii, labels of the syntypes. 33) Decarthria albofasciata, lectotype, dorsal habitus. 34) Decarthria boricua, holotype male, dorsal habitus.
Figures 1–2. Zelenka holotypes. 1 in Generic changes in the stag beetle tribe Aesalini (Coleoptera: Lucanidae: Aesalinae) with the description of two new species
Figures 1–2. Zelenka holotypes. 1) Holotype of Echinoaesalus jaechi Zelenka. a) Dorsal habitus. b) Abdomen, ventral view. c) Labels. 2) Holotype female of Echinoaesalus sabahensis Zelenka. a) Dorsal habitus. b) Abdomen, ventral view, showing complete leg-shaped sulci. c) Labels. Photos courtesy H. Schillhammer (Naturhistorisches Museum, Vienna).
Figures 8–9. Trogellus Paulsen species. 8 in Generic changes in the stag beetle tribe Aesalini (Coleoptera: Lucanidae: Aesalinae) with the description of two new species
Figures 8–9. Trogellus Paulsen species. 8) Trogellus trajectus Paulsen, new species, holotype male. a) Dorsal habitus. b) Oblique lateral habitus. c) Labels of holotype. d) Male genitalia. ventral view. 9) Trogellus maesi Paulsen, male. a) Dorsal habitus. b) Male genitalia, ventral view.
Fig. 19 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 19. Tenuibiotus zandrae sp. nov. Egg chorion morphology seen in SEM. A. Entire egg. B. Magnification of the egg surface. C–F. Details of the egg processes and surface between them. Filled flat arrowheads indicate thickenings/striae on the surface between processes and filled indented arrowheads indicate small tubercles on the process walls. Scale bars in μm.
Fig. 18 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 18. Tenuibiotus zandrae sp. nov. Egg chorion morphology seen in PCM. A. Midsection under 400× magnification. B. Surface under 400× magnification. C–D. Surface between processes under 1000× magnification. E–H. Midsections of processes of four different eggs under 1000× magnification. Filled flat arrowheads indicate thickenings/striae which are visible as dark dots and lines on the surface between processes. Scale bars in μm.
Fig. 14 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 14. Tenuibiotus zandrae sp. nov. Claws (paratypes). A–B. Claws II and IV seen in PCM, respectively. C–D. Claws I and IV seen in SEM, respectively. Filled indented arrowhead indicates horseshoe structure connecting the anterior and the posterior claw. Scale bars in μm.
Fig. 11 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 11. Tenuibiotus zandrae sp. nov. Body granulation seen in PCM (paratypes). A–B. Uniformly distributed granulation on the dorso-cephalic and dorso-caudal part of the body. C–D. Uniformly distributed granulation on the dorso-cephalic and dorso-caudal part of the body with small, random patches of lacking granulation. E–F. Uniformly distributed granulation on the ventral side of the body without and with small random patches lacking granulation, respectively. A–B, E and C–D, F are from two different paratypes. Scale bars in μm.
Fig. 8 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 8. Macrobiotus engbergi sp. nov. Egg chorion morphology seen in SEM. A. Entire egg. B. Magnification of the egg surface. C–D. Details of the terminal discs. Scale bars in μm.
Fig. 4 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 4. Macrobiotus engbergi sp. nov. Claws (paratypes). A–B. Claws III and IV seen in PCM, respectively. C–D. Claws III and IV seen in SEM, respectively. Filled flat arrowheads indicate double muscles attachments under the claws, empty flat arrowhead indicates inverted horseshoe structure under the external and the internal claw, whereas filled indented arrowhead indicates horseshoe structure connecting the anterior and the posterior claw. Scale bars in μm.
Fig. 5 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 5. Macrobiotus engbergi sp. nov. Buccal apparatus and the oral cavity armature seen in PCM (holotype, IZiBB, slide GL.052.22). A. Dorso-ventral projection of the entire buccal apparatus. B–C. Oral cavity armature visible in dorsal (B) and ventral (C) view, respectively. D–E. Placoid morphology visible in dorsal (D) and ventral (E) view, respectively. Filled flat arrowheads indicate the 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 subterminal constriction in the second macroplacoids. Scale bars in μm.
Fig. 12 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 12. Tenuibiotus zandrae sp. nov. Patches of dense granulation on legs seen in PCM (paratypes). A. External granulation on leg III (patch of dense granulation encircled). B. Internal granulation on leg III. C. Granulation on leg IV. Scale bars in μm.
Fig. 21 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 21. Tenuibiotus voronkovi (Tumanov, 2007) Egg chorion morphology seen in PCM. A. Midsection under 400× magnification. B. Surface between processes under 1000× magnification. C–J. Details of egg processes under 1000× magnification. Filled flat arrowhead indicates thickenings/striae/sculpture which are visible as dark dots on the surface between processes and indented empty arrowheads indicate broken apices of the egg processes. Scale bars in μm.
Fig. 20 in Integrative taxonomy identifies two new tardigrade species (Eutardigrada: Macrobiotidae) from Greenland
Fig. 20. Tenuibiotus voronkovi (Tumanov, 2007). Body granulation seen in PCM. A. Uniformly distributed granulation of uniform size on the dorso-medial part of the body (cephalic region, paratype). B. Patch of dorso-lateral granulation composed of granules of different size (holotype). Scale bars in μm.
ScienceDex guides
Understand access before you commit
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.