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116 results for “Darkling beetle”
Fig. 3 in Subtribal, Generic And Subgeneric Composition Of Darkling Beetles Of The Tribe Helopini (Coleoptera: Tenebrionidae) In The Eastern Palaearctic Region
Fig. 3. The genus Apterotarpela: A = A. klapperichi, habitus, B = A. clypealis, habitus, C = A. subasperipennis, habitus, D = A. clypealis, apices of elytra, E = A. subasperipennis, apices of elytra
Fig. 18 in Subtribal, Generic And Subgeneric Composition Of Darkling Beetles Of The Tribe Helopini (Coleoptera: Tenebrionidae) In The Eastern Palaearctic Region
Fig. 18. Asialassus cordicollis, details of structure: A = head, ventral view, B = male prosternum, C = male prosternal process, D = female prothorax and fore legs, ventral view, E = female prosternal process, ventral view, F = female prothorax, posterior transverse view (lateral arrows show elevate margin of procoxae, middle arrow shows depressed prosternal process between procoxae), G = male protibia, H = male mesotibia
Fig. 1 in Subtribal, Generic And Subgeneric Composition Of Darkling Beetles Of The Tribe Helopini (Coleoptera: Tenebrionidae) In The Eastern Palaearctic Region
Fig. 1. Nipponohelops ishikawai: A = male, habitus, B = female, habitus, C = aedeagus, dorsal view, D = fore leg of male, E = middle leg of male, F = prothorax, ventral view, G = holotype
Figure 3. B in Notes on the biological development of the darkling beetle Blaps nefrauensis nefrauensis Seidlitz, 1893 (Coleoptera: Tenebrionidae)
Figure 3. B. nefrauensis life cycle: (a) Eggs and newly hatched larva (1st instar). (b) 2nd instar larva beside eggs. (c) Larvae in the last instar. (d) Prepupa. (e) Pupa. (f) Adults. (g) Newly moulted 2ndand 4th instar larvae. (h) Moulted 2nd and 6th instar larva began to yellowish. (i) Newly moulted larva beside its old yellow cuticle. (j) Newly moulted larva compared with larva in the 8th instar. Diagram representation of the life cycle of B. nefrauensis (k).
Figure 5 in Notes on the biological development of the darkling beetle Blaps nefrauensis nefrauensis Seidlitz, 1893 (Coleoptera: Tenebrionidae)
Figure 5. Light microscopy of some structure of the newly hatched egg larva of B. nefrauensis: (a) Ligula (ventral view). (b) Lacinia teeth (ventral view). (c) Ligula, and Labial and Maxillary palpi (dorsal view). (d) Ocelli (lateral view). (e) Nerves across ligula. (f) Nerve across third antennomere. Light microscopy on the antennal protection in the embryo of B. nefrauensis (g) Larva just before egg hatching. (h) Cylindrical membrane covering apically the antennae.
Figure 4 in Notes on the biological development of the darkling beetle Blaps nefrauensis nefrauensis Seidlitz, 1893 (Coleoptera: Tenebrionidae)
Figure 4. Newly egg hatched larva: (a) First instar larva compared with egg, scale = 1 mm. (b) First instar larva compared with 8th instar larva. (c) Head (dorsal view). (d) Head (ventral view). (e-g) Pygopods and urogomphi in first instar larva
Figure 11 in Speciation in Darwin's darklings: taxonomy and evolution of Stomion beetles in the Galápagos Islands, Ecuador (Insecta: Coleoptera: Tenebrionidae)
Figure 11. Consensus tree of the three equally parsimonious trees with DELTRAN optimization, all characters of equal weight and unordered. Closed symbols indicate apomorphies, and open symbols indicate probable homoplasy. Numbers above each symbol indicate the character and numbers below the symbol indicate its state. Tree length 66; consistency index 48; retention index 48. A and B indicate the two basal clades of species.
Figure 9 in Speciation in Darwin's darklings: taxonomy and evolution of Stomion beetles in the Galápagos Islands, Ecuador (Insecta: Coleoptera: Tenebrionidae)
Figure 9. Principal islands of the Galápagos Archipelago (numbers on contour lines indicate elevation in hundreds of metres). Not all satellite islets with Stomion are indicated by name.
Figures 24–29 in Speciation in Darwin's darklings: taxonomy and evolution of Stomion beetles in the Galápagos Islands, Ecuador (Insecta: Coleoptera: Tenebrionidae)
Figures 24–29. Scanning electron micrographs of the head and pronotum (18 ¥), with inset of pronotal disc (300¥) and the elytral disc (100¥). Figs 24, 25. S. obesum; Figs 26, 27. S. genovesa; Figs 28, 29. S. longulum.
Figures 1–8 in Speciation in Darwin's darklings: taxonomy and evolution of Stomion beetles in the Galápagos Islands, Ecuador (Insecta: Coleoptera: Tenebrionidae)
Figures 1–8. Habitus figures of eight species of Stomion. Fig. 1. S. galapagoensis. Fig. 2. S. helopoides. Fig. 3. S. cribicollis. Fig. 4. S. longulum. Fig. 5. S. laevigatum. Fig. 6. S. linelli. Fig. 7. S. longicornis. Fig. 8. S. rugosum. From Van Dyke (1953), with permission of California Academy of Sciences. Scale bar = 5 mm.
Figures 12–17 in Speciation in Darwin's darklings: taxonomy and evolution of Stomion beetles in the Galápagos Islands, Ecuador (Insecta: Coleoptera: Tenebrionidae)
Figures 12–17. Scanning electron micrographs of the head and pronotum (18 ¥) with inset of pronotal disc (300¥) and the elytral disc (100¥). Figs 12, 13. S. longicornis; Figs 14, 15. S. helopoides; Figs 16, 17. S. galapagoensis.
Figures 18–23 in Speciation in Darwin's darklings: taxonomy and evolution of Stomion beetles in the Galápagos Islands, Ecuador (Insecta: Coleoptera: Tenebrionidae)
Figures 18–23. Scanning electron micrographs of the head and pronotum (18¥), with inset of pronotal disc (300¥) and the elytral disc (100¥). Figs 18, 19. S. punctipennis; Figs 20, 21. S. cribricollis; Figs 22, 23. S. rugosum.
Figures 30–35 in Speciation in Darwin's darklings: taxonomy and evolution of Stomion beetles in the Galápagos Islands, Ecuador (Insecta: Coleoptera: Tenebrionidae)
Figures 30–35. Scanning electron micrographs of the head and pronotum (18¥), with inset of pronotal disc (300¥) and the elytral disc (100¥). Figs 30, 31. S. laevigatum; Figs 32, 33. S. linelli linelli; Figs 34, 35. S. linelli leleupi.
Figs. 1–11 in Darkling beetles of the tribe Helopini (Coleoptera: Tenebrionidae) of Jordan
Figs. 1–11. Entomogonus (Delonurops) spp., male, habitus and details of structure. 1–6,
Fig. 10 in Subtribal, Generic And Subgeneric Composition Of Darkling Beetles Of The Tribe Helopini (Coleoptera: Tenebrionidae) In The Eastern Palaearctic Region
Fig. 10. Nalassus (s. str.) akitai, holotype and paratype: A = male, holotype, habitus, B = fe-
Fig. 6 in Subtribal, Generic And Subgeneric Composition Of Darkling Beetles Of The Tribe Helopini (Coleoptera: Tenebrionidae) In The Eastern Palaearctic Region
Fig. 6. Stenohelops chinensis sp.n., habitus: A = male, holotype, B = female, paratype
Fig. 5 in Subtribal, Generic And Subgeneric Composition Of Darkling Beetles Of The Tribe Helopini (Coleoptera: Tenebrionidae) In The Eastern Palaearctic Region
Fig. 5. Species of the genus Catomus, subgenus Sinocatomus. A = C. solitarius, male, Gansu
Figure 1 in Notes on the biological development of the darkling beetle Blaps nefrauensis nefrauensis Seidlitz, 1893 (Coleoptera: Tenebrionidae)
Figure 1. Map of Tunisia (North Africa) showing the localization of the sampling area.
FIGURE 1 in The oldest fossil darkling beetle of the genus Neomida Latreille, 1829 (Coleoptera: Tenebrionidae) from Eocene Baltic amber examined with X-ray microtomography
FIGURE 1. Neomida groehni sp. nov., holotype, photomicrograph: A – habitus, latero-dorsal view; B – details of forebody, dorsal view; C – habitus, ventral view. Not reproduced to the same scale.
FIGURE 4 in The oldest fossil darkling beetle of the genus Neomida Latreille, 1829 (Coleoptera: Tenebrionidae) from Eocene Baltic amber examined with X-ray microtomography
FIGURE 4. Neomida groehni sp. nov., holotype, aedeagus, X-ray micro-CT rendering: A – ventral view; B – dorsal view; C – lateral view; D – apical piece. Abbreviations: ap – apical piece, bp – basal piece, ml – median lobe.
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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.