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445 results for “karyotype”
FIGURE 4 in Dorcadion axillare Küster, 1847 (Coleoptera, Cerambycidae): distribution, morphometrics, karyotype and description of a new subspecies from Romania
FIGURE 4. Plot of the first two components from the Principal Component Analysis of the log-transformed data based on the correlation matrix.
FIGURE 1 in Dorcadion axillare Küster, 1847 (Coleoptera, Cerambycidae): distribution, morphometrics, karyotype and description of a new subspecies from Romania
FIGURE 1. Male heads, lateral view. (a) Dorcadion arenarium, Italy, Ripalda, (b) D. axillare, Romania, 'Valea lui David', and (c) D. sericatum, Crimean Peninsula, Katsiveli.
FIGURES 23–25 in Redescription of larva, pupa and imago male of Chironomus (Chironomus) salinarius Kieffer from the saline rivers of the Lake Elton basin (Russia), its karyotype and ecology
FIGURES 23–25. Homozygotes in C. salinarius Kieffer karyotype: 23—salD1.1; 24—salE1.1; 25—salF1.1. The designations are the same as in Fig 19.
FIGURES 13–18 in Redescription of larva, pupa and imago male of Chironomus (Chironomus) salinarius Kieffer from the saline rivers of the Lake Elton basin (Russia), its karyotype and ecology
FIGURES 13–18. Larva of C. salinarius Kieffer. 13—antenna; 14—labro-epipharyngeal region; 15—mandible; 16—anterior margin of base maxilla; 17—median and 1–2 lateral teeth; 18—mentum and ventromental plate. Scale bar 100 µm.
FIGURES 20–22 in Redescription of larva, pupa and imago male of Chironomus (Chironomus) salinarius Kieffer from the saline rivers of the Lake Elton basin (Russia), its karyotype and ecology
FIGURES 20–22. Homozygotes in C. salinarius Kieffer karyotype: 20—salA1.1; 21—salB2.2; 22—salC1.1. Brackets above and below chromosome arms indicate the localization of inversions. Here and in all other figures numbers and small letters under chromosome arms correspond to banding sequences. The rest designations are the same as in Fig. 19.
FIGURES 30–33 in Redescription of larva, pupa and imago male of Chironomus (Chironomus) salinarius Kieffer from the saline rivers of the Lake Elton basin (Russia), its karyotype and ecology
FIGURES 30–33. Homozygotes and heterozygotes in arm G C. salinarius Kieffer: 30, 32—salG1.1; 31—salG2.2; 33—salG1.2. A black point and (BR) in Fig 30 designate a region from which extra BR is developed.
FIGURE 19 in Redescription of larva, pupa and imago male of Chironomus (Chironomus) salinarius Kieffer from the saline rivers of the Lake Elton basin (Russia), its karyotype and ecology
FIGURE 19. Karyotype of C. salinarius Keiffer. Karyotype: salA1.1, salB2.2, salC1.1 etc. note the symbols of genotypic combinations of banding sequences in chromosome arms; N—nucleolus, BR—Balbiani ring, p — puff. Arrows indicate centromeric band.
FIGURES 6–12 in Redescription of larva, pupa and imago male of Chironomus (Chironomus) salinarius Kieffer from the saline rivers of the Lake Elton basin (Russia), its karyotype and ecology
FIGURES 6–12. Pupa of C. salinarius Kieffer. 6—frontal apotome; 7—thorax; 8—median hooks in the posterior margin of tergite II, lateral view; 9—tergites I–VI; 10—tergites VII–IX; 11–12—variability of anal spurs. Scale bar 100 µm.
FIGURES 26–29 in Redescription of larva, pupa and imago male of Chironomus (Chironomus) salinarius Kieffer from the saline rivers of the Lake Elton basin (Russia), its karyotype and ecology
FIGURES 26–29. Heterozygotes in C. salinarius Kieffer karyotype: 26—salA1.2; 27—salA1.3; 28—salB2.3; 29—salE1.3. The designations are the same as in Fig 19.
FIGURES 2–5 in Redescription of larva, pupa and imago male of Chironomus (Chironomus) salinarius Kieffer from the saline rivers of the Lake Elton basin (Russia), its karyotype and ecology
FIGURES 2–5. Imago male of C. salinarius Kieffer. 2—hypopygium, dorsal view; 3—lateral tubercles on tergite IX; 4—anal point, dorsal view; 5—superior volsella, dorsal view. Scale bar 100 µm.
FIGURES 30–36 in A new record of Chironomus (Chironomus) acidophilus Keyl (Diptera, Chironomidae) from the Uzon volcanic caldera (Kronotsky Reserve, Kamchatka Peninsula, Russia), its karyotype, ecology and biology
FIGURES 30–36. Larva of C. acidophilus Keyl. 30—frontal apotome; 31—antenna; 32—seta of labrum S I; 33—pecten epipharyngis; 34—premandible; 35—mandible; 36—mentum and ventromental plates.
FIGURES 2–9 in A new record of Chironomus (Chironomus) acidophilus Keyl (Diptera, Chironomidae) from the Uzon volcanic caldera (Kronotsky Reserve, Kamchatka Peninsula, Russia), its karyotype, ecology and biology
FIGURES 2–9. Imago male of C. acidophilus Keyl. 2—variability of frontal tubercles; 3—hypopygium, dorsal view; 3— tergite IX, lateral view; 5–9—variability of superior volsella. Scale bar 50 µm.
FIGURES 20–29 in A new record of Chironomus (Chironomus) acidophilus Keyl (Diptera, Chironomidae) from the Uzon volcanic caldera (Kronotsky Reserve, Kamchatka Peninsula, Russia), its karyotype, ecology and biology
FIGURES 20–29. Larva of C. acidophilus Keyl. 20—antenna; 21—labro-epipharyngeal region; 22—mandible; 23–26—apex of mandible; 27—maxilla; 28—anterior margin of base maxilla; 29—mentum and ventromental plate. Scale bar 50 µm.
FIGURES 10–19 in A new record of Chironomus (Chironomus) acidophilus Keyl (Diptera, Chironomidae) from the Uzon volcanic caldera (Kronotsky Reserve, Kamchatka Peninsula, Russia), its karyotype, ecology and biology
FIGURES 10–19. Pupa of C. acidophilus Keyl. 10–11—frontal tubules, dorsal view; 12—median hooks on the posterior margin of tergite II, lateral view; 13—tergites II–VI; 14—tergites VII–IX; 15–19—variability of anal combs. Scale bar 50 µm.
FIGURE 37 in A new record of Chironomus (Chironomus) acidophilus Keyl (Diptera, Chironomidae) from the Uzon volcanic caldera (Kronotsky Reserve, Kamchatka Peninsula, Russia), its karyotype, ecology and biology
FIGURE 37. Polytene chromosomes of C. acidophilus Keyl, 1960. Designations: A, B, C, D, E, F, G—chromosome arms, arabic numerals and letters—chromosome sections, N—nucleolus, BR—Balbiani Ring, arrows indicate the centromeres.
FIGURE 13 in Macropelopia nebulosa group (Diptera, Chironomidae, Tanypodinae) — karyotype and morphology of larvae and pupae
FIGURE 13. Macropelopia rossaroi Lencioni, Marziali; pupa A1—thoracic horn; A2—plastron plate; B—arrangement of suture; C—segment IV–VI dorsal; D—lateral setation of segment VII and anal segments; E—part of segment IV; F—seta D1; G—armament of tergites; H—transverse posterior band of teeth on the tergites.
FIGURE 15 in Macropelopia nebulosa group (Diptera, Chironomidae, Tanypodinae) — karyotype and morphology of larvae and pupae
FIGURE 15. Macropelopia paranebulosa Fittkau; A—thoracic horn from different locality; B—segment VII–IX dorsal (according to Makarchenko, Petrova 1988); Macropelopia fehlmanni (Kieffer) C—different type of thoracic horn; D1—segment IV dorsal; D2—dorsal setae 1–5 of tergite IV; D3—segment IV ventral (according to Fittkau 1962 and Langton 1991).
FIGURE 9 in Macropelopia nebulosa group (Diptera, Chironomidae, Tanypodinae) — karyotype and morphology of larvae and pupae
FIGURE 9. Macropelopia nebulosa (Meigen) pupa; A—side view and thoracic horn: PP—plastron plate, RA—respiratory atrium; B—segments VI–IX dorsal; C—segments III–IX ventral.
FIGURE 3 in Macropelopia nebulosa group (Diptera, Chironomidae, Tanypodinae) — karyotype and morphology of larvae and pupae
FIGURE 3. Polytene chromosome EF (the chromosome was divided to sections in comparison with those chromosome of M. paranebulosa). The arrow indicates the centromere. Bar is 100 µm.
FIGURE 12 in Macropelopia nebulosa group (Diptera, Chironomidae, Tanypodinae) — karyotype and morphology of larvae and pupae
FIGURE 12. Macropelopia nebulosa (Meigen) pupa (SEM); A—side view (15x); B—side view of anal segment (50x); C—segments II–III; D—position of setae D1 and D3 (150x); E—position of setae D1 and D3 (200x).
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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.