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21 results for “Coturnix coturnix”
Quail (Coturnix japonica) brain MRI template and whole-brain atlas
<p>A population average MRI brain template computed from 20 male Japanese Quails and a manually segmented atlas containing 194 regions. </p> <p>In this Version 2:</p> <ul> <li>the nomenclature in the file <em>siwiaszczyk_LUT-ITK-SNAP_v2.txt</em> was updated</li> <li>one slice of one region was completed in the file <em>siwiaszczyk_atlas_v2.nii.gz.</em></li> </ul>
Figure 3. The maximum likelihood tree inferred from COX1 in Morphological and molecular evidences of Ascaridia galli in migratory quail Coturnix coturnix japonica from Baluchistan Pakistan
Figure 3. The maximum likelihood tree inferred from COX1 sequence (533 bp) of A. galli haplotypes and other Ascaridia species. Evolutionary analysis were conducted in MEGA 7. Scale bar shows genetic variation.
Figure 2 in Morphological and molecular evidences of Ascaridia galli in migratory quail Coturnix coturnix japonica from Baluchistan Pakistan
Figure 2. PCR (COX1) product of A. galli. L: 100 bp molecular marker; Lane-1: positive control; Lanes-2 and 3 partial COX1 amplified products; Lane-4: negative control Phylogenetic Tree.
Figure 2 in MtDNA D-loop genetic diversity of common quail (Coturnix coturnix) migrating through Ukraine and Spain
Figure 2. Midpoint rooted neighbor-joining phylogenetic tree of common quail based on the D-loop haplotypes (H1–H30) identified in this study. Figures indicate bootstrap support values higher than 50%. Abbreviations WU, CU, and NS represent the same sampling areas as in Figure 1.
Figure 1 in MtDNA D-loop genetic diversity of common quail (Coturnix coturnix) migrating through Ukraine and Spain
Figure 1. Median-joining network of common quail mtDNA D-loop haplotypes. The circle area is proportional to the haplotype frequency. Dashes indicate mutational steps. Colors and patterns within circles show the relative frequency of sequences from western Ukraine (WU), central Ukraine (CU), and northern Spain (NS).
Figs. 16, 17 in Hospicidal Behavior of the Cleptoparasitic Bee Coelioxys (Allocoelioxys) coturnix, Including Descriptions of Its Larval Instars (Hymenoptera: Megachilidae)
Figs. 16, 17. SEM micrograph of larval instars of Coelioxys coturnix. 16. Second instar showing skin of first instar attached to venter. 17. Close-up of first-instar mandible (identified by rectangle in fig. 16).
Figs. 11–15 in Hospicidal Behavior of the Cleptoparasitic Bee Coelioxys (Allocoelioxys) coturnix, Including Descriptions of Its Larval Instars (Hymenoptera: Megachilidae)
Figs. 11–15. SEM micrographs of first larval instar of Coelioxys coturnix. 11. Head, covered by chorion, biting egg of Megachile minutissima, frontolateral view. 12. Close-up of front of head, showing micropylar sculpturing of chorion. 13. Head of larva, now removed from host egg, showing mouthparts, near lateral view. 14. Same, approximate ventral view. 15. Mouthparts, with egg chorion and lateral part of parietal now removed, approximate frontal view.
Figs. 4–8 in Hospicidal Behavior of the Cleptoparasitic Bee Coelioxys (Allocoelioxys) coturnix, Including Descriptions of Its Larval Instars (Hymenoptera: Megachilidae)
Figs. 4–8. Macrophotographs of live eggs and early instars of Coelioxys coturnix and eggs of its host, Megachile minutissima. 4. Egg of C. coturnix on host egg. 5. Shrouded first instar of C. coturnix feeding on partly depleted egg of host. 6. Live egg of C. coturnix with its posterior end slightly submerged in provisions and positioned slightly diagonally on host egg; note second egg of C. coturnix removed from host egg and resting in provisions. 7. Egg of C. coturnix attached to host egg, both resting on their sides. 8. Live first instar of C. coturnix feeding on host egg with large egg of Sapyga luteomaculata, ready to eclose, nearby on surface of provisions.
Figs. 23–26 in Hospicidal Behavior of the Cleptoparasitic Bee Coelioxys (Allocoelioxys) coturnix, Including Descriptions of Its Larval Instars (Hymenoptera: Megachilidae)
Figs. 23–26. SEM micrographs of third larval instar of Coelioxys coturnix. 23. Head, mostly frontal view. 24. Close-up of mouthparts, showing dorsal mandibular tooth larger than on previous instar and showing larger palpi than on previous instar. 25. Close-up of left antenna and anterior tentorial pit (as identified by rectangle, fig. 23), showing two sensilla. 26. Spiracle, abdominal segment 3, right side.
Figs. 9, 10 in Hospicidal Behavior of the Cleptoparasitic Bee Coelioxys (Allocoelioxys) coturnix, Including Descriptions of Its Larval Instars (Hymenoptera: Megachilidae)
Figs. 9, 10. SEM micrographs of second instar (identified by its mandible, as in fig. 20) of Coelioxys coturnix. 9. The somewhat flaccid egg of Megachile minutissima to which is attached the chorion and presumably first instar skin of C. coturnix. 10. Close-up of micropyle (identified by rectangle in fig. 9) matched with micropyle of mature oocyte (Rozen and Kamel, 2007: fig. 33).
Figs. 1–3 in Hospicidal Behavior of the Cleptoparasitic Bee Coelioxys (Allocoelioxys) coturnix, Including Descriptions of Its Larval Instars (Hymenoptera: Megachilidae)
Figs. 1–3. Trap-nest panels, Suez Canal University, Ismailia, Egypt. 1. Five panels deployed on campus. 2. Close-up of part of one panel showing nesting straws projecting from holes in painted foam plastic and a female of Coelioxys coturnix at one entrance. 3. Nest straw removed from panel and opened to expose leaflined cells of Megachile minutissima.
Figs. 27–29 in Hospicidal Behavior of the Cleptoparasitic Bee Coelioxys (Allocoelioxys) coturnix, Including Descriptions of Its Larval Instars (Hymenoptera: Megachilidae)
Figs. 27–29. SEM micrographs of fourth larval instar of Coelioxys coturnix. 27. Head, frontal view, showing enlarged dorsal mandibular teeth. 28. Same, ventral view, showing longer antennal papillae and palpi compared with earlier instars. 29. Close-up of left antenna with three sensilla and anterior tentorial pit (identified by rectangle in fig. 27).
Figs. 18–22 in Hospicidal Behavior of the Cleptoparasitic Bee Coelioxys (Allocoelioxys) coturnix, Including Descriptions of Its Larval Instars (Hymenoptera: Megachilidae)
Figs. 18–22. SEM micrographs of second instar of Coelioxys coturnix. 18. Head, frontolateral view; upper rectangle refers to fig. 19; lower rectangle refers to fig. 22. 19. Close-up of left antenna and anterior tentorial pit. 20. Close-up of mandible, showing small subapical dorsal tooth, and labral apex with apical row of pronounced, sensilla-bearing tubercles. 21. Base of right mandible, showing small tubercles on outer surface, and right maxilla. 22. Close-up of labiomaxillary region, showing labial palpi and left maxilla and palpus.
Data from: Anatomical atlas of the quail's ear (Coturnix coturnix)
This study aims to enhance the anatomical knowledge of the ear of the adult quail (Coturnix coturnix) through the creation of a scaled 3D model utilizing data from micro-CT images. In addition, 17 annotated histological sections of the quail's ear are aligned to their 3D position in the model. The resulting anatomical atlas provides an intuitive insight into the 3D anatomy and can be used for medical education. The model also allows measuring anatomical structures and can thus serve as reference for the quail's auricular anatomy and as a basis to evaluate clinical diagnostic imaging results.
Figure 1 in Morphological and molecular evidences of Ascaridia galli in migratory quail Coturnix coturnix japonica from Baluchistan Pakistan
Figure 1. (A) Male mouth parts of A. galli (arrow showing the two lips) one lip is behind; (B) Mid portion of male; (C) Preanal sucker in tail region.
Data from: Multilevel selection with kin and non-kin groups, experimental results with Japanese quail (Coturnix japonica)
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Data from: Glucocorticoid metabolism in the in ovo environment modulates exposure to maternal corticosterone in Japanese quail embryos (Coturnix japonica)
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Data from: Anatomical atlas of the quail's ear (Coturnix coturnix)
Open the record for dataset details and reuse information.
Comprehensive identification of sexual dimorphism-associated differentially expressed genes in two-factorial designed RNA-seq data on Japanese Quail (Coturnix coturnix japonica)
GEO Series GSE64961. Coturnix japonica. 12 samples. Type: Expression profiling by high throughput sequencing.
Molecular regulation of photoinduced seasonal changes in Japanese Quail (Coturnix japonica) energy rheostasis.
GEO Series GSE270939. Coturnix japonica. 24 samples. Type: Expression profiling by high throughput sequencing.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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