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FIGURE 2 in First description and bionomic notes for the final-instar larva and pupa of an Oriental dobsonfly species, Neoneuromus sikkimmensis (van der Weele, 1907) (Megaloptera: Corydalidae)
FIGURE 2. The last-instar larva of Neoneuromus sikkimmensis (van der Weele, 1907). A. habitus, dorsal view; B. habitus, ventral view. Scale bar = 5 mm.
Figs. 1–3 in Pupal Descriptions of Some Cleptoparasitic Bees (Apidae), with a Preliminary Generic Key to Pupae of Cleptoparasitic Bees (Apoidea)
Figs. 1–3. Pupa of Neolarra (Neolarra) californica. 1. Body, lateral view, with vertex enlarged to show tubercles with elongate, setalike apices. 2. Anterior part of body, right side, dorsal view. 3. Dorsal surface of mesothorax and metathorax, enlarged, lateral view.
Figs. 21–24 in Pupal Descriptions of Some Cleptoparasitic Bees (Apidae), with a Preliminary Generic Key to Pupae of Cleptoparasitic Bees (Apoidea)
Figs. 21–24. Pupa (male) of Thyreus species? 21. Entire body, lateral view. 22. Apex of metasoma, enlarged, dorsal view, showing median apical thorn. 23. Left mesoscutellar tubercle, enlarged, seen from behind, maximum profile. 24. Right side of anterior part of body except for axillae and scutellum, dorsal view. Scale (= 1.0 mm) refers to figs. 21, 24.
Figs. 7–10 in Pupal Descriptions of Some Cleptoparasitic Bees (Apidae), with a Preliminary Generic Key to Pupae of Cleptoparasitic Bees (Apoidea)
Figs. 7–10. Pupa of Osiris pallidus? 7. Entire body, lateral view, with tergal tubercle with spiculate apex enlarged. 8. Anterior part of body, right side, dorsal view. 9, 10. Apex of metasoma enlarged, lateral and dorsal views, respectively.
FIGURE 12–17 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURE 12–17. SEM micrographs of micropylar areas on other eggs of Bombus griseocollis showing variation in radiating channels and in apparent number of openings.
FIGURE 40 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURE 40. Microphotograph of cleared abdominal segment of fourth larval instar of Bombus griseocollis, anterior end right, with long, tapering, posteroventrad directed spicules of lower surface of lateral body swelling above and much smaller, denser ventral body spicules below.
FIGURES 34–36 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURES 34–36. Microphotographs of right mandible of fifth larval instar of Bombus griseocollis dorsal, inner, and ventral, and outer views, respectively (arrows pointing to setae in outer view).
FIGURES 23–25 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURES 23–25. Diagrams of fifth larval instars of Bombus griseocollis, lateral views, all to same scale. Scale = 1.0 mm, referring to figs. 23–25. Variation in body size reflecting natural variability in this stage. 23. Predefecating larva. 24. Early postdefecating larva with thoracic segmentation starting to elongate. 25. Late postdefecating larva with pupal metasoma starting to swell abdomen. Scale = 1.0 mm. FIGURES 26, 27. Close-up of head of fifth larval instar of B. griseocollis, lateral and front views respectively.
FIGURES 31–33 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURES 31–33. Microphotographs of front of head of Bombus griseocollis showing variation in clypeal pigmentation.
FIGURES 5–7 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURES 5–7. SEM micrographs of another egg of Bombus griseocollis. 5. Entire egg (anterior end left), again with micropyle centered in middle of front end. 6. Close-up of elevation. 7. Further close-up, demonstrating large number of possible openings.
FIGURES 8, 9 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURES 8, 9. Distant (arrow) and close-up views of the micropyle of yet another egg, this one revealing no certain opening. FIGURES 10. Front of egg of Bombus griseocollis that has lost its chorion, revealing small opening into yolk (arrow) in the vitelline membrane through which spermatozoa are presumably funneled to fertilize the egg. 11. Close-up of entrance.
FIGURES 2–4 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURES 2–4. SEM micrographs of egg of Bombus griseocollis. 2. Entire egg (anterior end up left) demonstrating smooth transparent chorion at short anterior and posterior ends and long stretch of reticulate, rough chorion in the middle. 3. Close-up of anterior end showing the small elevation of the micropyle located centrally. 4. Close-up of the micropyle elevation, with some micropylar opening visible along upper periphery.
FIGURES 18–22 in Preliminary Study of the Bumble Bee Bombus griseocollis, Its Eggs, Their Eclosion, and Its Larval Instars and Pupae (Apoidea: Apidae: Bombini)
FIGURES 18–22. SEM micrographs of reticulate chorion. 18. Close-up of exterior surface of reticulate chorion. 19. Same, except where reticulate chorion meets smooth chorions. 20. Edge of split of reticulate chorion with thin inner surface below and edge of outer structure along upper side. Note reticulate pattern of surface structure revealed through thin inner surface, 21. Close-up of central area in figure 20. 22. Close-up of parallel perpendicular lamellae from central area of figure 20 demonstrating complexity of outer ornamentation.
F I G U R E 2 in Is 'pupae busting' or destroying overwintering pupae of Helicoverpa spp. (Lepidoptera: Noctuidae) still relevant today in Australian Bt cotton?
F I G U R E 2 Cultivators that have been used in pupae busting and are reported in Table 1 and described in Table 2.
F I G U R E 1 in Is 'pupae busting' or destroying overwintering pupae of Helicoverpa spp. (Lepidoptera: Noctuidae) still relevant today in Australian Bt cotton?
F I G U R E 1 Current cotton-growing regions of Australia (adapted from information on the Cotton Australia website: www.cottonaustralia.com.au). Helicoverpa in the Murray/Darling basin valleys (blue) will undergo diapause, while those in the north (sandy brown regions) will not. Clear sites in the north are emerging cotton-growing regions.
Figs 7-10 in Descriptions of eleven Opatrini pupae (Coleoptera, Tenebrionidae) from China
Figs 7-10. Pronotum of selected species of Ametor and Hydrocassis (a – pronotum at 30×, magnification; b – part of pronotal disc at 60× magnification). 7 – A. xizangensis sp. nov. (holotype, dorsal view); 8 – A.rudesculptus Semenov, 1900; 9 – Hydrocassis hebaueri Schödl, 2000; 10 – Hydrocassis gansu sp. nov. (holotype, dorsal view).
Figs 1–6 in Descriptions of eleven Opatrini pupae (Coleoptera, Tenebrionidae) from China
Figs 1–6. Habitus of selected Chinese Ametor and Hydrocassis. 1 – A. xizangensis sp. nov. (holotype, dorsal view); 2 – A. elongatus Ji & Schödl, 1998 (holotype, dorsal view); 3 – H. gansu sp. nov. (holotype, dorsal view); 4 – H. hebaueri Schödl, 2000; 5 – H. scapulata Fairmaire, 1878; 6 – H. imperialis (Knisch, 1921).
Fig. 2 in Reproduction of Trichospilus diatraeae (Hymenoptera: Eulophidae) in the pupae of Diaphania hyalinata (Lepidoptera: Crambidae) of various ages
Fig. 2. Trichospilus diatraeae progeny produced in Diaphania hyalinata pupae; (A) number of progeny; (B) duration of the T. diatraeae life cycle; (C) width of the T. diatraeae female head capsule; (D) width of the T. diatraeae male head capsule (mean ± SE). Measurements were made on T. diatraeae that emerged from D. hyalinata hosts parasitized as 24-, 48-, 72-, 96-, 120-, and 144-h-old pupae.
Fig. 1 in Reproduction of Trichospilus diatraeae (Hymenoptera: Eulophidae) in the pupae of Diaphania hyalinata (Lepidoptera: Crambidae) of various ages
Fig. 1. Percentage of parasitism of Diaphania hyalinata pupae and percentage of emergence of Trichospilus diatraeae progeny from D. hyalinata hosts parasitized as 24-, 48-, 72-, 96-, 120-, and 144-h-old pupae. Bars with the same uppercase or lowercase letter do not differ by the non-parametric Kruskal–Wallis test (P> 0.05).
Figs 6–9 in Chironomidae (Insecta, Diptera) From Hungary 3. The Pupa Of Paratendipes Nubilus (Meigen)
Figs 6–9. Paratendipes nubilus (MEIGEN) pupa. 6 = tergites, 7 = comb of segment VIII, 8 = basal ring of thoracic horn, 9 = thorax
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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
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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.