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Figure 1 in Mites associated with egg masses of the viburnum leaf beetle Pyrrhalta viburni (Paykull) on Viburnum tinus L.
Figure 1 Pictures of (a) four intact Pyrrhalta viburni egg masses along a Viburnum tinus twig, with the protective "egg cap" visible; (b) one damagedP. viburni egg mass following plant wounding response, with the egg cap removed and the egg mass cavity partially covered by wounding tissue; (c) twoP. viburni eggs; (d) Detritivorous miteTrichoribates trimaculatus nymph; (e) T. trimaculatus adult; (f) predatory mite Anystis baccarum. Photo credit: (a)(b) Gaylord Desurmont; (c)(d)(e)(f) Elven Kerdellant.
Figure 1 in Predation and oviposition potential of Brazilian populations of the predatory mite Amblyseius tamatavensis (Acari: Phytoseiidae) on eggs of Bemisia tabaci (Insecta: Hemiptera)
Figure 1 Locations of the collection sites of the populations of Amblyseius tamatavensisin Brazil (May 2015 to May 2016).
FIGURES 1 – 4 in A new species of Emersonella (Hymenoptera: Eulophidae), parasitoid on weevil eggs (Coleoptera: Curculionidae), from Costa Rica
FIGURES 1 – 4. Emersonella curculiovora sp. nov. 1. Head frontal, female. 2. Head and pronotum dorsal, female. 3. Mesosoma dorsal, female. 4. Apical gastral tergite dorsal, female.
FIGURES 7 – 10 in A new species of Emersonella (Hymenoptera: Eulophidae), parasitoid on weevil eggs (Coleoptera: Curculionidae), from Costa Rica
FIGURES 7 – 10. Juvenile stages of Emersonella curculiovora sp. nov. 7. Host egg case (arrow) on stem of Cinnamomum cinnamomifolium. 8. Mature larva (arrow) in situ (host’s cementenclosure partially removed). 9. Dorsal view of a female pupa (note meconium around the ovipositor). 10. Mature pupa (arrow) in situ (host’s cementenclosure cement partially removed).
FIGURES 23–28 in On Egg Eclosion and Larval Development in Euglossine Bees
FIGURES 23–28. Microphotographs of mature larvae of Euglossa (Euglossa) hemichlora. 23, 24. Right mandible, dorsal and inner views, respectively. 25. Anal area of cleared and stained predefecating larva with darkly stained integument above transverse anal slit above which is the pygidial ridge; dark area below slit is rectum seen through integument. Note short pigmented spines laterad of anal slit. 26. Spiracle of cleared predefecating larva seen from exterior, demonstrating width of peritreme relative to atrial opening. 27. Side view of spiracle of predefecating larva with its anatomical parts identified. 28. External view of spiracle of predefecating larva focused on unadorned primary tracheal opening; gray-toned ring immediately outside of opening caused by subatrium beneath transparent atrium.
FIGURES 15, 16 in On Egg Eclosion and Larval Development in Euglossine Bees
FIGURES 15, 16. SEM micrographs of egg of Euglossa (Euglossa) hemichlora. 15. Surface of chorion from side showing faint hexagonal patterning. 16. Presumed front end of egg revealing presumed opening through the vitelline membrane.
FIGURES 17–22 in On Egg Eclosion and Larval Development in Euglossine Bees
FIGURES 17–22. Diagrams of immature stages of Euglossa (Euglossa) hemichlora: figs. 18, 21, 22 to same scale. 17. Egg, presumed front end left. 18. Postdefecating larva, lateral view, anterior end left. 19, 20. Head of same, frontal and lateral views, respectively. 21. Late stage predefecating last larval instar, anterior end left. 22. Early stage of predefecating last larval instar, anterior end left.
FIGURES 11–14. Euglossine taxa not exhibiting elongate, necklike prothoracic segment. 11 in On Egg Eclosion and Larval Development in Euglossine Bees
FIGURES 11–14. Euglossine taxa not exhibiting elongate, necklike prothoracic segment. 11. Eulaema (Apeulaema) nigrita modified from Zucchi et al. (1969a: fig. 8) and 12, 13. Eufriesea surinamensis from Rozen (2016: figs. 6, 7) (both of which were identified as predefecating). 14. Exaerete smaragdina, identified as postdefecating in Garófalo and Rozen (2001: fig. 28), presumably was in an early stage that had not yet started to develop pupal tissue internally.
FIGURES 6–10 in On Egg Eclosion and Larval Development in Euglossine Bees
FIGURES 6–10. Euglossine taxa exhibiting elongate, necklike prothoracic segment and small cranium in Rozen (2016) for: 6, 7. Eufriesea surinamensis, 8. Eufriesea mussitans, 9. E. (Euglossa) cordata, 10. Eulaema (Apeulaema) polychroma.
FIGURES 3–5 in On Egg Eclosion and Larval Development in Euglossine Bees
FIGURES 3–5. Illustrations of sequence of immature stages of Euglossa (Glossura) intersecta Latreille reproduced from Zucchi et al. (1969b: figs. 3, 10, and 9, respectively), all to approximately same scale. 3. Postdefecating larva showing internal position of developing pharate pupa (dashed lines). 4. Prepupa. 5. Pupa, showing elongate mouthparts that form under the head and mesosoma of the prepupa.
FIGURE 1 in On Egg Eclosion and Larval Development in Euglossine Bees
FIGURE 1. Microphotographs of integument of body of cleared first instar of Eulaema (Apeulaema) nigrita (Lepeletier) showing two spiracles, associated trachea, and continuous band of fine spicules extending along one side of body just above spiracular line. Large structure circling each spiracle is large atrium of second instars forming around very small atrium or first instar. FIGURE 2. Close-up of one spiracle.
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.
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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.