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352 results for “Bee nesting”
Figs. 3 and 4 in Notes on the nesting biology of the small carpenter bee Ceratina smaragdula (Hymenoptera: Apidae) in northwestern Pakistan
Figs. 3 and 4. Photographs of nests of Ceratina (Pithitis) smaragdula in Ravenna grass stems (Saccharum ravennae) from northwestern Pakistan (photos by Hussain Ali). 3. Section of a nest with adult female and cell partitions with a series of pupae (scale in mm). 4. Section of nest with completed cell partitions containing characteristic pollen masses (not to same scale).
Figs. 1 and 2 in Notes on the nesting biology of the small carpenter bee Ceratina smaragdula (Hymenoptera: Apidae) in northwestern Pakistan
Figs. 1 and 2. Photographs of nest entrances of Ceratina (Pithitis) smaragdula in Ravenna grass stems (Saccharum ravennae) in northwestern Pakistan (photos by Hussain Ali). 1. Two individual nest entrances. 2. Nest entrance with entrance blocked by the brilliant metallic green metasoma of a female guard.
Figs. 20, 21 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Figs. 20, 21. Daily activity of individuals of Canephorula apiformis and Melectoides bellus at food plants during 1993–1994 and 1996–1997, in the Valley of ZondaUllum, San Juan Province, Argentina. 20. Canephorula apiformis. 21. Melectoides bellus.
Fig. 5 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Fig. 5. Cell of Canephorula apiformis and provisions, with enlarged section of cell wall. Scale = 1.0 mm.
Fig. 1 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Fig. 1. Position (arrows) of Valley of ZondaUllum and Valley of Iglesia, San Juan Province, Argentina.
Fig. 12 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Fig. 12. (Above) SEM micrograph of part of the domelike closure end of cocoon of Melectoides bellus, showing coarse silk fibers on external surface. Periphery of closure end toward bottom of micrograph.
Fig. 10 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Fig. 10. (Above) SEM micrograph of filter of the cocoon of Canephorula apiformis, as seen from inside the cocoon. Upper part of filter cut away.
Figs. 6–9 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Figs. 6–9. Diagrams of cocoon of Canephorula apiformis. 6. Entire cocoon showing external shape, side view, with upper right side cut away to show internal structure. 7. Cross section of the upper end enlarged, showing inner structure, and greatly enlarged section of cocoon wall demonstrating layers of silk and feces. 8. Upper end with outer silk layer removed to show radiating ridges of leathery layer. 9. Diagram of cocoon of Melectoides bellus, side view, showing external shape, upper right side cut away. Scale (= 5.0 mm) refers to figs. 6, 8, and 9.
Fig. 17 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Fig. 17. Frequency of individuals of Canephorula apiformis and Melectoides bellus on flowers during the months of activity in the Valley of ZondaUllum, San Juan Province, Argentina.
Figs. 29–34 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Figs. 29–34. Postdefecating larva of Melectoides bellus. 29. Entire larva, lateral view. 30. Head, lateral view. 31. Head, frontal view, pigmentation on left, sensilla and spicules on right. 32, 33. Right mandible, dorsal and inner views. 34. Spiracle, side view. Scale (= 1.0 mm) refers to fig. 29.
Figs. 22–28 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Figs. 22–28. Postdefecating larva of Canephorula apiformis. 22. Entire larva, lateral view. 23. Head, lateral view. 24. Head, frontal view, pigmentation on left, sensilla and spicules on right. 25–27. Right mandible, dorsal, inner, and ventral views. 28. Spiracle, side view. Scale (= 1.0 mm) refers to fig. 22.
Figs. 2, 3 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Figs. 2, 3. Nest sites of Canephorula apiformis in the Valley of ZondaUllum, San Juan Province, Argentina. 2. (Above) nests located in left side of picture. 3. (Below) nests at the margin of the road (arrows).
Fig. 16 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Fig. 16. (Below) SEM micrograph of front end of cocoon of Isepeolus viperinus, showing coarse outer silk layer, finer intermediate silk layers, and very fine innermost silk layer with fenestrations at closure.
Figs. 18, 19. 18 in Biology of the Bee Canephorula apiformis and Its Cleptoparasite Melectoides bellus: Nesting Habits, Floral Preferences, and Mature Larvae (Hymenoptera, Apidae)
Figs. 18, 19. 18. Above, blooming periods of plant species visited by Canephorula apiformis and Melectoides bellus, years 1993–1994 and 1996–1997, in the Valley of ZondaUllum, San Juan Province, Argentina. Below, frequency of C. apiformis collected on different floral species during the months of activity. 19. Frequency of individuals of Melectoides bellus collected on different floral species identified in fig. 18 during the months of activity.
Fig. 3 in Nesting observation of the Sculptured Resin bee Megachile sculpturalis F. Smith, 1853 (Hymenoptera: Megachilidae) in Bulgaria
Fig. 3. Females at the nest entrance on the trunk of Styphnolobium japonicum in Sea Garden of Varna City, Bulgaria (site 2). A – 19.viii.2023, 20:00 p.m.; B – 20.viii.2023, 08:50 a.m.
Fig. 1 in Nesting observation of the Sculptured Resin bee Megachile sculpturalis F. Smith, 1853 (Hymenoptera: Megachilidae) in Bulgaria
Fig. 1. Styphnolobium japonicum trees with nests of Megachile sculpturalis in the Sea Garden of Varna City, Bulgaria. A – site 1, 18.viii.2023; B – site 2, 20.viii.2023.
Figure 1 in Daily activity rhythm of the African stingless bee Hypotrigona gribodoi (Hymenoptera: Meliponini) in the dry season, with notes on nest structure and colony composition
Figure 1. Numbers of bees departing from the nest (black) and returning throughout daylight hours. Returning bees are separated into those without (white) and with (gray) loaded pollen baskets
Figure 2 in Generalist ground-nesting bees dominate diversity survey in intensively managed agricultural land
Figure 2. Species richness compared between sampling periods. Dark grey bars: species from the genus Andrena Fabricius (Andrenidae); light grey bars: species from the genera: Halictus Latreille, Lasioglossum Curtis (Halictidae), Osmia Panzer (Megachilidae), and Nomada Scopoli (Apidae); black bars: species from the genus Bombus Latreille (Apidae). Different letters above the dark grey bars indicate a significant statistical difference between sampling periods in total species richness of all sampled genera (F (3, 42) = 20.01, p<0.001).
Figure 1 in Generalist ground-nesting bees dominate diversity survey in intensively managed agricultural land
Figure 1. Total number of bees sampled in this study at the four different sampling periods. Dark grey bars: individuals from the genus Andrena Fabricius (Andrenidae); light grey bars: individuals from the genera: Halictus Latreille, Lasioglossum Curtis (Halictidae), Osmia Panzer (Megachilidae), and Nomada Scopoli (Apidae); black bars: individuals from the genus Bombus Latreille (Apidae). Different letters above the dark grey bars indicate a significant statistical difference between sampling periods in activity-density of individuals from all sampled genera (F (3, 42) = 18.89, p<0.001).
Figure 2 in Nesting of the leaf-cutter bee Megachile (Ptilosarus) microsoma Cockerell (Hymenoptera: Megachilidae) in Trinidad, West Indies
Figure 2. Brood cell of Megachile microsoma. (a) Partially dissected nest 1, with arrows indicating the entrance (left) and rounded bottom (right); (b) Cocoon surrounded by dried, powdery feces; (c) Central part of the cocoon showing the joint point with the operculum; (d) Female pupa extracted from her cocoon. Scale bar: 1 mm.
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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.