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Figure 4 in A new Neotropical predaceous midge in the genus Parabezzia Malloch from Guerrero, Mexico, and a second Mexican record of P. alexanderi Wirth (Diptera: Ceratopogonidae: Ceratopogoninae: Ceratopogonini)
Figure 4. Locality records of Parabezzia alexanderi Wirth (black circles) in state of Veracruz and P. carlae, new species, (red triangle) in state of Guerrero.
Figure 7 in A new species of gall midge (Diptera, Cecidomyiidae) on Ouratea cuspidata (A.St.-Hil.) Engl. (Ochnaceae), a plant endemic to Brazil
Figure 7. Cerciplanus maricaensis sp. n.: a) Galled leaf of Ouratea cuspidata (A.St.- Hil.) Engl. (Ochnaceae), general aspect; b) Galls on Ouratea cuspidata (A.St.-Hil.) Engl. (Ochnaceae), longitudinal section.
Figure 1 in A new species of gall midge (Diptera, Cecidomyiidae) on Ouratea cuspidata (A.St.-Hil.) Engl. (Ochnaceae), a plant endemic to Brazil
Figure 1. Cerciplanus maricaensis sp. n.: a) Female head, frontal view; b) Male scape, pedicel and 1st–4th flagellomeres; c) Male 5th flagellomere; d) Female 5th flagellomere; d) Male 12th flagellomere.
Figure 5 in A new species of gall midge (Diptera, Cecidomyiidae) on Ouratea cuspidata (A.St.-Hil.) Engl. (Ochnaceae), a plant endemic to Brazil
Figure 5. Cerciplanus maricaensis sp. n., pupal exuviae: a) Head and prothoracic spiracle, ventral view; b) Apical plate, dorsal view (apical seta broken); c) Last abdominal segments, dorsal view.
Fig. 6 in Morpho-histological characterization of immature of the bioindicator midge Chironomus sancticaroli Strixino and Strixino (Diptera, Chironomidae)
Fig. 6. Micrographs of nervous system structures of immature of Chironomus sancticaroli. (A) Longitudinal section showing the brain cortical and neuropile; (B) longitudinal section of a ganglion in the nerve cord and a connective sheaf formed by axons; (C) longitudinal section showing the brain, thoracic ganglia and the first abdominal ventral nerve cord (numbers); (D) cross-section of the brain; (E) longitudinal section of the cephalic region of the larva, in detail is the frontal ganglion, anterior to the brain. 1st: first thoracic gangliom, 2nd: second thoracic gangliom; 3rd: third thoracic gangliom, I–III: thoracic segments; 4th: first abdominal gangliom; br: brain; cl: cortical layer, cn: connective; dv: diverticulum; fg: frontal gangliom; g: gangliom, ne: neuropile; nl: neural lamella, oe: esophagus; sg: salivary gland, tr: trophoblastes. Stain: Harris hematoxylin and eosin. Scale bar = 20 µm.
Fig. 3 in Morpho-histological characterization of immature of the bioindicator midge Chironomus sancticaroli Strixino and Strixino (Diptera, Chironomidae)
Fig. 3. Micrographs of the midgut of immature Chironomus sancticaroli. (A) Cross-section of the midgut region I; (B) longitudinal section of the midgut region I; (C) cells of the epithelium of the midgut region I, showing the little brush border area (arrow) and apical and basal eosinophilia of the cell (arrowhead); (D) cross-section of the midgut region II; (E) Cross-section of the region III of the midgut; (F) Brush border (arrow) and peritrophic matrix (arrowhead) in region II of the midgut and (G) Brush border (arrow) and cells in the process of secretion (arrowhead) in region III of midgut. cae: gastric caeca; ep: gut epithelia; fd: food; lu: lumen. Stain: Harris hematoxylin and eosin. Scale bar = 20 µm.
Fig. 4 in Morpho-histological characterization of immature of the bioindicator midge Chironomus sancticaroli Strixino and Strixino (Diptera, Chironomidae)
Fig. 4. Micrographs of hindgut immature of Chironomus sancticaroli. (A) cross-section between the transitional epithelium of the midgut and hindgut; (B) longitudinal section of the transition region between the mid and hindgut, showing the proctodeal valve (arrow); (C) in detail, epithelium of the proctodeal valve; (D) cross-section of ileum showing extensive muscle layer and the longitudinal folds formed by the epithelium (arrow); (E) longitudinal section of the colon and rectum; (F) cross-section of the epithelium of the colon and rectum demonstrating basal eosinophilia of the cell (arrowhead). p: epithelia; fd: food; lu: lumen; ml: muscle layer; mlp: Malpighian tubule, pm: perithrofic membrane; vep: valve epithelia. Stain: Harris hematoxylin and eosin. Scale bar = 20 µm.
Fig. 7 in Morpho-histological characterization of immature of the bioindicator midge Chironomus sancticaroli Strixino and Strixino (Diptera, Chironomidae)
Fig. 7. Micrographs of glands from the retrocerebral complex of the immature Chironomus sancticaroli. (A) Longitudinal section of the corpora allata, showing the glandular epithelium, demonstrating the cell nucleus (arrowhead); (B) longitudinal section of the prothoracic gland; (C) longitudinal section showing the region of the complex, demonstrating the anterior postcerebral gland and the small group of cells that make up the corpora cardiac; (D) detail of the anterior postcerebral gland, note the granules in their cytoplasm (arrowhead); (E) detail of the small group of cells that make up the corpora cardiaca (arrows). cc: corpora cardiaca; ga: anterior postcerebral gland; ptg: prothoracic gland, tr: trachea. Stain: Harris hematoxylin and eosin. Scale bar = 20 µm.
Figs. 11–13 in Lopesia leandrae (Diptera, Cecidomyiidae), a new species of gall midge associated with Leandra ionopogon (Mart.) Cogn. (Melastomataceae), a native plant to Brazil
Figs. 11–13. Lopesia leandrae, sp. n., female. 11. Fifth flagellomere. 12. 6th–8th abdominal segments (lateral view). 13. Cerci (ventral view). Scale bars in mm.
Figs. 3–4 in Lopesia leandrae (Diptera, Cecidomyiidae), a new species of gall midge associated with Leandra ionopogon (Mart.) Cogn. (Melastomataceae), a native plant to Brazil
Figs. 3–4. Lopesia leandrae, sp. n., pupa. 4. Head (ventral view).5. Seventh abdominal segment (dorsal view). Scale bars in mm.
Figs. 1–2 in Lopesia leandrae (Diptera, Cecidomyiidae), a new species of gall midge associated with Leandra ionopogon (Mart.) Cogn. (Melastomataceae), a native plant to Brazil
Figs. 1–2. Lopesia leandrae, sp. n., larva 1. Prothoracic spatula and associated papillae (ventral view). 2. 8th–9th abdominal segments (ventral view). Scale bars in mm.
Figs. 11–13 in Lopesia indaiensis (Diptera, Cecidomyiidae), a new species of gall midge feeding on Andira fraxinifolia Benth (Fabaceae), an endemic plant in Brazil
Figs. 11–13. Lopesia indaiensis, sp. n. 11. Female flagellomere 5. 12. Female abdominal segments 7–8 (lateral view). 13. Ovipositor (ventral view). Scale bars in mm.
Figs. 6–10 in Lopesia indaiensis (Diptera, Cecidomyiidae), a new species of gall midge feeding on Andira fraxinifolia Benth (Fabaceae), an endemic plant in Brazil
Figs. 6–10. Lopesia indaiensis, sp. n. 6. Male head (frontal view). 7. Male flagellomere 5. 8. Male hindleg, tarsal claw and empodium. 9. Male abdominal segments 7–8 (lateral view). 10. Male terminalia (dorsal view). Scale bars in mm.
Figs. 4–5 in Lopesia indaiensis (Diptera, Cecidomyiidae), a new species of gall midge feeding on Andira fraxinifolia Benth (Fabaceae), an endemic plant in Brazil
Figs. 4–5. Lopesia indaiensis, sp. n. 4. Pupa, face (ventral view). 5. Pupa, anterior part (dorsal view). Scale bars in mm.
Figs. 2–3 in Lopesia indaiensis (Diptera, Cecidomyiidae), a new species of gall midge feeding on Andira fraxinifolia Benth (Fabaceae), an endemic plant in Brazil
Figs. 2–3. Lopesia indaiensis, sp. n. 2. Larva, sternal spatula with adjacent papillae (ventral view). 3. Larva, terminal segments (dorsal view).
Fig. 2 in Effect of food deprivation on hydrilla tip mining midge survival and subsequent development
Fig. 2. Effect of starvation post-hatch on the eclosion of Cricotopus lebetis adults from hydrilla (Hydrilla verticillata) stems in test tubes. Midge eclosion was defined as observing an adult C. lebetis in the test tube. Bars represent mean percentage midge eclosion ± standard error of the mean. Statistical differences between the midge eclosion observed afer different starvation periods post-hatch are indicated by different letters.
Fig. 1 in Effect of food deprivation on hydrilla tip mining midge survival and subsequent development
Fig. 1. Effect of food deprivation on larval survival of the hydrilla tip mining midge, Cricotopus lebetis. Number of larvae alive recorded for each day posthatch in 96-well plates. Mean percentage survival ± standard error of the mean. The number of larvae alive decreased significantly each day (P <0.05).
FIGURE 6 in Biting midges (Diptera: Ceratopogonidae) in Fushun amber reveal further biotic links between Asia and Europe during the Eocene
FIGURE 6. Palaeogeographic locations of early Eocene insect faunas in (approximately 50 Ma) Baltic amber (B) from Europe and Fushun amber (F) from China (modified after Blakey, 2015).
FIGURE 1 in Biting midges (Diptera: Ceratopogonidae) in Fushun amber reveal further biotic links between Asia and Europe during the Eocene
FIGURE 1. Photograph of Mantohelea sinica n. sp. from lower Eocene Fushun amber. 1. Mantohelea sinica n. sp., Holotype female NIGP156996. 2. Mantohelea sinica n. sp., head.
FIGURE 2. Mantohelea sinica n in Biting midges (Diptera: Ceratopogonidae) in Fushun amber reveal further biotic links between Asia and Europe during the Eocene
FIGURE 2. Mantohelea sinica n. sp., Holotype female NIGP156996. 1. Antenna. 2. Wing. 3. Palpus. 4. Fore tibia. 5. Fore femur. 6. Tarsus of foreleg. 7. Tarsus of mid leg. 8. Tarsus of hind leg.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.