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6,186 results for “larvae”
Fig. 4 in Description Of The Puparium And Redescription Of The Third-Instar Larva Of Brachyopa Panzeri (Diptera, Syrphidae) With New Data On Its Biology
Fig. 4. Morphology of Brachyopa panzeri puparium. A — opened pupa in dorsal view; B — upal spiracle, lateral view; C — pupal spiracle, apical view; D — spiracular openings of pupal spiracles (SO).
Fig. 3 in Description Of The Puparium And Redescription Of The Third-Instar Larva Of Brachyopa Panzeri (Diptera, Syrphidae) With New Data On Its Biology
Fig. 3. Scanning electron microphotograph of larval spiracular plate on the apex of breathing tube of Brachyopa panzeri (SEM). Labels: CS — central scars; IS — interspiracular branched setae; SP — spiracular opening.
Fig. 1 in Description Of The Puparium And Redescription Of The Third-Instar Larva Of Brachyopa Panzeri (Diptera, Syrphidae) With New Data On Its Biology
Fig. 1. The dorsal (A) and ventral (B) views of third-instar larva of Brachyopa panzeri. Labels: P — prothorax, Ms — mesothorax, Mt — metathorax, A1, A7, A8 segments of the body (segments A2–6 similar to A1); cd — central dark area, V7 — ventral sensillum of second abdominal segment; prp — posterior breathing tube; lp — lappets, am — atenno-maxillary organ; vl — ventral lip; w — larval discs.
Fig. 4 in The Viability of Haemonchus Contortus (Nematoda, Strongylida) and Strongyloides Papillosus (Nematoda, Rhabditida) Larvae Exposed to Various Flavourings and Source Materials Used in Food Production
Fig. 4. The effect of alcohol flavourings and their compounds on the viability of larvae of nematodes of Ruminantia: а — β-Ionone, b — Citronellol, с — Acetoin; for explanations see fig. 1.
Fig. 2 in The Viability of Haemonchus Contortus (Nematoda, Strongylida) and Strongyloides Papillosus (Nematoda, Rhabditida) Larvae Exposed to Various Flavourings and Source Materials Used in Food Production
Fig. 2. The effect of acetate flavourings upon the viability of larvae of nematodes of Ruminantia: а — Ethyl acetate, b — Benzyl acetate; for explanations see fig. 1.
Fig. 3 in The Viability of Haemonchus Contortus (Nematoda, Strongylida) and Strongyloides Papillosus (Nematoda, Rhabditida) Larvae Exposed to Various Flavourings and Source Materials Used in Food Production
Fig. 3. The effect of alcohol flavourings and their compounds on the viability of larvae of nematodes of Ruminantia: а — α-Terpineol, b — Benzyl alcohol, с — Citral, d — L-Linalool; for explanations see fig. 1.
Fig. 1 in The Viability of Haemonchus Contortus (Nematoda, Strongylida) and Strongyloides Papillosus (Nematoda, Rhabditida) Larvae Exposed to Various Flavourings and Source Materials Used in Food Production
Fig. 1. The effect of aldehyde flavourings on the viability of larvae of nematodes of Ruminantia: а — p-Anisaldehyde; b — Benzaldehyde; с — γ-Undecalactone; d — Cinnamaldehyde; the ordinate axis indicates the percentage of living nematode larvae in 24-hour experiment; the abscissa axis indicates the concentration of the active substance (%); (К) control, where the concentration of the active substance is 0 %; (L3) infective larvae of S. papillosusor H. contortus; (L1, L2) non-infective larvae of S. papillosus; small square in the centre corresponds to the median, lower and upper edge of the large rectangle corresponds to first and third quartiles, respectively, the vertical segments, directed upward and downward from the rectangles, correspond to minimum and maximum values (n = 8).
Fig. 5 in The Viability of Haemonchus Contortus (Nematoda, Strongylida) and Strongyloides Papillosus (Nematoda, Rhabditida) Larvae Exposed to Various Flavourings and Source Materials Used in Food Production
Fig. 5. The effect of D-limonene on the viability of larvae of nematodes of Ruminantia: for explanations see fig. 1.
Fig. 5 in Infection Of Predatory Fish With Larvae Of Eustrongylides Excisus (Nematoda, Dioctophymatidae) In The Delta Of The Dnipro River And The Dnipro-Buh Estuary In Southern Ukraine
Fig. 5. Anterior end of the body of E. еxcisus larva from pike. Arrows show two circles of papillae. x400 magniFIcatoin.
Fig. 12–15 in Description Of The Larva Of Agrilus Antiquus Croaticus (Coleoptera, Buprestidae)
Fig. 12–15. Agrilus antiquus croaticus mature larva: 12 — mesothoracic spiracle; 13 — terminal processes of anal segment, ventral view; 14 — terminal processes, ventro-lateral view (arrow shows emargination of basal part); 15 — abdominal spiracle (segment 2). Scale bar 0.2 mm.
Fig. 1–7 in Description Of The Larva Of Agrilus Antiquus Croaticus (Coleoptera, Buprestidae)
Fig. 1–7. Agrilus antiquus croaticus mature larva: 1 — habitus, dorsal view; 2 — epistome, dorsal view; 3 — labrum, dorsal view; 4 — right antenna; 5 — right mandible; 6 — labio-maxillary complex, external surface; 7 — prementum, internal surface. Scale bars: 2, 5, 7 — 0.2 mm; 3, 4 — 0.1 mm.
Fig. 8–11 in Description Of The Larva Of Agrilus Antiquus Croaticus (Coleoptera, Buprestidae)
Fig. 8–11. Agrilus antiquus croaticus mature larva: 8 — pronotal plate of thorax; 9 — microdenticles of pronotal plate; 10 — prosternal plate of thorax; 11 — microdenticles and microspinulae of prosternal plate.
Fig. 4 in Epipharyngeal Morphology In Hyperini Larvae (Coleoptera, Curculionidae, Hyperinae)
Fig. 4. Epipharynx of Hypera species: a — H. miles; b — H. transsylvanica, general view; c — the same, apical excision; d — Limobius borealis. Scale bars 10 μm.
Fig. 2 in Epipharyngeal Morphology In Hyperini Larvae (Coleoptera, Curculionidae, Hyperinae)
Fig. 2. Epipharynx of Donus species: a — D. bucovinensis, general view; b — the same, detailed; c — D. geminus, general view; d — the same, detailed. Scale bars: a — 100 μm, b–d — 10 μm.
Fig. 1 in Epipharyngeal Morphology In Hyperini Larvae (Coleoptera, Curculionidae, Hyperinae)
Fig. 1. Epipharynx of Coniatus splendidulus: a — general view; b — central portion; c — median impression; d — apical excision. Other abbreviations on this and other figures described in the text.
Fig. 3 in Epipharyngeal Morphology In Hyperini Larvae (Coleoptera, Curculionidae, Hyperinae)
Fig. 3. Epipharynx of Hypera rumicis: a — II instar larva, general view; b — median impression; c — apical excision; d — the same of mature larva. Scale bars: a, b, d — 10 μm, c — 1 μm.
CLSM data of 1st instar larva of Dilar montanus
<p>The 1st instar larva of<em> Dilar montanus </em>Yang was mounted between two cover slips with double-sided tape spacers in a drop of methyl-salicylate and scanned from both sides with an argon laser emitting light of 488 – 579 nm wave length using a Zeiss LSM 880. The obtained datasets were stitched together using the “align manually with landmarks” tool of the TrackEM plugin for ImageJ and exported as a .tiff images stack. The voxel size for the dataset is 1.489 µm x 1.489 µm x 8.277 µm.</p>
Figs 50–53 in Morphology of the larvae and biology of the adults of Psilorrhynchus bifasciatus do not confirm previous hypotheses about systematics and feeding habits (Coleoptera: Cantharidae)
Figs 50–53. Habitus of fixed and live Psilorrhynchus specimens. 50–51 – museum specimens of P. bifasciatus (Blanchard) (50) and P. abdominalis (Perty) (51) as presented in the genus revision (Bංൿൿං 2017a) showing a pale-yellow elytral background colouration. 52–53 – live specimens of P. abdominalis from Rio de Janeiro state, showing an intense reddish elytral colouration. Figs 50 and 51 adapted from Bංൿൿං (2017a); 52 by Diogo Luiz (available at inaturalist.org/observations/31961589); 53 by Eric Freitas de Abreu (available at inaturalist.org/observations/56266908).
Figs 39–49 in Morphology of the larvae and biology of the adults of Psilorrhynchus bifasciatus do not confirm previous hypotheses about systematics and feeding habits (Coleoptera: Cantharidae)
Figs 39–49. Morphology of Psilorrhynchus bifasciatus (Blanchard, 1844), second and first instar larvae. 39 – head, second instar; 40 – nasale, second instar; 41–49 – first instar; 41 – head; 42 – nasale; 43–44 – antenna (ventral, dorsal views); 45 – maxillo-labial complex; 46 – foreleg; 47–48 – pretarsus (lateral, ventral views); 49 – apex of abdomen (dorsal view). Scale bars = 0.05 mm, except 39, 41, 46, 49 = 0.1 mm.
Figs 36–38 in Morphology of the larvae and biology of the adults of Psilorrhynchus bifasciatus do not confirm previous hypotheses about systematics and feeding habits (Coleoptera: Cantharidae)
Figs 36–38. Morphology of Psilorrhynchus bifasciatus (Blanchard, 1844), second instar larva (dorsal, ventral, lateral views). Scale bar = 0.5 mm.
ScienceDex guides
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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.