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6,186 results for “larvae”
Figures 2a-2c in Bioacoustic analysis of a compound sound with stridulation and forced air produced by the larva of Phileurus valgus (Olivier, 1789) (Coleoptera: Scarabaeidae: Dynastinae: Phileurini)
Figures 2a-2c. Comparison of numbers of pulses in stridulation, oscillogram (above). Spectrogram (down). a) 4 pulses. b) 10 pulses. c) 12 pulses. / Comparación del número de pulsos en la estridulación, oscilograma (arriba). Espectrograma (abajo). a) 4 pulsos. b) 10 pulsos. c) 12 pulsos.
Figuras 7-8 in Observaciones biológicas de larvas y pupas de Rekoa marius (Lucas) (Lepidoptera: Lycaenidae) en Panamá
Figuras 7-8. Tenuipetiolus sp. (Hymenoptera: Eurytomidae). 7. Habitus de la hembra. 8. Habitus de la hembra y el macho.
Figura 11 in Observaciones biológicas de larvas y pupas de Rekoa marius (Lucas) (Lepidoptera: Lycaenidae) en Panamá
Figura 11. Número de visitas de C. lindigi a las larvas de Rekoa marius de 8:00-10:00 am (valor P= 0,0764).
Figures 4a, b in Bioacoustic study of a sound produced with forced air by larvae of Phileurus didymus (Linnaeus) (Coleoptera: Scarabaeidae: Dynastinae: Phileurini)
Figures 4a, b. Comparison of oscillograms. (a) Stridulatory sound (stridulatory teeth) of a Dynastinae beetle larvae. (b) Forced air sounds of P. didymus.
Figuras 1-6. Rekoa marius Lucas. 1 in Observaciones biológicas de larvas y pupas de Rekoa marius (Lucas) (Lepidoptera: Lycaenidae) en Panamá
Figuras 1-6. Rekoa marius Lucas. 1. Larva del tercer estadio de sobre la inflorecencia de A. wilkesiana. 2. Larva del tercer estadio de sobre la inflorecencia de A. wilkesiana, recibiendo atención por la hormiga C. lindigi. 3. Pupa en las primeras horas del cambio de estadÍo, sobre la base de la hoja de A. wilkesiana. 4. Pupa sobre la base de la hoja y cerca de la inflorescencia de A. wilkesiana, trasladadas a la jaula de malla. 5. Pupa parasitada antes de que salgan los parasitoides. 6. Orificio en la pupa después que han
Figs 2-7 in Morphology of the mature larva and pupa of Rhinusa bipustulata (Rossi, 1792) (Coleoptera: Curculionidae) with some remarks on its biology
Figs 2-7. Rhinusa bipustulata (Rossi), mature larva: 2 - habitus, 3 - lateral view of thoracic segments, 4 – lateral view of second abdominal segment, 5 – lateral view of abdominal segments VIII-X (prns – pronotal setae, dpls – dorsopleural s., vpls – ventropleural s., prs – prodorsal s., pds – postdorsal s., dls – dorsolateral s., as – alar s., ss – spiracular s., lsts – laterosternal s., msts – mesosternal s., sts – sternal s., ps – pleural s., ds – dorsal s.), 6 – spiracle of thorax, 7 – spiracle of second abdominal segment
Figure 4 in Study of histoarchitectural changes in Anopheles stephensi larvae following exposure to Eucalyptus globulus and Aloe vera oils
Figure 4. Longitudinal section of thorax highlighting the gastric ceca of 4th instar Anopheles stephensi larvae (40×): (a) Control larva having epithelial cells (EC), vesicles (V), nucleus (N), peritrophic membrane (PM), basement-membrane (BM), muscle fibers (MF), microvilli (MV); (b) Eucalyptus globulus oil treated larva showing diversifications in various regions; (c) Aloe vera oil treated larva showing rifts in peritrophic membrane (PM).
Figure 3 in Study of histoarchitectural changes in Anopheles stephensi larvae following exposure to Eucalyptus globulus and Aloe vera oils
Figure 3. Longitudinal sections of head highlighting the region of imaginal bud of antennae (IBA) of 4th instar Anopheles stephensi larvae (40×): (a) Control larva showing intact IBA; (b) Eucalyptus globulus oil treated larva showing cracks and disorganization in IBA; (c) Aloe vera oil treated larva showing stretching and elongation in IBA.
Figures 7–16. Culicoides peregrinus Kieffer, larva. 7 in Description of immature stages of Culicoides peregrinus (Diptera: Ceratopogonidae), a potent vector of bluetongue virus
Figures 7–16. Culicoides peregrinus Kieffer, larva. 7: Second instar, 8: head capsule of third instar, 9: body pigmentation of fourth instar, 10: fourth instar, 11: head capsule with cephalic setae and sensory pore (ventrolateral view), 12: head capsule with cephalic setae and sensory pore (dorsolateral view), 13: mouthparts, 14: mouthparts (close view), 15: epipharynx and hypopharynx, 16: setae of caudal segment. AN, antenna; GL, genital lobe; HY, hypostoma; LB, labrum; LC1, lacinial sclerite 1; LC2, lacinial sclerite 2; MD, mandible; MP, maxillary palp; MS, messors; MX, maxilla; PL, palatum; SC, scopae; ss, sensilla styloconica; st, sensilla trichoidea. Caudal segment chaetotaxy: d, dorsal setae; i, inner setae; I 1, first lateral setae; I 2, second lateral setae; o, outer setae. Head capsule chaetotaxy: o, parahypostomal setae; p, posterior perifrontal; q, post frontal; s, anterior perifrontal setae; t, prefrontal setae; u, mesolateral setae; v, posterolateral setae; w, anterolateral setae; y, ventral setae. Scale bar 50 µm except when otherwise stated.
Figure 5 in Study of histoarchitectural changes in Anopheles stephensi larvae following exposure to Eucalyptus globulus and Aloe vera oils
Figure 5. Longitudinal sections of abdomen of 4th instar Anopheles stephensi larvae (10×): (a) Control larva showing lumen (L) and muscle fibers (MF); (b) Eucalyptus globulus oil treated larva showing disintegration; (c) Aloe vera oil treated larva showing perturbation and lesions in the alimentary canal.
Figure 7 in Study of histoarchitectural changes in Anopheles stephensi larvae following exposure to Eucalyptus globulus and Aloe vera oils
Figure 7. Longitudinal sections of midgut region highlighting fat bodies of 4th instar Anopheles stephensi larvae (40×): (a) Control larva showing deposition of fat bodies (FB); (b) Eucalyptus globulus oil treated larva showing disappearance of fat bodies (FB) in various areas; (c) Aloe vera oil treated larva showing very little disruption of fat bodies (FB).
Figure 2 in Effect of using forced and free oviposition methods to obtain eggs and larvae of Mansonia (Diptera: Culicidae) females from Rondonia, Brazil (western Amazon)
Figure 2 Number of wild females of different Mansonia species collected in Vila Teotônio, a rural region of Porto Velho, Rondonia, Brazil that laid eggs using free and forced oviposition methods in the laboratory. *Significant difference (P <0.05) in the expected frequency of females that oviposited.
Figure 3 in Effect of using forced and free oviposition methods to obtain eggs and larvae of Mansonia (Diptera: Culicidae) females from Rondonia, Brazil (western Amazon)
Figure 3 Number of eggs (A) and larvae (B) obtained in the laboratory from wild females of diferente Mansonia species collected in Vila Teotônio, a rural region of Porto Velho, Rondonia, Brazil. Different letters indicate significant differences (P <0.05) between species. Red lines indicate the mean.
Fig. 1 in Description of the larva of Lopesia spinosa Maia (Diptera, Cecidomyiidae) and new occurrences of the species
Fig. 1. Larva of Lopesia spinosa. A. Cephalic and thoracic region, ventral view. B. Detail of the semicircular spatula and lateral papillae. C. Terminal segment, dorsal view.
Fig. 3. 2 in Spores of Paenibacillus larvae, Ascosphaera apis, Nosema ceranae and Nosema apis in bee products supervised by the Brazilian Federal Inspection Service
Fig. 3. 2% agarose gel stained with SYBR Safe of the multiplex PCR products from royal jelly samples (1–10) obtained from markets of the state of São Paulo, Brazil. M, ® molecular marker 100 pb (Invitrogen); C+, positive control for N. ceranae (218 pb), N. apis (321 pb), A. apis (485 pb) and P. larvae (700 pb); C−, negative control.
Fig. 4. 2 in Spores of Paenibacillus larvae, Ascosphaera apis, Nosema ceranae and Nosema apis in bee products supervised by the Brazilian Federal Inspection Service
Fig. 4. 2% agarose gel stained with SYBR Safe of the multiplex PCR products from honey samples (1–17) obtained from markets of the state of São Paulo, Brazil. M, ® molecular marker 100 pb (Invitrogen); C+, positive control for N. ceranae (218 pb), N. apis (321 pb), A. apis (485 pb) and P. larvae (700 pb); C−, negative control.
Fig. 5. 2 in Spores of Paenibacillus larvae, Ascosphaera apis, Nosema ceranae and Nosema apis in bee products supervised by the Brazilian Federal Inspection Service
Fig. 5. 2% agarose gel stained with SYBR Safe of the multiplex PCR products from pollen samples (1–10) obtained from markets of the state of São Paulo, Brazil. M, ® molecular marker 100 pb (Invitrogen); C+, positive control for N. ceranae (218 pb), N. apis (321 pb), A. apis (485 pb) and P. larvae (700 pb); C−, negative control.
Figure 6 Hybosa acutangula Boheman, 1855 in Description of larva, pupa, and genitalia of Hybosa acutangula Spaeth, 1913 (Coleoptera: Chrysomelidae: Cassidinae) from the Brazilian Cerrado
Figure 6 Hybosa acutangula Boheman, 1855. Genitalia: a, female, tignum, dorsal view; b, female, spermatheca, lateral view; c, male, aedeagus, ventral view; d, male, aedeagus, lateral view; e, male, aedeagus, dorsal view. DCT, ductus; MDL, medianl lobe; TGM, tegmen; VSC, vasculum. Scale bar = 500Μm.
Figure 2 Hybosa acutangula Boheman, 1855 in Description of larva, pupa, and genitalia of Hybosa acutangula Spaeth, 1913 (Coleoptera: Chrysomelidae: Cassidinae) from the Brazilian Cerrado
Figure 2 Hybosa acutangula Boheman, 1855. Fifth instar larvae:a, dorsal view;b, ventral view.AFK,anal fork; ASP,abdominal spiracles; ATB, anal tube; SCL, scolus; TSP,thoracic spiracle. Scale bar = 1 mm.
Figure 7 a in Description of larva, pupa, and genitalia of Hybosa acutangula Spaeth, 1913 (Coleoptera: Chrysomelidae: Cassidinae) from the Brazilian Cerrado
Figure 7 a. Husk of a parasitized pupae of Hybosa acutangula Boheman, 1855, opening made by emergence of adult wasp highlighted; Chalcididae which emerged from H. acutangula pupae, b. Brachymeria sp.; c. Conura sp.
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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.