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Figs. 13–14 in Description of the third instar larva of Saccharoscaptus laminifer (Dechambre) (Coleoptera: Melolonthidae: Dynastinae)
Figs. 13–14. Third instar of Saccharoscaptus laminifer. 13, lateral view of living larva. 14, raster, ventral view.
Figs. 1–12 in Description of the third instar larva of Saccharoscaptus laminifer (Dechambre) (Coleoptera: Melolonthidae: Dynastinae)
Figs. 1–12. Third instar of Saccharoscaptus laminifer. 1, head, frontal view. 2, epipharynx. Mandibles, ventral view: 3, right. 4, left. Last antennomere: 5, dorsal. 6, ventral. 7, detail, maxillary stridulatory teeth, lateral view. 8, labium, hypopharynx and right maxilla, dorsal view. 8a, detail, unci at apex of lacinia, mesial view. 9, prothoracic respiratory plate. 10, protarsal claw. 11, mesotarsal claw. 12, metatarsal claw.
Fig. 3 in Morphological and molecular characterization of adults and larvae of Crassicauda spp. (Nematoda: Spirurida) from Mediterranean fin whales Balaenoptera physalus (Linnaeus, 1758)
Fig. 3. Features of the larvae isolated from fin whales. a, b, anterior end of larvae included in intestinal nodules, showing cephalic papillae and excretory pore (a, lateral view, bar = 35 μm; b, dorsoventral view, bar = 50 μm). c, tail of the same larvae, showing the cloacal pore (bar = 60 μm). d, anterior end of larvae from the mesenteric arteries, showing bulging of the triangular-shaped head (lateral view, bar = 30 μm); e, tail of the same larvae with intestinal tube evident, ending in the cloacal opening (bar = 60 μm). f, anterior end of larvae found free within intestinal lumen, showing triangular shape of the anterior region, with cephalic papillae, buccal cavity and excretory pore (lateral view, bar = 25 μm); g, h, posterior end of the same larvae, showing either presence of a cloaca with multiple papillae (g, bar = 50 μm) or a genital pore (h, bar = 80 μm); i, anterior end of adult C. boopis, displaying triangular shaped lips and labial and cephalic papillae (sublateral view, bar = 50 μm).
Fig. 5 in Morphological and molecular characterization of adults and larvae of Crassicauda spp. (Nematoda: Spirurida) from Mediterranean fin whales Balaenoptera physalus (Linnaeus, 1758)
Fig. 5. Maximum likelihood tree (Log-likelihood: −1359.826) obtained from cox1 alignment. The tree was arbitrarily rooted on midpoint. Bootstrap support values (≥50%) are provided near the corresponding node. The scale bar represents 0.2 substitutions/site. Newly determined sequences are in bold.
Fig. 4 in Morphological and molecular characterization of adults and larvae of Crassicauda spp. (Nematoda: Spirurida) from Mediterranean fin whales Balaenoptera physalus (Linnaeus, 1758)
Fig. 4. Maximum likelihood tree (Log-likelihood: −1044.368) obtained from ITS2 alignment. The tree was rooted on midpoint. Bootstrap support values (≥50%) are provided near the corresponding node. The scale bar represents 0.02 substitutions/site. Newly determined sequences are in bold.
Fig. 1 in Severe coenurosis caused by larvae of Taenia serialis in an olive baboon (Papio anubis) in Benin
Fig. 1. Clinical presentation of the baboon with the clear presence of swellings in various areas of the body: ventral abdominal and thoracic parts, inner part of forearms, intermandibular region (arrow heads) and dorsal region also.
Figure 4 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 4. Percent reduction of adult emergence of A. grandis when Atlas squashes infested by larvae was subjected to hydrothermal treatment at different temperatures and times of exposure. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las calabazas Atlas infestadas por larvas se sometieron al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
Figure 2 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 2. Percent reduction of adult emergence of A. grandis when larvae were subjected to hydrothermal treatment in vitro at different temperatures and exposure times. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las larvas se sometieron al tratamiento hidrotermal in vitro a diferentes temperaturas y tiempos de exposición.
Figure 1 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 1. Mortality (%) of A. grandis eggs in vitro subjected to hydrothermal treatment at different temperatures and times of exposure. / Mortalidad (%) de huevos de A. grandis in vitro sometidos al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
Figure 3 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 3. Percent reduction of adult emergence of A. grandis when Atlas squashes infested by eggs was subjected to hydrothermal treatment at different temperatures and times of exposure. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las calabazasAtlas infestadas por huevos fueron se sometieron al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
Figura 2 in Comportamiento de nidificación y descripción de la larva del último instar de Ammophila laeviceps F. Smith (Hymenoptera: Sphecidae) en Chile
Figura 2. Ubicación del huevo de la avispa sobre una presa de la familia Noctuidae. La ubicación es variable, lateral o dorsalmente entre el tercer y quinto segmento abdominal sobre la primera oruga
Figura 3 in Comportamiento de nidificación y descripción de la larva del último instar de Ammophila laeviceps F. Smith (Hymenoptera: Sphecidae) en Chile
Figura 3. MorfologÍa de la larva postdefecante de Ammophila laeviceps. A. Vista general, notándose que es muy estrecha en los primeros segmentos torácicos. B. Vista frontal de la cabeza. C. MandÍbula izquerda con 3 dientes muy esclerosados. D. El espiráculo globoso con engrosamientos paralelos al peritrema.
Figura 1 in Comportamiento de nidificación y descripción de la larva del último instar de Ammophila laeviceps F. Smith (Hymenoptera: Sphecidae) en Chile
Figura 1. Corte de un nido de Ammophila laeviceps, que presenta forma de L y con las presas (larvas de Lepidoptera) en la celda, las que son variables en número (tres a cinco).
Figure 4 in Limnological variables associated with the presence of Anopheles Meigen, 1818 (Diptera: Culicidae) larvae in breeding sites in Amazonas, Brazil
Figure 4. Principal Component Analysis (PCA) between limnological variables and anopheline composition in larval habitats. pH; turbidity; nitrate; phosphate; TSS (total suspended solids); cond (conductivity); OD (dissolved oxygen); temp (temperature). / Análisis de Componentes Principales (ACP) entre variables limnológicas y composición de anofelinos en hábitats larvarios. pH; turbidez; nitrato; fosfato; SST (sólidos suspendidos totales); cond (conductividad); OD (oxÍgeno disuelto); temp (temperatura).
Figure 3 in Limnological variables associated with the presence of Anopheles Meigen, 1818 (Diptera: Culicidae) larvae in breeding sites in Amazonas, Brazil
Figure 3. Similarity dendrogram of the larval habitats (A), and Principal Component Analysis – PCA (B) involving the limnological variables from artificial larval habitats of anophelines. Abbreviations: tss (total suspended solids); turb (turbidity); cond (conductivity); do (dissolved oxygen); temp (temperature); nitra (nitrate); phos (phosphate); larval habitats: B1, B2, B3, T4, T5, T6, T7, P9, P9, P10. / Dendrograma de similitud de los hábitats larvarios (A), y Análisis de Componentes Principales - ACP (B) que incluye las variables limnológicas de los hábitats larvarios artificiales de anofelinos. Abreviaturas: tss (sólidos suspendidos totales); turb (turbidez); cond (conductividad); do (oxÍgeno disuelto); temp (temperatura); nitra (nitrato); phos (fosfato); hábitats larvarios: B1, B2, B3, T4, T5, T6, T7, P9, P9, P10.
Figure 2 in Limnological variables associated with the presence of Anopheles Meigen, 1818 (Diptera: Culicidae) larvae in breeding sites in Amazonas, Brazil
Figure 2. Observed relationship between larval habitat characteristics and anopheline composition in breeding sites in the metropolitan area of Manaus, Amazonas. / Relación observada entre las caracterÍsticas del hábitat larval y la composición de anofelinos en sitios de reproducción en el área metropolitana de Manaus, Amazonas.
Figure 1 in Limnological variables associated with the presence of Anopheles Meigen, 1818 (Diptera: Culicidae) larvae in breeding sites in Amazonas, Brazil
Figure 1. Distribution of breeding sites in the peri-urban area of the metropolitan region of Manaus, Amazonas, Brazil. / Distribución de los criaderos en el área periurbana de la región metropolitana de Manaus, Amazonas, Brasil.
Figures 4a-4c 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 4a-4c. Oscillograms (above) and spectrograms (down) of sounds emitted by Phileurus valgus larvae. a) Bioacoustic stridulation (isolated) patterns. b) Bioacoustic sound patterns of compound sound (stridulatory + forced air). c) Bioacoustic pattern of compound sound pulse and some forced air sound pulses (6 pulses after the compound sound). / Oscilogramas (arriba) y espectrogramas (abajo) de los sonidos emitidos por las larvas de Phileurus valgus. a) Patrones bioacústicos de estridulación (aislada). b) Patrones bioacústicos de sonido compuesto (estridulación + aire forzado). c) Patrón bioacústico de pulso de sonido compuesto y algunos pulsos de sonido de aire forzado (6 pulsos después del sonido compuesto).
Figures 3a-3b 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 3a-3b. Comparison of oscillogram and spectrogram of forced air sound pulse. a. Phileurus valgus. b. Phileurus didymus. / Comparación del oscilograma y el espectrograma del pulso sonoro de aire forzado. a. Phileurus valgus. b. Phileurus didymus.
Figures 1a-1d 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 1a-1d. Diagrams of the experiments. a-c) Direct interaction (larva-larva) and response experiment. d) Direct manipulation experiment. / Diagramas de los experimentos. a-c) Experimento de interacción directa (larva-larva) y respuesta. d) Experimento de manipulación directa.
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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.