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Fig. 1 in New record of predatory thrips, Aeolothrips melaleucus (Thysanoptera, Aeolothripidae) from Iran
Fig. 1: Aeolothrips melaleucus, female (A) antenna; (B) head; (C) leg; (D) forewing; (E) sternites VI-VII; male (F) tergites IV-VII; (G) tergite IX.
Figure 1 in Communities of predatory mites (Phytoseiidae and Stigmaeidae) in different environments of the Brazilian Pampa
Figure 1 Bipartite network of mite and host plant species. Bars on the left side represent host plant species and bars on the right side represent mite species; green bars represent Grassland; yellow bars represent Grazing Exclusions; red bars represent Riparian Forest; grey bars represent Stigmaeidae and black bars represent Phytoseiidae.
Figure 2 in Communities of predatory mites (Phytoseiidae and Stigmaeidae) in different environments of the Brazilian Pampa
Figure 2 Ordination (NMDS) of mites. ○: Grassland, ●: Grazing Exclusions: + Riparian Forest. The low stress value (=0.06) indicates good fit of the twodimensional representation of the distances between samplings.
Figure 3 in Implications of the mastoid anatomy of larger extant felids for the evolution and predatory behaviour of sabretoothed cats (Mammalia, Carnivora, Felidae)
Figure 3. Photograph and schematic representation of intermediate plane of neck muscles of male puma. 2, m. trapezius; 3, m. splenius; 4, m. sternomastoideus.
FIGURE 1 in Sustainable weed management and predatory mite (Acari: Phytoseiidae) dynamics in Tunisian citrus orchards
FIGURE 1: Experimental design of the experimental sites 1 (a) and 2 (b).
FIGURE 2 in Sustainable weed management and predatory mite (Acari: Phytoseiidae) dynamics in Tunisian citrus orchards
FIGURE 2: Schemas of ambulatory traps used in the experimental sites 1 and 2.
Figure 4 from: Vendl T, Šípek P (2016) Immature stages of giants: morphology and growth characteristics of Goliathus Lamarck, 1801 larvae indicate a predatory way of life (Coleoptera, Scarabaeidae, Cetoniinae). ZooKeys 619: 25-44. https://doi.org/10.3897/zookeys.619.8145
Figure 4 - Individual growth trajectories of the fully nourished larva (red line), partly nourished larvae (black and blue lines) and undernourished larva (green line). Evidently, the absence of proteins in larval diet had profound consequences on development. In the third instar, the starved larvae were able to resume growth immediately after the addition of protein to their diet. The inset image shows mean growth of all eleven partly nourished larvae 40 days before and after pellet supply (SPS), irrespective of actual time of pellet supply. Means ± standard errors are depicted.
Figure 3 from: Vendl T, Šípek P (2016) Immature stages of giants: morphology and growth characteristics of Goliathus Lamarck, 1801 larvae indicate a predatory way of life (Coleoptera, Scarabaeidae, Cetoniinae). ZooKeys 619: 25-44. https://doi.org/10.3897/zookeys.619.8145
Figure 3 - Immature stages of the genus Goliathus: A Goliathus orientalis, left mandible, dorsal, medial and ventral aspect B Goliathus orientalis, maxillar stridulatory teeth, lateral aspects C Goliathus orientalis, detail of mala and unci, ventro-lateral aspect D Goliathus orientalis, right mandible dorsal, medial and ventral aspect E Goliathus albosignatus, thoracic spiracle F–H prothoracic leg (F Goliathus albosignatus G Goliathus goliatus H Goliathus orientalis) I–J tibiotarsus and preatarsus (claw) (I Goliathus albosignatus J Goliathus goliatus K Goliathus orientalis) L–N raster (L Goliathus albosignatus M Goliathus goliatus N Goliathus orientalis). Scale bars: 1 mm (when not otherwise specified), 0.1 mm (A, B, C); 0.5 mm (D)
Figure 2 from: Vendl T, Šípek P (2016) Immature stages of giants: morphology and growth characteristics of Goliathus Lamarck, 1801 larvae indicate a predatory way of life (Coleoptera, Scarabaeidae, Cetoniinae). ZooKeys 619: 25-44. https://doi.org/10.3897/zookeys.619.8145
Figure 2 - . Immature stages of the genus Goliathus: A–C right antenna, dorsal and ventral aspect (A Goliathus albosignatus B Goliathus goliatus C Goliathus orientalis) D–F maxillo-labial complex, dorsal aspect (D Goliathus albosignatus E Goliathus goliatus F Goliathus orientalis) G–I Goliathus albosignatus, mandibles (G left mandible, dorsal and ventral aspects H right mandible, dorsal and ventral aspects I stridulatory area J–L Goliathus goliatus, mandibles (J left mandible, dorsal and ventral aspects K right mandible, dorsal and ventral aspects I stridulatory area. Scale bars: 1 mm.
Figure 1 from: Vendl T, Šípek P (2016) Immature stages of giants: morphology and growth characteristics of Goliathus Lamarck, 1801 larvae indicate a predatory way of life (Coleoptera, Scarabaeidae, Cetoniinae). ZooKeys 619: 25-44. https://doi.org/10.3897/zookeys.619.8145
Figure 1 - Immature stages of the genus Goliathus: A–C habitus (A Goliathus albosignatus B Goliathus goliatus C Goliathus orientalis) D, F, H epipharynx (D Goliathus albosignatus F Goliathus goliatus H Goliathus orientalis) E, G, I cranium (E Goliathus albosignatus G Goliathus goliatus I Goliathus orientalis). Scale bars: 1 mm.
FIGURE 7 in The Blue Legged Predatory Katydid-a new species of Listroscelis Serville, 1883 (Orthoptera: Tettigoniidae: Listroscelidinae: Listroscelidini) from the Atlantic Rainforest
FIGURE 7. Map of Listroscelis cyanotibiatus sp. nov. species geographical records.
Fig. 4 in The Predatory Mites (Phytoseiidae, Parasitiformes) In The Fauna Of Ukraine: A New Species And A New Subgenus Of The Genus Graminaseius
Fig. 4. Graminaseius altimontanus Kolodochka, sp. n., holotype ♀: 1 — dorsal shield; 2 — ventral body surface; 3 — metapodal plates; 4 — spermatheca; 5 — posterior part of peritremal shield; 6 — fragment of leg IV.
Acute toxicity effects of pesticides on predatory snout mites (family Bdellidae)
<p>Dataset and code for publication "Acute toxicity effects of pesticides on predatory snout mites (family Bdellidae)" by Knapp et al. </p> <p>Abstract: Predatory mites biologically control a range of arthropod crop pests, and are often central to agricultural IPM strategies globally. Conflict between chemical and biological pest control has prompted increasing interest in selective pesticides with fewer off-target impacts on beneficial invertebrates such as predatory mites. However, the diversity of predatory mite species included in standardised pesticide toxicity assessments does not match the diversity of naturally-occuring mites contributing to biocontrol, with most testing carried out on the family Phytoseiidae. Here, we aim to bridge this knowledge gap by investigating the impacts of 22 agricultural pesticide formulations on the understudied predatory snout mite <em>Odontoscirus lapidaria</em> (family Bdellidae) following internationally standardised methodologies. The results reveal important differences in Bdellidae and Phytoseiidae responses to the miticides diafenthiuron and abamectin, suggesting generalisations cannot be made across families. We also report species-specific discrepancies in chlorpyrifos tolerance even within two Bdellidae species, further highlighting the context-specificity of toxicity assessments. Despite this, we identified several active ingredients with minimal impact on <em>O. lapidaria </em>mortality, including <em>Bacillus thuringiensis, </em>Nuclearpolyhedrosis virus, flonicamid, afidopyropen and chlorantraniliprole, which are likely good candidates for IPM strategies utilising both chemical and biological control.</p> <p><br> Project funded by the Grains Research and Development Corporation (GRDC) under the Australian Grains Pest Innovation Program (AGPIP) </p>
Figure 3 in Comparative histology of caniniform teeth in some predatory ichthyophagous teleosts
Figure 3. – Thyrsites atun (Gemplylidae). A: 3-D reconstruction of the premaxilla (pmx) with a virtual axial section of a caniniform tooth showing vascularized dentine (de) covered with a thin enameloid layer and a cap of enameloid (en); B: Virtual cross section of a caniniform tooth showing dentine folds (white arrows) and many denteones at the dentine; C: Cross section (MNHN-Histos 2340 in natural transmitted light) showing the presence of many denteones (arrowheads) and many branches of odontoblastic canaliculi (oc), some of these branches form highly visible plumes (arrows); D: Detail of the cross section in B (MNHN-Histos 2340 in natural transmitted light) showing the presence of denteones (asterisks), many ramified odontoblastic canaliculi (oc) (white arrowheads) and anastomosed vascular canals (vc). Scale bars: A = 5 mm; B, C = 2 mm; D = 20 μm.
Figure 1 in Comparative histology of caniniform teeth in some predatory ichthyophagous teleosts
Figure 1. – Esox lucius (Esocidae). A: 3-D reconstruction of the premaxilla (pmx) with a virtual axial section of a caniniform tooth showing vascularized dentine (de) covered with a thin enameloid (en) layer; B: Virtual cross section of the tooth caniniform in A having many elementary units, denteone organized around the vascular canals; C: Detail of a longitudinal section (MNHN-Histos 2337 in natural transmitted light) showing many odontoblastic canaliculi (arrowhead) and vascular canals (vc). Scale bars: A = 5 mm; B = 2 mm; C = 50 μm.
Data from: The effects of temperature on the kinematics of rattlesnake predatory strikes in both captive and field environments
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Data from: Effects of predatory ants within and across ecosystems in bromeliad food webs
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Data from: Interception by two predatory fly species is explained by a proportional navigation feedback controller
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Data from: Predator size affects the intensity of mutual interference in a predatory mirid
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Data from: The rise of army ants and their relatives: diversification of specialized predatory doryline ants
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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.