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Fig. 2 in Helminths Of Wild Predatory Mammals (Mammalia, Carnivora) Of Ukraine. Trematodes
Fig. 2. Structure of the trematode fauna of the racoon dog in Ukraine (original data): ALT — A. alata; MSK — M. skworzowi; EPE — E. perfoliatus; IME — I. melis; ADO — A. donicum.
Fig. 1 in Helminths Of Wild Predatory Mammals (Mammalia, Carnivora) Of Ukraine. Trematodes
Fig. 1. Structure of the trematode fauna of the red fox in Ukraine (original data): ALT — A. alata; EPE — E. perfoliatus; ADO — A. donicum; SDE — S. denticulata; MAP — M. appendiculatus; PCO — Ph. cordatum; MSK — M. skworzowi; IME — I. melis.
Fig. 2 in Species Complexes Of Predatory Phytoseiid Mites (Parasitiformes, Phytoseiidae) In Green Urban Plantations Of Uman' (Ukraine)
Fig. 2. Phytoseiid mites occurrence on plants in green urban plantations of Uman': 1 — E. finlandicus, 2 — T. aceri, 3 — T. tiliarum, 4 — D. echinus, 5 — K. aberrans, 6 — P. incognitus, 7 — A. andersoni, 8 — P. soleiger, 9 — T. laurae, 10 — A. herbarius, 11 — G. longipilus, 12 — A. rademacheri.
Figure 1 in Functional response of the predatory mite, Typhlodromus bagdasarjani (Acari: Phytoseiidae) to protonymphs of Eotetranychus frosti (Acari: Tetranychidae) on four apple cultivars
Figure 1 The functional responses curves of adult females of Typhlodromus bagdasarjani to different densities ofEotetranychus frosti protonymphs on four apple cultivars.
Figure 1 Predation success ofG. aculeifer, S in Predation capacity of soil-dwelling predatory mites on two major maize pests
Figure 1 Predation success ofG. aculeifer, S. scimitus andM. robustulus on WCR and WW first instar larvae during the 10-minutes predation assays. n=20. NS = no significant difference among predator species (p-value> 0.05). The error bars represent the 95% confidence interval for the predation success.
Figure 1 in Comparative biology and growth rate of the two predatory mites, Cydnoseius negevi and Neoseiulus californicus (Acari: Phytoseiidae), reared on two pea cultivars
Figure 1. Age-specific fecundity (mx) and survivorship (lx) of Cydnoseius negevi and Neoseiulus californicus reared on two pea cultivars fed on nymphal stages of Tetranychus urticae at 27 ± 1°C.
Figure 1 in How Spiromesifen affects some biological parameters and switching behavior of predatory mite Amblyseius swirskii (Acari: Phytoseiidae) when feeding on different ratios of mixed preys
Figure 1. Linear relation between initial number of Bemisia tabaci (left)/ Tetranychus urticae (right) treated with recommended concentration of Spiromesifen and number of preys eaten by predatory mite Amblyseius swirskii.
Figure 2 in How Spiromesifen affects some biological parameters and switching behavior of predatory mite Amblyseius swirskii (Acari: Phytoseiidae) when feeding on different ratios of mixed preys
Figure 2. Fitted regression equation between the proportion of consumed mite to total preys and preference index (β) of Amblyseius swirskii.
Figure 3 in Suitability of three eriophyid mites as prey for the predatory mite, Typhlodromus athiasae (Acari: Phytoseiidae)
Figure 3. The age-stage reproductive value (vxj) of Typhlodromus athiasae fed on Aceria kenyae, Aceria mangiferae, and Calepitrimerus baileyi.
Figure 1 in Suitability of three eriophyid mites as prey for the predatory mite, Typhlodromus athiasae (Acari: Phytoseiidae)
Figure 1. Age-stage specific survival rates (sxj) of Typhlodromus athiasae fed on Aceria kenyae, Aceria mangiferae, and Calepitrimerus baileyi.
Figure 2 in Suitability of three eriophyid mites as prey for the predatory mite, Typhlodromus athiasae (Acari: Phytoseiidae)
Figure 2. Age-specific survival rate (lx), age-stage specific fecundity (fxj), and age-specific fecundity (mx) of Typhlodromus athiasae fed on Aceria kenyae, Aceria mangiferae, and Calepitrimerus baileyi.
Albertosaurus libratus adult and youngster? Or two species? Drawn to the same scale, note that the smaller individual's teeth, which are partly covered by the lips, are absolutely larger than the bigger one's. On the side of the lower jaw, the bulge of the surangular bone typical of tyrannosaurs can clearly be seen. in Predatory Dinosaurs of the World
Albertosaurus libratus adult and youngster? Or two species? Drawn to the same scale, note that the smaller individual's teeth, which are partly covered by the lips, are absolutely larger than the bigger one's. On the side of the lower jaw, the bulge of the surangular bone typical of tyrannosaurs can clearly be seen.
Rickettsia induces strong cytoplasmic incompatibility in a predatory insect
<p><em>Rickettsia</em>, a group of intracellular bacteria found in eukaryotes, exhibits diverse lifestyles, with some acting as vertebrate pathogens transmitted by arthropod vectors and others serving as maternally transmitted arthropod endosymbionts, some of which manipulate host reproduction for their own benefit. Two phenotypes, namely male killing and parthenogenesis induction are known as <em>Rickettsia</em>-induced host reproductive manipulations, but it remains unknown whether <em>Rickettsia</em> can induce other types of host manipulation. In this study, we discovered that <em>Rickettsia</em> induced strong cytoplasmic incompatibility (CI), in which uninfected females produce no offspring when mated with infected males, in the predatory insect <em>Nesidiocoris tenuis </em>(Hemiptera: Miridae). Molecular phylogenetic analysis revealed that the <em>Rickettsia</em> strain was related to <em>Rickettsia bellii</em>, a common insect endosymbiont. Notably, this strain carried plasmid-encoded homologues of the CI-inducing factors (namely <em>cifA</em>-like and <em>cifB</em>-like genes), typically found in <em>Wolbachia</em>, which are well-known CI-inducing endosymbionts. Protein domain prediction revealed that the <em>cifB</em>-like gene encodes PD-(D/E)XK nuclease and deubiquitinase domains, which are responsible for <em>Wolbachia</em>-induced CI, as well as OTU-like cysteine protease and ankyrin repeat domains. These findings suggest that <em>Rickettsia</em> and <em>Wolbachia</em> endosymbionts share underlying mechanisms of CI and that CI-inducing ability was acquired by microbes through horizontal plasmid transfer.</p>
Fig. 6 in Predatory Mites (Phytoseiidae, Parasitiformes) Of The Fauna Of Ukraine: Redescriptions Of The Species Of Amblyseiella And Chelaseius, With Resurrection Of The Genus Status For Amblyseiulus
Fig. 6. Amblyseiulus messor (Wainstein, 1960) ♀ (1–7), Ơ (8, 9): 1 — dorsal shield; 2 — ventral body surface; 3 — metapodal plates; 4 — posterior part of peritremal schield; 5 — chelicera; 6 — spermatheca; 7 — fragment of leg IV; 8 — ventrianal shield; 9 — chelicera with spermatodactyl.
Fig. 4 in Predatory Mites (Phytoseiidae, Parasitiformes) Of The Fauna Of Ukraine: Redescriptions Of The Species Of Amblyseiella And Chelaseius, With Resurrection Of The Genus Status For Amblyseiulus
Fig. 4. Amblyseiulus jugortus (Athias-Henriot, 1966) (fig. 4) ♀ (1–7), Ơ (8, 9): 1 — dorsal shield; 2 — ventral body surface; 3 — metapodal plates; 4 — posterior part of peritremal schield; 5 — chelicera; 6 — spermatheca; 7 — fragment of leg IV; 8 — ventrianal shield; 9 — chelicera with spermatodactyl.
Fig. 9 in Predatory Mites (Phytoseiidae, Parasitiformes) Of The Fauna Of Ukraine: Redescriptions Of The Species Of Amblyseiella And Chelaseius, With Resurrection Of The Genus Status For Amblyseiulus
Fig. 9. Amblyseiulus sororculus (Wainstein, I960) ♀ (1–7), Ơ (8, 9): 1 — dorsal shield; 2 — ventral body surface; 3 — metapodal plates; 4 — posterior part of peritremal schield; 5 — chelicera; 6 — spermatheca; 7 — fragment of leg IV; 8 — ventrianal shield; 9 — chelicera with spermatodactyl.
Fig. 3 in Predatory Mites (Phytoseiidae, Parasitiformes) Of The Fauna Of Ukraine: Redescriptions Of The Species Of Amblyseiella And Chelaseius, With Resurrection Of The Genus Status For Amblyseiulus
Fig. 3. Amblyseiulus bregetovae (Abbasova, 1970) ♀ (1–7): 1 — dorsal shield; 2 — ventral body surface; 3 — metapodal plates; 4 — posterior part of peritremal schield; 5 — chelicera; 6 — spermatheca; 7 — fragment of leg IV.
Fig. 2. Chelaseius valliculosus Kolodochka, 1987 in Predatory Mites (Phytoseiidae, Parasitiformes) Of The Fauna Of Ukraine: Redescriptions Of The Species Of Amblyseiella And Chelaseius, With Resurrection Of The Genus Status For Amblyseiulus
Fig. 2. Chelaseius valliculosus Kolodochka, 1987 ♀ (1–7), Ơ (8, 9): 1 — dorsal shield; 2 — ventral body surface; 3 — metapodal plates; 4 — posterior part of peritremal schield; 5 — chelicera; 6 — spermatheca; 7 — fragment of leg IV; 8 — ventrianal shield; 9 — chelicera with spermatodactyl; 10 — distitarsus of leg I.
Fig. 1 in Predatory Mites (Phytoseiidae, Parasitiformes) Of The Fauna Of Ukraine: Redescriptions Of The Species Of Amblyseiella And Chelaseius, With Resurrection Of The Genus Status For Amblyseiulus
Fig. 1. Amblyseiella antonii Kolodochka & Omeri, 2010 ♀ (1–9): 1 — dorsal shield; 2 — ventral body surface; 3 — metapodal plates; 4 — posterior part of peritremal schield; 5 — chelicera; 6 — spermatheca; 7 — genu; 8 — tibia; 9 — tarsus (fragment).
Fig. 5 in Predatory Mites (Phytoseiidae, Parasitiformes) Of The Fauna Of Ukraine: Redescriptions Of The Species Of Amblyseiella And Chelaseius, With Resurrection Of The Genus Status For Amblyseiulus
Fig. 5. Amblyseiulus mauiensis (Prasad, 1968) ♀ (1–7): 1 — dorsal shield; 2 — ventral body surface; 3 — metapodal plates; 4 — posterior part of peritremal schield; 5 — chelicera; 6 — spermatheca; 7 — fragment of leg IV.
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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.