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335 results for “Ixodidae”
Figure 2 in Morphological observations of fluorescence in different tick species (Family: Ixodidae)
Figure 2 Fluorescent (RB, 440-460 nm) ventral micrographs of Amblyomma americanum male (left)
Figure 1 in The Eldari tick Ixodes eldaricus (Acari: Ixodidae) in Israel: its occurrence, morphometric and biological characteristics
Figure 1. No of ticks collected in the survey area (vertical axis – No of ticks).
Figure 1 in Species composition of hard ticks (Acari: Ixodidae) on domestic animals and their public health importance in Tamil Nadu, South India
Figure 1. Localities where the field work was carried out in Madurai district.
Figure 3 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 3. Dorsal view of Amblyomma cf. oblongoguttatum female with atrophy on the left 3 (arrow).
Figure 8 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 8. Asymmetry of the scutum of Amblyomma cf. oblongoguttatum female.
Figure 4 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 4. Ventral view of Amblyomma cf. oblongoguttatum female with atrophy on the left 3 (arrow).
Figure 2 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 2. Ventral view of festoon malformation in a Amblyomma coelebs male.
Figure 5 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 5. Asymmetry of the scutum of Amblyomma cf. oblongoguttatum female.
Figure 1 in Abnormal morphology in Amblyomma coelebs and Amblyomma cf. oblongoguttatum (Acari: Ixodidae) collected on free-roaming Central American Tapir (Tapirus bairdii) from Nicaragua
Figure 1. Dorsal view of festoon malformation in a Amblyomma coelebs male.
Data from: Susceptibility of <em>Rhipicehalus (Boophilus) microplus</em> (Acari: Ixodidae) to sulfur and copper nanoparticles
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Ticks, and tick-borne bacterial pathogens found on hard ticks (Acari: Ixodidae) on cattle in the Central River Region of The Gambia
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Data from: Range expansion and increasing Borrelia burgdorferi infection of the tick Ixodes scapularis (Acari: Ixodidae) in Iowa, 1990-2013
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Evaluation and selection of predictive models of the Neotropical hard tick Amblyomma patinoi (Ixodida: Ixodidae)
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qPCR results from design and partial validation of three novel eDNA qPCR assays for several common North American tick (Arachnida: Ixodida) species
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Population genetic structure and demographic history of the lone star tick, Amblyomma americanum (Ixodida: Ixodidae): new evidence supporting old records
Range expansions are a potential outcome of climate change. Population genetic structure and demography can be used as tools to evaluate hypotheses on changes in geographic distribution. In this study we explored the genetic variability, population genetic structure, demographic history, and habitat suitability of Amblyomma americanum, a North American tick species that is a known vector of several pathogenic microorganisms. We used a novel double digestion restriction site-associated DNA sequencing (dd-RAD seq), and we discovered 8181 independent single nucleotide polymorphisms (SNPs) from 189 ticks from across the geographic range of the species. Overall, genetic diversity was lower than expected. Further, the edge populations did not have a statistically significant lower diversity than core populations, and hypotheses of range expansion are not supported by a test based on genetic data. Nonetheless, moderate levels of population structure were detected among geographic regions, with the northeast cluster the least variable. Demographic and species distribution models support a scenario where A. americanum was present in more northern locations in the past, underwent a bottleneck, and is now recovering. These findings highlight the importance of demographic modeling and genomic data in assessing the recent history and genetic structure of pathogen vectors.
FIGURE 18. Hyalomma kumari, larva. A in The genus Hyalomma Koch, 1844. VIII. Redescription of three Hyalommina Schulze, 1919 species (Acari: Ixodidae) from South Asia with notes on their biology
FIGURE 18. Hyalomma kumari, larva. A—scutum; B—gnathosoma dorsally; C—gnathosoma ventrally; D—coxae. Scale bars: A = 150 μm; B, C, D = 100 μm. All setae are omitted except drawings B and C where only setae of palpal segment IV are omitted.
FIGURE 16. Hyalomma kumari, female. A in The genus Hyalomma Koch, 1844. VIII. Redescription of three Hyalommina Schulze, 1919 species (Acari: Ixodidae) from South Asia with notes on their biology
FIGURE 16. Hyalomma kumari, female. A—genital structures; B—longitudinal cut through preatrial fold of genital aperture schematically (a—anterior, p—posterior); C—spiracular plate (a—anterior, d—dorsal); D—gnathosoma dorsally; E—gnathosoma ventrally; F—palp ventrally; G—hypostome; H—coxae. Scale bars: A = 200 μm; C, F, G = 400 μm; E, D, H = 500 μm. All setae are omitted except drawing F where only setae of palpal segment IV are omitted.
FIGURE 11. Hyalomma hussaini, nymph. A in The genus Hyalomma Koch, 1844. VIII. Redescription of three Hyalommina Schulze, 1919 species (Acari: Ixodidae) from South Asia with notes on their biology
FIGURE 11. Hyalomma hussaini, nymph. A—scutum; B—seta of alloscutum; C—spiracular plate (a—anterior, d—dorsal); D—gnathosoma dorsally; E—gnathosoma ventrally; F—coxae. A = 400 μm; B, C = 50 μm; D, E, F = 200 μm. All setae are omitted except drawings D and E where only setae of palpal segment IV are omitted.
FIGURE 12. Hyalomma hussaini, larva. A in The genus Hyalomma Koch, 1844. VIII. Redescription of three Hyalommina Schulze, 1919 species (Acari: Ixodidae) from South Asia with notes on their biology
FIGURE 12. Hyalomma hussaini, larva. A—scutum; B—gnathosoma dorsally; C—gnathosoma ventrally; D—coxae. Scale bars: A = 150 μm; B, C, D = 100 μm. All setae are omitted except drawings B and C where only setae of palpal segment IV are omitted.
FIGURE 17. Hyalomma kumari, nymph. A in The genus Hyalomma Koch, 1844. VIII. Redescription of three Hyalommina Schulze, 1919 species (Acari: Ixodidae) from South Asia with notes on their biology
FIGURE 17. Hyalomma kumari, nymph. A—scutum; B—seta of alloscutum; C—spiracular plate (a—anterior, d—dorsal); D—gnathosoma dorsally; E—gnathosoma ventrally; F—coxae. A = 400 μm; B, C = 50 μm; D, E, F = 200 μm. All setae are omitted except drawings D and E where only setae of palpal segment IV are omitted.
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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)
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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.