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427 results for “Ectoparasite”
Fig. 2. Heteropriapulus simplexioides n in New and previously known ectoparasitic monogenoids (Platyhelminthes) on native and non-native fishes from tributaries of the Usumacinta River basin (southern Mexico), a Neotropical transition zone
Fig. 2. Heteropriapulus simplexioides n. sp. on Pterygoplichthys pardalis (Loricariidae) from the Usumacinta river basin (southern Mexico). A – whole mount (composite, ventral view); B, C, and E – copulatory complexes; D – ventral anchor; F – dorsal anchor; G – hook; H – dorsal bar; I – ventral bar.
Fig. 1 in Spillover and spillback risks of ectoparasites by an invasive squirrel Callosciurus erythraeus in Kanto region of Japan
Fig. 1. Location map of the study areas. The Pallas's squirrels examined in this study were collected by extermination programs operated by the local governments of Yokohama and Yokosuka. Detailed information on the sampling localities is refrained due to the intension of the cooperative organizations.
Fig. 1 in An assessment of ectoparasites across highland and lowland populations of Leadbeater's possum (Gymnobelideus leadbeateri): Implications for genetic rescue translocations
Fig. 1. Fleas detected on the Leadbeater's possum (Gymnobelideus leadbeateri); Stephanocircus domrowi (panel A), Choristopsylla tristis (panel B), Wurunjerria warnekei (panel C), Acanthopsylla rothschildii rothschildii (panel D).
Fig. 1 in Ecological correlates of ectoparasite load in a rodent: Complex roles of seasonality
Fig. 1. Interactive effects of season and body weight (centralized) on tick load in S. dauricus (A); and interactive effects of season and trappability on tick load in S. dauricus (B).
Fig. 3. NMDS plot for the parasite infracommunity composition recovered from 52 in Spillover and spillback risks of ectoparasites by an invasive squirrel Callosciurus erythraeus in Kanto region of Japan
Fig. 3. NMDS plot for the parasite infracommunity composition recovered from 52 host individuals. The influence of each parasite's abundance by discriminating the developmental stage on the score components of the two axes is represented by broken lines. The relationships with environmental variables are indicated by gray arrows. Abbreviations are as follows: M: male, F: female, YH: Yokohama, YS: Yokosuka, HfN: nymph of Haemaphysalis flava, HfL: larva of H. flava, Lep: larva of Leptotrombidium spp., EkA: adult of Enderleinellus kumadai, EkL: larva of E. kumadai, NoA: adult of Neohaematopinus callosciuri, NoL: larva of N. callosciuri, Ca: Ceratophyllus anisus, Ci: Ceratophyllus indages indages.
Fig. 1 in Estimating parasite infrapopulation size given imperfect detection: Proof-of-concept with ectoparasitic fleas on prairie dogs
Fig. 1. Left: Frequency histogram of raw (field) flea count indices from prairie dogs. Middle and right: Huggins closed captures model estimates for fleas combed from prairie dogs, including a histogram of estimated flea counts (infrapopulation size = ̂N) and a positive correlation between Julian date and individual flea detection probability (here, p from the first combing occasion within primary trapping occasions). In the histograms, counts of 0 fleas (gray bars) are presented for illustration; those data were not analyzed herein, because the Huggins closed captures models 'condition' on primary occasions with at least 1 flea being detected (black bars). Model output is from the top model in Table 1. On the right, dotted lines are 95% confidence intervals.
Fig. 13 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 13. Morphology of male thoracic sternal plates and associated posterior setae for previously described species of Lemurpediculus, A: Lemurpediculus petterorum Paulian, 1958. B: Lemurpediculus madagascariensis Durden et al. (2018). C: Lemurpediculus claytoni Durden et al., 2017. D: Lemurpediculus verruculosus (Ward, 1951). E: Lemurpediculus robbinsi Durden et al., 2017. Scale bar, 0.1 mm.
Fig. 7 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 7. Lemurpediculus zimmermanni, female, scanning electron micrographs: A, dorsal whole body. B, ventral whole body. Abbreviations: sgp, subgenital plate; sp, spiracle; tc, tibiotarsal claw; tsp, thoracic sternal plate; vs, ventral head spike.
Fig. 5 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 5. Lemurpediculus zimmermanni, stacked photoimages: A, male Holotype, USNMENT00981950, whole body. B, male, Holotype, USNMENT00981950, genitalia. C, female Allotype, USNMENT00981951, whole body.
Fig. 6. Lemurpediculus zimmermanni, A in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 6. Lemurpediculus zimmermanni, A: Ventral head of male Holotype, B: Thoracic sternal plate of Holotype male, C: Genitalia of male Holotype, D: Subgenital plate of female allotype. Abbreviations: ae, anterior endomere; aen, aedeagal endomere; ba, basal apodeme; p, paramere; pe, posterior endomere; ps, pseudopenis.
Fig. 8 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 8. Lemurpediculus gerpi, stacked photoimages: A, male Holotype, USNMENT00981952, whole body. B, male, Holotype, USNMENT00981952, genitalia.
Fig. 10 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 10. Lemurpediculus tsinamanpesotsae, stacked photoimages: A, male Holotype, USNMENT00981954, whole body. B, male, Holotype, USNMENT00981954, genitalia. C, female Allotype, USNMENT00981955, whole body.
Fig. 14 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 14. Morphology of female subgenital plates and associated setae for previously described species of Lemurpediculus, A: Lemurpediculus claytoni Durden et al., 2017. B: Lemurpediculus robbinsi Durden et al., 2017. C: Lemurpediculus verruculosus (Ward, 1951). D: Lemurpediculus petterorum Paulian, 1958. E: Lemurpediculus madagascariensis Durden et al. (2018).
Fig. 2 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 2. Maximum likelihood phylogenetic trees based on A) elongation factor 1α (EF1α), B) cytochrome C oxidase subunit I (COI) and C) internal transcribed spacer 1 (ITS1) sequences. Values next to the branches indicate ultrafast bootstrap support. Tree scale is in substitutions/site. Substitution models were TNe + G4 for EF1α, TPM2+F + I + G4 for COI, and F81 + F + I for ITS1. Abbreviations: F., Fahrenholzia; H., Haematopinus; L., Lemurpediculus.
Fig. 3 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 3. Maximum likelihood phylogenetic tree based on concatenated cytochrome C oxidase subunit I (COI), elongation factor 1α (EF1α) and internal transcribed spacer 1 (ITS1) sequences. Substitution models were TPM2u + F + I + G4 for COI, TIM2e for EF1α and F81 + F + I for ITS1. Values next to the branches indicate ultrafast bootstrap support. Tree scale is in substitutions/site. Abbreviations: L., Lemurpediculus.
Fig. 4 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 4. Lemurpediculus zimmermanni, male, scanning electron micrographs: A, dorsal whole body. B, ventral whole body. Abbreviations sgp, subgenital plate; sp, spiracle; tc, tibiotarsal claw; tsp, thoracic sternal plate; vs, ventral head spike.
Fig. 1 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 1. Sampling sites where cheirogaleids were trapped for collection of lice. Different colours/symbols correspond to the sampled host species/populations, with different shades of blue and green indicating different populations of M. murinus and M. gerpi, respectively. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 12 in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 12. Identifying morphological characters of male genitalia for previously described species of Lemurpediculus, A: Lemurpediculus petterorum Paulian, 1958. B: Lemurpediculus verruculosus (Ward, 1951). C: Lemurpediculus claytoni Durden et al., 2017. D: Lemurpediculus robbinsi Durden et al., 2017. E: Lemurpediculus madagascariensis Durden et al. (2018). Scale bar, 0.1 mm. Abbreviations: as, accessory sclerite; ba, basal apodeme; p, paramere; ndomere; ps, pseudopenis.
Fig. 11. Lemurpediculus tsinamanpesotsae, A in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 11. Lemurpediculus tsinamanpesotsae, A: Ventral head of male Holotype, B: Thoracic sternal plate of Holotype male, C: Genitalia of male Holotype, D: Subgenital plate of female Allotype. Abbreviations: ae, anterior endomere; aen, aedeagal endomere; ba, basal apodeme; p, paramere; pe, posterior endomere; ps, pseudopenis.
Fig. 9. Lemurpediculus gerpi, A in Molecular phylogenetics of the sucking louse genus Lemurpediculus (Insecta: Phthiraptera), ectoparasites of lemurs, with descriptions of three new species
Fig. 9. Lemurpediculus gerpi, A: Ventral head of male Holotype, B: Thoracic sternal plate of Holotype male, C: Genitalia of male Holotype. Abbreviations: ae, anterior endomere; aen, aedeagal endomere; ba, basal apodeme; p, paramere; pe, posterior endomere; ps, pseudopenis.
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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.