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108 results for “rodent host”
FIGURE 63 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 63. Radfordia (M.) cricetulus Fain, 1973 from Cricetulus migratorius, female tritonymph. A, idiosoma in dorsal view; B, same in ventral view; C, tarsus IV in ventral view. Scale bars: A, B = 100 µm; C = 50 µm.
FIGURE 62 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 62. Radfordia (M.) cricetulus Fain, 1973 from Cricetulus migratorius, male. A, dorsal view; B, ventral view; C, genital cone. Scale bars: A, B = 100 µm; C = 50 µm.
FIGURE 61 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 61. Radfordia (M.) cricetulus Fain, 1973 from Cricetulus migratorius, female. A, dorsal view; B, ventral view; C, seta m. Scale bars: A, B = 100 µm; C = 50 µm.
Data from: The Lyme disease pathogen has no effect on the survival of its rodent reservoir host
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Data from: Habitat fragmentation alters the properties of a host-parasite network: rodents and their helminths in South-East Asia
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Data from: Concordance of bacterial communities of two tick species and blood of their shared rodent host
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Data from: Biogeography and host-related factors trumps parasite life-history: limited congruence among the genetic structures of specific ectoparasitic lice and their rodent hosts
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Data from: Spatiotemporal dynamics of Puumala hantavirus associated with its rodent host, Myodes glareolus
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Host-Parasite biogeographic interactions: modelling the distribution of Phyllotis xanthopygus rodents complex and their flea assemblage using the favorability function
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Data from: Limited dispersal in an ectoparasitic mite, Laelaps giganteus, contributes to significant phylogeographic congruence with their rodent hosts, Rhabdomys
To explore how biogeography, parasite life history and host vagility influences evolutionary codivergences, we followed a comparative phylogeography approach using a host specific non-permanent mite, Laelaps giganteus that occurs on four rodent species within the genus Rhabdomys. A mtDNA COI haplotype network derived for 278 parasite specimens showed marked phylogeographic congruence with host distributions. Analysis of the less variable nuclear intron Tropomyosin was in part consistent with these results. Although distance-based cophylogenetic analyses in AXPARAFIT failed to support significant mtDNA codivergences (P ≥ 0.02), event-based analyses revealed significant cophylogeny between sampling localities of Rhabdomys and Laelaps using CORE-PA (P = 0.046) and JANE (P = 0.026; P = 0.00). These findings, in conjunction with the weak congruence previously reported among the permanent ectoparasitic lice Polyplax and Rhabdomys, suggest that host-parasite intimacy is not the most important driver of significant codivergence in our study system. Instead the more restricted dispersal ability of L. giganteus, when compared to Polyplax, resulted in stronger spatial structuring and this could have resulted in significant codivergence. Host switching occurred predominantly on the edges of host distributions and was probably facilitated by climate-induced range shifts. When host ranges shift, the phylogeographic structure of L. giganteus is not reflecting the host movements since most of the nest bound parasites do not disperse with the host (they miss the boat) and the genetic contribution of the few dispersing mite individuals is often overwhelmed by the large number of individuals already present in nests within the new environment (causing them to drown on arrival).
Fig. 1 in Rodent malaria in Gabon: Diversity and host range
Fig. 1. Location of the provinces of Gabon where rodent samples were collected. The map shows the sites where rodents were captured (in red) and the site where some Anopheles infected with rodent malaria parasites were found in a previous study (in green) (Makanga et al., 2016). The number of individuals collected in each province is indicated between brackets. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 4 in Rodent malaria in Gabon: Diversity and host range
Fig. 4. Map showing the distribution of rodent malaria parasite species in Central Africa. This map is based on the data provided in Landau and Chabau (1994) (blue) and the data obtained in our study (red). P. v.: Plasmodium vinckei; P. y.: Plasmodium yoelii; P. c: Plasmodium chabaudi; P. v: Plasmodium vinckei; P. berghei: Plasmodium berghei and P. sp. GAB: Plasmodium sp GAB. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 2 in Rodent malaria in Gabon: Diversity and host range
Fig. 2. Phylogenetic relationships between the CYTB sequences of Plasmodium parasites obtained in our study (in colour) and the sequences obtained from existing databases (in black). The tree was built using partial CYTB sequences (700 bp-long). The names of our isolates (for instance, n14GB-Ron48_Mus musculus-DJM) include: 1) the year and country of collection (n14GB: n14: 2014 and GB: Gabon); 2) the sample number (Ron48: Rodent number 48); 3) the rodent species and 4) the abbreviation of the sample site (FCV: Franceville; MIM: Mimongo, LEK: Lekoni, DJM: Djoumou; MKK: Makokou; KLM: Koulamoutou). The name of isolates clustering with Plasmodium yoelii is in green, and of isolates clustering with Plasmodium vinckei is in blue. CAM: Cameroon and CAR: Central African Republic. In our study we called P. sp. GAB the new Plasmodium lineage found in some Gabonese rodents. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Rodent malaria in Gabon: Diversity and host range
Fig. 3. Map of malaria parasite distribution for each host species and infection rate for each Plasmodium species or lineage (Plasmodium yoelii spp, Plasmodium vinckei lentum, and Plasmodium sp GAB). a) for Mus musculus; b) for Lemniscomys striatus; c) for Mastomys natalensis; d) for Praomys sp. and e) for Grammomys poensis. Plasmodium sp GAB (P. sp. GAB) corresponds to the new phylogenetic lineage of rodent Plasmodium described in our study.
FIGURE 42 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 42. Radfordia (M.) zibethicalis (Radford, 1936), female. A, dorsal view; B, ventral view.
FIGURE 43 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 43. Radfordia (M.) zibethicalis (Radford, 1936), male. A, dorsal view; B, ventral view.
FIGURE 7 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 7. Radfordia (M.) lemnina (Koch, 1841), details—genital cone of males and setae m.
FIGURE 6 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 6. Radfordia (M.) lemnina (Koch, 1841), details—genital cone of males and setae m.
Data from: Limited dispersal in an ectoparasitic mite, Laelaps giganteus, contributes to significant phylogeographic congruence with their rodent hosts, Rhabdomys
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FIGURE 55 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 55. Radfordia (M.) abramovi Bochkov and Mironov, 1998 from Phodopus roborovskii, female. A, dorsal view; B, ventral view; C, vulvar region. Scale bars: A, B = 100 µm; C = 50 µm.
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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.