Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
235
datasets available to search
ShareScore release 0.9.0
Dataset results
235 results for “host-parasite”
FIGURE 13 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 13. Radfordia (M.) rufocani Bochkov, 1995 from Myodes rufocanus, female tritonymph. A, idiosoma in dorsal view; B, same in ventral view; C, tarsus IV in ventral view. Male tritonymph. D, opisthosoma in ventral view. Scale bars: A, B, D = 100 µm; C = 50 µm.
FIGURE 5 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 5. Radfordia (M.) lemnina (Koch, 1841), details—vulvar region of female, genital cone of males, and setae m.
FIGURE 3 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 3. Radfordia (M.) lemnina (Koch, 1841), details of female from Microtus arvalis. A, gnathosoma in dorsal view; B, same in ventral view; C, leg I in dorsal view; D, same in ventral view.
FIGURE 16 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 16. Radfordia (M.) alticolae Bochkov, 1995, details—vulvar region of female, genital cone of males, and setae m.
FIGURE 1 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 1. Radfordia (M.) lemnina (Koch, 1841), female from Microtus arvalis. A, dorsal view; B, ventral view.
FIGURE 4 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 4. Radfordia (M.) lemnina (Koch, 1841), legs II–IV of female from Microtus arvalis in ventral view. A, leg II; B, leg III, C, leg IV.
FIGURE 15 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 15. Radfordia (M.) alticolae Bochkov, 1995 from Alticola argentatus, male. A, dorsal view; B, ventral view.
FIGURE 12 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 12. Radfordia (M.) rufocani Bochkov, 1995 from Myodes rufocanus, male. A, dorsal view; B, ventral view; C, seta m; D, genital cone. Specimen from Alticola lemminus. E, seta m; F, genital cone. Scale bars: A, B = 100 µm; C–F = 50 µm.
FIGURE 25 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 25. Radfordia (M.) pitymys sp. nov., male holotype. A, dorsal view; B, ventral view; C, seta m; D, genital cone. Scale bars: A, B = 100 µm; C, D = 50 µm.
FIGURE 27 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 27. Radfordia (M.) arvicolae Fain and Lukoschus, 1977, female. A, dorsal view; B, ventral view; C, seta m; D, vulvar region. Scale bars: A, B = 100 µm; C, D = 50 µm.
FIGURE 31 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 31. Radfordia (M.) arctica Fain and Lukoschus, 1977 from Dicrostonyx torquatus, female tritonymph. A, idiosoma in dorsal view; B, same in ventral view; C, leg IV in ventral view. Scale bars: A, B = 100 µm; C = 50 µm.
FIGURE 29 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 29. Radfordia (M.) arctica Fain and Lukoschus, 1977 from Dicrostonyx torquatus, female. A, dorsal view; B, ventral view; C, seta m; D, vulvar region. Scale bars: A, B = 100 µm; C, D = 50 µm.
FIGURE 22 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 22. Radfordia (M.) ladakensis Fain and Lukoschus, 1976, female. A, dorsal view; B, ventral view; C, seta m; D, vulvar region. Scale bars: A, B = 100 µm; C, D = 50 µm.
FIGURE 20 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 20. Radfordia (M.) golenishchevi sp. nov., male holotype. A, dorsal view; B, ventral view; C, seta m; D, genital cone. Scale bars: A, B = 100 µm; C, D = 50 µm.
FIGURE 64 in Mites of the subgenus Microtimyobia (Acariformes: Myobiidae: Radfordia) and their host-parasite relationships with cricetid rodents (Cricetidae) 2954
FIGURE 64. Simplified phylogeny of the subfamily Arvicolinae. Derived from: Robovsky et al. 2008—general scheme; Lebedev et al. 2007—phylogeny of Myodini; Luo et al. 2004—phylogeny of Eothenomys.
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.
Microsatellites data set: Correlated population genetic structure in a three-tiered host-parasite system: the potential for coevolution and adaptive divergence
<p><span><span><span><span><span><span><span><span><span><span><span>Three subspecies of Northern Bahamian Rock Iguanas, <i>Cyclura cychlura</i>, are currently recognized: <i>C. c. cychlura,</i>restricted to Andros Island, and <i>C. c. figginsi</i> and <i>C. c. inornata,</i> native to the Exuma Island chain. Populations on Andros are genetically distinct from Exuma Island populations, yet genetic divergence among populations in the Exumas is inconsistent with the two currently recognized subspecies from those islands. The potential consequences of this discrepancy might include the recognition of a single subspecies throughout the Exumas rather than two. That inference also ignores evidence that populations of <i>C. cychlura</i> are potentially adaptively divergent. We compared patterns of population relatedness in a three-tiered host-parasite system: <i>C. cychlura</i> iguanas, their ticks (genus <i>Amblyomma</i>, preferentially parasitizing these reptiles), and <i>Rickettsia </i>spp. endosymbionts (within tick ectoparasites). Our results indicate that while <i>C. c. cychlura</i> on Andros is consistently supported as a separate clade, patterns of relatedness among populations of <i>C. c. figginsi</i> and <i>C. c. inornata</i> within the Exuma Island chain are more complex. The distribution of the hosts, different tick species, and <i>Rickettsia</i> spp., supports the evolutionary independence of <i>C. c. inornata</i>. Further, these patterns are also consistent with two independent evolutionarily significant units within <i>C. c. figginsi</i>. Our findings suggest coevolutionary relationships between the reptile hosts, their ectoparasites, and rickettsial organisms, suggesting local adaptation. This work also speaks to the limitations of using neutral molecular markers from a single focal taxon as the sole currency for recognizing evolutionary novelty in populations of endangered species.</span></span></span></span></span></span></span></span></span></span></span></p>
FIGURE 3 in Using DNA barcoding to identify host-parasite interactions between cryptic species of goby (Coryphopterus: Gobiidae, Perciformes) and parasitic copepods (Pharodes tortugensis: Chondracanthidae, Cyclopoida)
FIGURE 3. Maximum likelihood tree derived from COI sequences of our copepod samples (labeled as P. tortugensis) plus voucher sequences from related copepods in the suborder Ergasilida (see Table 5 for a list). Sequences of copepods confamilial to P. tortugenis (Chondracanthidae) are labelled to species (and shaded blue in the online colour version), and members other taxa are labeled to family (and shaded pink in the colour online version). Support values for bipartitions are indicated, and divergence represented by dark blue scale bar = 3 %.
ScienceDex guides
Understand access before you commit
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.