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.
712
datasets available to search
ShareScore release 0.9.0
Dataset results
712 results for “tick”
Fig. 2 Ixodes barkeri Barker, 2019 in Description of the female, nymph and larva and mitochondrial genome, and redescription of the male of Ixodes barkeri Barker, 2019 (Acari: Ixodidae), from the short-beaked echidna, Tachyglossus aculeatus, with a consideration of the most suitable subgenus for this tick
Fig. 2 Ixodes barkeri Barker, 2019, scanning electron micrographs of idiosoma of male. A Dorsal view; B dorsolateral view; C ventral view. Scale bars: 0.5 mm
Fig. 3 Ixodes barkeri Barker, 2019 in Description of the female, nymph and larva and mitochondrial genome, and redescription of the male of Ixodes barkeri Barker, 2019 (Acari: Ixodidae), from the short-beaked echidna, Tachyglossus aculeatus, with a consideration of the most suitable subgenus for this tick
Fig. 3 Ixodes barkeri Barker, 2019, scanning electron micrographs of male. A Spiracular plate (arrows show orientation of spiracular plate: a, anterior; d, dorsal). B Gnathosoma, dorsal view. C Gnathosoma, ventral view. D Gnathosoma, anteroventral view. E Coxae. F Trochanter I, dorsal view. Scale bars: A–D, F 0.1 mm; E, 0.2 mm
Figure 4 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)
Figure 4: Effectivity of EPNs at concentration of 100 IJs/tick in vegetable oil emulsions at concentration of 33% on engorged adult ticks. Bars with unequal letters are statistically different (Tukey, P <0.05).
Figure 2 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)
Figure 2: Survival of EPNs in oil emulsions of J. VirGiniana and C. CitratUS at a concentration of 13% under laboratory conditions.
Figure 3 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)
Figure 3: Effectivity of EPNs at concentration of 50 IJs/tick in vegetable oil emulsions at concentration of 33% on engorged adult ticks. Bars with unequal letters are statistically different (Tukey, P <0.05).
Figure 5 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)
Figure 5: Control effectiveness of S. websteri at 119 IJs/tick in two vegetable oil emulsions at a concentration of 33% and a Control with S. websteri in only distilled water.
Figure 2 in Histological structures of the midguts of adult Rhipicephalus bursa and Rhipicephalus turanicus ticks (Acari: Ixodidae)
Figure 2. Histology of the digestive tract of the midgut of Rhipicephalus bursa. Í: muscle layer, R: caecae, Ḩ: stem (generative) cell, gdc: granular digestive cell, ddc: densely granulated digestive cell. X400, H&E.
Figure 1 in Histological structures of the midguts of adult Rhipicephalus bursa and Rhipicephalus turanicus ticks (Acari: Ixodidae)
Figure 1. Histology of the digestive tract of the midgut of Rhipicephalus turanicus. Í: muscle layer, R: caecae, Ḩ: stem (generative) cell, gdc: granular digestive cell, ddc: densely granulated digestive cell, hc: host cell, mt: Malpighian tube. X400, H&E.
Figure 9 in Microbial diversity of ticks and a novel typhus group Rickettsia species (Rickettsiales bacterium Ac37b) in Inner Mongolia, China
Figure 9. Phylogenetic tree of Rickettsiales bacterium Ac37b, Rickettsia bellii, Rickettsia raoultii, Anaplasma and Coxiella in ticks based on neighbor-joining (NJ) modeling; only values higher than 60 were added to the tree branches. (a) Phylogenetic tree of Rickettsiales bacterium Ac37b identified in Inner Mongolia; the 16S rRNA gene sequences obtained in this study are marked with black squares (1320 bp) and triangles (1430 bp). (b) Phylogenetic tree of Rickettsia bellii identified in Inner Mongolia; the 16S rRNA gene sequences obtained in this study are marked with black squares (1109 bp). (c) Phylogenetic tree of Rickettsia raoultii identified in Inner Mongolia; the 16S rRNA gene sequences obtained in this study are marked with black squares (855 bp). (d) Phylogenetic tree of Anaplasma identified in Inner Mongolia; the 16S rRNA gene sequences obtained in this study are marked with black squares (1455 bp) and triangles (547 bp). (e) Phylogenetic tree of Coxiella identified in Inner Mongolia; the 16S rRNA gene sequences obtained in this study are marked with black squares (1463 bp).
Figure 6 in Microbial diversity of ticks and a novel typhus group Rickettsia species (Rickettsiales bacterium Ac37b) in Inner Mongolia, China
Figure 6. PCoA of β-diversity measures for twelve groups. Weighted UniFrac PCoA graph showing PC1, which accounts for 47.46% of variation, and PC2, which accounts for 28.93% of variation. Different colored dots represent different regions and species.
Figure 5 in Microbial diversity of ticks and a novel typhus group Rickettsia species (Rickettsiales bacterium Ac37b) in Inner Mongolia, China
Figure 5. (a) Clustering tree analysis by linear discriminant analysis effect size (LEfSe). (b) Histogram of LDA analysis.
Figure 4 in Microbial diversity of ticks and a novel typhus group Rickettsia species (Rickettsiales bacterium Ac37b) in Inner Mongolia, China
Figure 4. Alpha diversity measures for Dermacentor nuttalli and Ixodes persulcatus in four areas. (a) Shannon's index. (b) Simpson's index.
Figure 7 in Microbial diversity of ticks and a novel typhus group Rickettsia species (Rickettsiales bacterium Ac37b) in Inner Mongolia, China
Figure 7. Venn diagram for cluster analysis of OTUs between Dermacentor nuttalli and Ixodes persulcatus (genus level).
Figure 3 in Microbial diversity of ticks and a novel typhus group Rickettsia species (Rickettsiales bacterium Ac37b) in Inner Mongolia, China
Figure 3. Microbe composition of different regions and species. (a) Top 10 microbial components at the genus level. (b) Top 12 microbial components at the species level.
Figure 2. Shannon–Wiener curve. X in Microbial diversity of ticks and a novel typhus group Rickettsia species (Rickettsiales bacterium Ac37b) in Inner Mongolia, China
Figure 2. Shannon–Wiener curve. X-axis: amount of sequencing data; Y-axis: corresponding Shannon diversity index.
Fig. 1 in Tick (Acarina: Ixodidae) species and life stages collected from Arkansas wild pigs
Fig. 1. Locations of Arkansas wild pig traps where ticks were collected Feb 2019 to Jan 2020. Collection sites are labeled by county. Two traps in Crawford County, 2 traps in Polk County, and 2 traps in Scott County were close geographically and appear as 1 location.
Figure 2 in Occurrence of ticks and tick-borne mixed parasitic microbiota in cross-bred cattle in District Lahore, Pakistan
Figure 2. RLB specific primer PCR detection of DNA in cross-bred Cattle (Friesian x Sahiwal). L1 100bp ladder. L2 & L3 negative control, L4 PCR positive control. L6, L8, L9, L11, L12, L13, L15, L16, L17, L18, L19 positive for protozoan specific to primers.
Fig. 2. Kimura 2 in First record of a spotted fever group Rickettsia sp. and Theileria annulata in Hyalomma dromedarii (Acari: Ixodidae) ticks in the United Arab Emirates
Fig. 2. Kimura 2-parameter distance Neighbor Joining (NJ) tree of 12 nucleotide sequences belonging to the genus Theileria. Codes denote the accession numbers of NCBI GenBank database. * Sequence from Al-Ain, UAE. Numbers next to branches are the percentage of replicate trees in which the associated taxa clustered together in the bootstrap test (1000 replicates) (Felsenstein 1985).
Fig. 2 in Infestation of the road-killed Eastern European hedgehogs (Erinaceus roumanicus) with Ixodidae ticks in some parts of Upper Thracian Plain (Bulgaria)
Fig. 2. Ixodidae ticks found parasitizing on road-killed Eastern European hedgehogs: (A) male Rh. bursa; (B) engorged female Rh. sanguineus (left) and male Rh. turanicus (right); (C) male H. marginatus; (D) engorged female I. ricinus.
Fig. 1 in Infestation of the road-killed Eastern European hedgehogs (Erinaceus roumanicus) with Ixodidae ticks in some parts of Upper Thracian Plain (Bulgaria)
Fig. 1. Location of the field study area (1- part of national road II-66; 2- part of national road I-8; 3- national road Karlovo - Plovdiv).
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.