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Fig. 2 in The African buffalo parasite Theileria. sp. (buffalo) can infect and immortalize cattle leukocytes and encodes divergent orthologues of Theileria parva antigen genes
Fig. 2. Results of a semi-nested PCR assay used to amplify 18S ribosomal subunit DNA using primers specific for T. parva and T. sp. (buffalo). Samples are as follows: 1)N13 2)N18 3) N20 4)N33 5)N36 6) N43 7)N50 8)N55 9) N69 10)N76 11) N79 12) N86 13) N88 14) N99 15)N100 16) N102 17) N103 18)N107 19—21) T. parva clones 22—24) T. sp. (buffalo) clones (documented in Table 2).
Fig. 1 in The African buffalo parasite Theileria. sp. (buffalo) can infect and immortalize cattle leukocytes and encodes divergent orthologues of Theileria parva antigen genes
Fig. 1. Reverse line blot analysis of schizont cultures containing parasites isolated from Marula farm. The following species-specific oligonucleotide probes were used (a) T. annulata, (b) T. parva, (c) T. mutans, (d) T. velifera, (e) T. taurotragi, (f) T. buffeli, (g) T. sp. (buffalo). (h) B. bigemina, (i) B. bovis. The order of the experimental samples hybridized is DNA from cell culture isolates in lanes 1—22 was lane 1; (1) N6, (2) N13, (3) N18, (4) N20, (5) N33, (6) N36, (7) N38 (8) N43, (9) N50 (10) N55, (11) N69, (12) N76, (13) N77, (14) N79, (15) N88, (16) N99, (17) N100 (18) N103, (19) N106, (20) N107, (21) N86, (22) N102 and DNA extracted from whole cattle blood (23) N106 (24) N69 (25) N86.
Fig. 2 in Comparison of natural and artificial odor lures for nilgai (Boselaphus tragocamelus) and white-tailed deer (Odocoileus virginianus) in South Texas: Developing treatment for cattle fever tick eradication
Fig. 2. Locations of nilgai lure transects (red bars) at the Santa Rosa Ranch near Riviera, TX. (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article.)
Fig. 5 in Comparison of natural and artificial odor lures for nilgai (Boselaphus tragocamelus) and white-tailed deer (Odocoileus virginianus) in South Texas: Developing treatment for cattle fever tick eradication
Fig. 5. Nilgai cow visiting lure site (A) and (B) nilgai bull defecating at offal lure site at the East Foundation's Santa Rosa Ranch, near Riviera, TX.
Figure 1 in First record of Diplodinium rangiferi Dogiel, 1925 (Ophryoscolecidae, Entodiniomorphida) from domestic cattle
Figure 1. Photomicrographs of D. rangiferi, fixed and stained with MFS (a) from left side, without caudal spines; (b) from right side, without caudal spines; (c) from right side, with 1 ventral caudal spine; (d) from right side, with 1 ventral and 1 dorsal caudal spine.
Figure. PCA analysis based on GH-MspI, GH-AluI, PRL, and DGAT1 loci in Turkish native cattle breeds (Turkish Grey - TG, East Anatolian Red - EAR, Anatolian Black - AB, and South Anatolian Red - SAR). in Growth hormone (GH), prolactin (PRL), and diacylglycerol acyltransferase (DGAT1) gene polymorphisms in Turkish native cattle breeds
Figure. PCA analysis based on GH-MspI, GH-AluI, PRL, and DGAT1 loci in Turkish native cattle breeds (Turkish Grey - TG, East Anatolian Red - EAR, Anatolian Black - AB, and South Anatolian Red - SAR).
Figure 1 in Phylogenetic relationships of the vulnerable wild cattle, Malayan gaur (Bos gaurus hubbacki), and its hybrid, the selembu, based on maternal markers
Figure 1. Neighbor-joining tree of the 12S rRNA gene. The numbers at the branches stand for bootstrap values (%) of 1000 replications.
Fig. 1 in Investigations into the carrier-state of Theileria sp. (buffalo) in cattle
Fig. 1. Frequency distribution curves for Theileria parva and Theileria sp. (buffalo) positive animals. Indicated are frequency distribution plots of the CP values and the percentage observed in buffalo from National Parks, buffalo from the Bedrog ranch, and cattle from the Bedrog ranch sampled during the outbreak (3/12/2013) and monitored afterwards for T. parva (top panel) and T. sp. (buffalo) (bottom panel).
Fig. 2 in Investigations into the carrier-state of Theileria sp. (buffalo) in cattle
Fig. 2. Monitoring of Theileria parva and Theileria sp. (buffalo) positive animals over a period of 24 months. The gray shaded areas indicate CP values below the cutoff of the PCR assays. Stars indicate animals that were splenectomized and the arrow indicate the date of splenectomy. The cross indicates an animal that died of natural causes.
Fig. 7. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 7. A correlation circle showing the relationship between quantitative variables, the quality of their representation, and their relationship with the first two dimensions, with colors corresponding to the most contributing variables.
Fig. 10. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 10. A correlation circle showing the relationship between frog species, qualitative habitat variables, the quality of their representation, and their relationship with the first two dimensions, with colors corresponding to the most contributing variables.
Figs 4, 5 in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Figs 4, 5. The contributions of each variable to dimensions 1 and 2 respectively. The red line marks the expected average contribution.
Fig. 3. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 3. A Scree plot of eigenvalues, describing how much variance is attributed to each dimension. A visual representation of Tab. II.
Fig. 1 in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 1. The eight sites throughout the study, with all "G" sites situated along grasslands and "F" sites situated along forests at Estancia Santa Ana, Pilar, Paraguay.
Fig. 2. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 2. A correlation graph visualizing the correlation matrix obtained from analysis of water quality factors, cow presence indicators, and frog survey data at Estancia Santa Ana, Pilar, Paraguay. A visual representation of Tab. I. Tab. II. The Eigenvalues for the first five dimension and how much variance they explain in the data regarding vegetation height structure and species richness at Estancia Santa Ana, Pilar, Paraguay.
Fig. 6. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 6. A plot showing the correlation between both qualitative and quantitative variables along the first two dimensions.
Fig. 9. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 9. A plot showing the correlation between frog species and qualitative habitat variables along the first two dimensions at Estancia Santa Ana, Pilar, Paraguay.
Fig. 8. A in Effects of low-intensity cattle ranching on amphibians in the Ñeembucú Wetland Complex, Paraguay
Fig. 8. A plot showing the relationship between qualitative variables, the quality of their representation, and their relationship with the first two dimensions, with colors corresponding to the most contributing variables.
Fig. 3 in Short-term spider community monitoring after cattle removal in grazed grassland
Fig. 3. Richness based rarefaction curves for spiders sampled in ungrazed areas of APA Ibirapuitã, Rio Grande do Sul state, Brazil, trough springs of 2011, 2012 and 2013. Adjacent lines indicates 95% confidence intervals.
Fig. 2 in Short-term spider community monitoring after cattle removal in grazed grassland
Fig. 2. Format used for exposal of pitfall traps in APA Ibirapuitã, state of Rio Grande do Sul, Brazil during the campaign of 2011, 2012 and 2013. Red diamonds indicates the places of the traps. Traps were placed around 20 m from each other and least 10 m from the fence or border of each plot.
ScienceDex guides
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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.