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335 results for “Ixodidae”
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.
Figura 1 in Amblyomma tigrinum (Acari: Ixodidae) parasitando al gato montés Leopardus geoffroyi (Carnivora: Felidae) en la provincia de San Juan, Argentina
Figura 1. Ejemplar de Leopardus geoffroyi, detalle de la garrapata Amblyomma tigrinum en la región dorsal de la cabeza.
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.
Fig. 2 in Entodermoscopia: dermatoscopia para el diagnóstico de picadura de garrapata (Ixodida: Ixodidae).
Fig. 2.- Imagen dermatoscópica. a.- Garrapata con las piezas bucales adheridas a la piel. b.- A mayor detalle.
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).
Fig. 3 in Ixodid Ticks (Acari, Ixodidae) In Urban Landscapes. A Review
Fig. 3. Diagram of indexes of references of mass hard tick species that adapted to European urban landscapes (including Russia).
Figura 2. a in Amblyomma mixtum Koch (Acari: Ixodidae) en ambientes peridomésticos de la Región Otomí-Tepehua, Hidalgo, México
Figura 2. a) Pápulas con escoriaciones, b) Garrapata macho A. mixtum, c) Garrapata hembra A. mixtum.
Fig. 1 in Rickettsia parkeri strain Atlantic rainforest in ticks (Acari: Ixodidae) of wild birds in Arauca, Orinoquia region of Colombia
Fig. 1. Localities sampled in the municipalities of Arauca, Cravo Norte, and Tame and reports of Rickettsia spp. in the study area (▴Rickettsia parkeri strain Atlantic rainforest).
Fig. 2 in Rickettsia parkeri strain Atlantic rainforest in ticks (Acari: Ixodidae) of wild birds in Arauca, Orinoquia region of Colombia
Fig. 2. Phylogenetic tree based on partial sequences of the outer membrane protein gene ompB present only in SFG Rickettsia species. The tree was inferred through Maximum Likelihood with the Tamura 3-parameter evolution model. The sequences obtained in this study appear in bold and the GenBank accessions numbers are provided within square brackets.
Fig. 1 in Isolation of Metarhizium guizhouense and Metarhizium robertsii strains from soil-exposed Amblyomma americanum (Acarina: Ixodidae) from northwest Arkansas, USA
Fig. 1. Metarhizium robertsii (A-C, E) and Metarhizium guizhouense (D, F) from Amblyomma americanum ticks collected from northwest Arkansas (Washington County). (A) Sporulating M. robertsii (Savoy P2AM1/ARSEF 14332) growing on an infected adult male tick. (B) Inset of infected tick showing sporulating conidia in addition to mouthparts and coxal spurs diagnostic of A. americanum. (C, D) Metarhizium robertsii (Savoy P2AM1/ARSEF 14432) and M. guizhouense (West Fork P9N2/ ARSEF 14330), respectively, 10 d old colony on Sabouraud Dextrose Agar (plate diam = 60 mm). (E, F) Conidia of M. robertsii (Savoy P2AM1/ARSEF 14332) and M. guizhouense (West Fork P9N2/ARSEF 14330), respectively, viewed at 200× magnification (scale = 20 µm). Photos: Austin Goldsmith (A, B) and Louela Castrillo (C-F).
Fig. 1 in Molecular screening of ticks of the genus Amblyomma (Acari: Ixodidae) infesting South African reptiles with comments on their potential to act as vectors for Hepatozoon fitzsimonsi (Dias, 1953) (Adeleorina: Hepatozoidae)
Fig. 1. Maximum likelihood analysis of Amblyomma tick species based on the 16S rRNA sequences. Bootstrap values at the major nodes are of percentage agreement among 1000 replicates. The branch scale represents substitutions per site.
Fig. 2 in Molecular screening of ticks of the genus Amblyomma (Acari: Ixodidae) infesting South African reptiles with comments on their potential to act as vectors for Hepatozoon fitzsimonsi (Dias, 1953) (Adeleorina: Hepatozoidae)
Fig. 2. Maximum likelihood analysis of species of Hepatozoon based on the 18S rRNA sequences. Bootstrap values at the major nodes are of percentage agreement among 1000 replicates. The branch scale represents substitutions per site.
Fig. 10 in Micropathogen community identification in ticks (Acari: Ixodidae) using third-generation sequencing
Fig. 10. Phylogenetic analysis of the isolated bacteria/viruses. Reference oligonucleotide sequences were selected by BLAST searches of the NCBI nt database. (A) Subtrees of the experimental sequences from the Borrelia burgdorferi 16S rRNA gene. (B) Subtrees of the experimental sequences from the Coxiella burnetii 16S rRNA gene. (C) Subtrees of the experimental sequences from the Anaplasma phagocytophilum MSP4 gene. (D) Subtrees of the experimental sequences from the Simian foamy virus pathogen. (E) Subtrees of the experimental sequences from the Crimean-Congo haemorrhagic fever orthonairovirus segment-S gene.
Fig. 7 in Micropathogen community identification in ticks (Acari: Ixodidae) using third-generation sequencing
Fig. 7. Population distribution of micropathogens in different samples. Note: "%" represents the proportion of micropathogen in the total community from each sample.
Fig. 3 in Micropathogen community identification in ticks (Acari: Ixodidae) using third-generation sequencing
Fig. 3. Venn diagram based on the eggNOG database. Note: The corresponding functional categories and non-supervised orthologous group (NOG) numbers were obtained from the eggNOG database.
Fig. 5 in Micropathogen community identification in ticks (Acari: Ixodidae) using third-generation sequencing
Fig. 5. Heat maps of community composition based on genera. Note: X-axis, template name; Y-axis, genus. The darker the blue colour is, the higher the enrichment of the genus in the sample.
Fig. 2 in Micropathogen community identification in ticks (Acari: Ixodidae) using third-generation sequencing
Fig. 2. Summary of the tag length distribution following the sequencing of genes from the four samples.
Fig. 9 in Micropathogen community identification in ticks (Acari: Ixodidae) using third-generation sequencing
Fig. 9. Pie chart of the distribution of viral abundances in different samples. Note: "%" represents the proportion of the virus in the total community from each sample, and the different colours represent different viruses. A: The primary micropathogens analysed in G1. B: The primary micropathogens analysed in G2. C: The main micropathogens analysed in G3. D: The main micropathogens analysed in G4.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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