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30 results for “Echinococcus granulosus”

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Fig. 3 in Three species of Echinococcus granulosus sensu lato infect camels on the Arabian Peninsula

Fig. 3 Parsimony haplotype network of the 21 camel isolates and 65 worldwide selected sequences. Haplotypes of each region are presented using color coding. White nodes represent hypothetical haplotypes. Sizes of colored nodes are proportional to the number of isolates found per haplotype. The cluster on the lower right side (without KSA isolates) is formed of sequences conforming to the G3 genotype

opencc-by-4.0Apr 2021View details →
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Figure 2 in Recombinant - and -tubulin from Echinococcus granulosus: expression, purification and polymerization

Figure 2. Sequence alignment of Echinococcus granulosus α9-tubulin and corresponding sequences from humans and parasites. The symbol ''*'' denotes the positions of amino acids that have a single, fully conserved amino acid residue; the symbol '':'' denotes conservation between groups of amino acids with strongly similar properties; the symbol ''.'' denotes conservation between groups of amino acids with weakly similar properties; and the symbol ''–'' denotes gaps inserted to maximize sequence alignment. EgA9, E. granulosus α9; HuA6, human alpha 6 (119578461); HmA5, H. microstoma alpha 5 (674586714); HcA, H. contortus alpha tubulin (159155); SjA1, S. japonicum alpha 1–3 (226478902); and TgA, T. gondii alpha (161937).

opencc-by-4.0Dec 2018View details →
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Figure 1 in Recombinant - and -tubulin from Echinococcus granulosus: expression, purification and polymerization

Figure 1. The cloning and expression of α9- and β4-tubulin. (a) The expression of α9- and β4-tubulin in E. coli BL21 (DE3). M: standard protein molecular weight marker, lane 1: negative control without induction, lane 2: induced control, lane 3: the supernatant after sonication, lane 4: the pellet after sonication, and lane 5: purified recombinant tubulin. (b) Western blot analysis. M: standard protein molecular weight marker, lane 1: α-tubulin, lane 2: β-tubulin.

opencc-by-4.0Dec 2018View details →
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Figure 3 in Recombinant - and -tubulin from Echinococcus granulosus: expression, purification and polymerization

Figure 3. The sequence alignment of Echinococcus granulosus β4-tubulin and corresponding sequences from humans and parasites. Symbol meanings are as in Figure 2. EgB4, E. granulosus β4-tubulin; EmB1, E. multilocularis Tub-1 gene (7838198); EmB2, E. multilocularis Tub-2 gene (7838200); EmB3, E. multilocularis Tub-3 gene (7838202); HuB3, human B3 (50592996); HuB4, human B4a (574584803); HmB2C, H. microstoma beta 2C (674589300); HcB1, H. contortus beta tubulin isotype 1 (124244617); SjB2, S. japonicum beta 2 (226467271); PfB, P. falciparum beta (160732).

opencc-by-4.0Dec 2018View details →
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Figure 5 in Recombinant - and -tubulin from Echinococcus granulosus: expression, purification and polymerization

Figure 5. The polymerization of Echinococcus granulosus α9- and β4-tubulin. (a) Spectrophotometric analysis of polymerization of E. granulosus α9- and β4-tubulin at different concentrations. (b) Confocal scanning laser micrographs of the polymerization product of recombinant tubulin showing immune reactivity to anti-α-tubulin/Alexa-Fluor 488 antibody and anti-β-tubulin/Alexa-Fluor 647 antibody. (I): Phase contrast view, (II): α-tubulin immuno-reactivity, (III): β-tubulin immune-reactivity. (c) The microtubule-like structure resulting from polymerization of pure expressed α9- and β4-tubulin under appropriate conditions in vitro.

opencc-by-4.0Dec 2018View details →
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Figure 4 in Recombinant - and -tubulin from Echinococcus granulosus: expression, purification and polymerization

Figure 4. Modelled structure of the polymerized Echinococcus granulosus α9- and β4-tubulin dimer based on PDB ID 4f6r.

opencc-by-4.0Dec 2018View details →
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Figure 5 in Cystic echinococcosis (Echinococcus granulosus sensu lato infection) in Tunisia, a One Health perspective for a future control programme

Figure 5. General patterns of transmission of Echinococcus spp. and control points in Tunisia. In red, the parasite route; in blue, the hosts involved and behaviours favouring transmission (the size of the characters indicates their presumed importance in transmission); in green, human actions that may modulate transmission.

opencc-by-4.0Jun 2024View details →
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Figure 4 in Cystic echinococcosis (Echinococcus granulosus sensu lato infection) in Tunisia, a One Health perspective for a future control programme

Figure 4. General epidemiology of the three main zoonotic diseases involving dogs in Tunisia: cystic echinococcosis (Echinococcus granulosus infection), leishmaniosis (Leishmania infantum infection) and rabies. (a) Transmission routes of Echinococcus spp., Leishmania spp. and rabies in Tunisia (domestic and peri-domestic and wild socio-ecosystems) and the disciplines involved in their control. The yellow circle limits the space of domestic and peri-domestic transmission, the green circle the space for wildlife transmission. The figure shows how different disciplines (in brown) articulate and can contribute to knowledge and control of these three zoonotic diseases involving dogs. (b) Based on the geography of Tunisia (map after [18]), we hypothesise the existence of different patterns of transmission of the three zoonotic diseases involving dogs with "north–south " and "urban–wild" gradients. The size of each circle is proportional to its importance in the transmission system. Along each gradient, the contributions of hosts and pathogens and the weights of the driving factors vary, possibly leading to different transmission patterns (numbered 1, 2, ..., n — 1, n).

opencc-by-4.0Jun 2024View details →
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Fig. 1 in Prevalence survey and first molecular characterization of Echinococcus granulosus in France

Fig. 1 Origin of the hydatid cysts samples. In grey are the department surveyed. The numbers of cattle or sheep indicate the number and breeding species of infected animals by E. granulosus in each department

opencc-by-4.0Dec 2012View details →
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Fig. 1 in Three species of Echinococcus granulosus sensu lato infect camels on the Arabian Peninsula

Fig. 1 Sequence alignment of the 9 haplotypes. Substitutions were indicated with their nucleotide code, deletions were marked by (-), and dots (.) indicate identical nucleotide at the specified position in comparison with the reference sequence AF297617 (Lee et al. 2002). *nucleotides substitution positions, based on the start of the complete cox1 gene, read vertically

opencc-by-4.0Apr 2021View details →
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Fig. 2 Phylogenetic tree showing the relation between the Saudi Arabian haplotypes with 65 in Three species of Echinococcus granulosus sensu lato infect camels on the Arabian Peninsula

Fig. 2 Phylogenetic tree showing the relation between the Saudi Arabian haplotypes with 65 reference sequences. The Saudi Arabian haplotypes (H01-09) are in bold. The reference sequences along with their accession numbers and origin of isolate were included for each. T. solium was used as an outgroup taxon. The branch to outgroup was shortened by 0.2 substitutions per site

opencc-by-4.0Apr 2021View details →
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Fig. 3 in The first report of hydatid disease (Echinococcus granulosus) in an Australian water buffalo (Bubalus bubalis)

Fig. 3. Section of a PAS-stained hepatic hydatid cyst from a 3 year old female water buffalo from a farm in New South Wales, Australia (LL = laminated layer; GL = germinal layer (detatched, normally closely applied to the laminated layer).

opencc-by-4.0Apr 2019View details →
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Fig. 1 in The first report of hydatid disease (Echinococcus granulosus) in an Australian water buffalo (Bubalus bubalis)

Fig. 1. One of the buffalo grazing paddocks abutting State Forest containing populations of wild dogs (dingoes and/or dingo/domestic dog hybrids).

opencc-by-4.0Apr 2019View details →
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Fig. 2. Pulmonary hydatid cyst from a 3 year old female water buffalo from a in The first report of hydatid disease (Echinococcus granulosus) in an Australian water buffalo (Bubalus bubalis)

Fig. 2. Pulmonary hydatid cyst from a 3 year old female water buffalo from a farm in New South Wales, Australia.

opencc-by-4.0Apr 2019View details →
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Figure 3 in Cystic echinococcosis (Echinococcus granulosus sensu lato infection) in Tunisia, a One Health perspective for a future control programme

Figure 3. Seized offal in a Tunisian slaughterhouse that is often thrown on the ground.

opencc-by-4.0Jun 2024View details →
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Figure 2 in Cystic echinococcosis (Echinococcus granulosus sensu lato infection) in Tunisia, a One Health perspective for a future control programme

Figure 2. Restaurant preparing grilled meat with non-controlled lamb meat.

opencc-by-4.0Jun 2024View details →
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Figure 1. A in Cystic echinococcosis (Echinococcus granulosus sensu lato infection) in Tunisia, a One Health perspective for a future control programme

Figure 1. A heavily infected ewe liver, called "egg basket" locally.

opencc-by-4.0Jun 2024View details →
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Microarray Analysis of Expression Profiles in Monocytic Myeloid-derived Suppressor Cells in Echinococcus granulosus-infected mice

GEO Series GSE110254. Mus musculus. 12 samples. Type: Non-coding RNA profiling by array; Expression profiling by array.

openGEO-OpenDec 2019View details →
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Single-cell RNA sequencing reveals unique alterations in the immune landscape and Treg subpopulations in mice after Echinococcus granulosus infection

GEO Series GSE216347. Mus musculus. 4 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenMar 2023View details →
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Microarray Analysis of LncRNA Expression Profiles in Monocytic Myeloid-derived Suppressor Cells in Echinococcus granulosus-infected mice

GEO Series GSE110253. Mus musculus. 6 samples. Type: Non-coding RNA profiling by array; Expression profiling by array.

openGEO-OpenDec 2019View details →

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