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18 results for “Giardia duodenalis”

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zenodo40/100

Fig. 1 in Extensive testing of a multi-locus sequence typing scheme for Giardia dUodenaliS assemblage A confirms its good discriminatory power

Fig. 1 DCC outbreak in Sweden, described by Ankarklev et al. [13]; GVB outbreak in Italy, described by Resi et al. [14]; and several longitudinal samples of different patients showing similar genotypes, described by Woschke et al. [15]

opencc-by-4.0Dec 2022View details →
zenodo40/100

Рис. 1. Цисты Giardia duodenalis у кавказской агамы. ШкаΛа измерения — 10 мкм Fig. 1. Cysts of Giardia duodenalis in Caucasian agama. Scale: 10 µm in First record of Giardia duodenalis (Giardiinae, Diplomonadida, Metamonada) in Caucasian agama (Paralaudakia caucasia) in Azerbaijan

Рис. 1. Цисты Giardia duodenalis у кавказской агамы. ШкаΛа измерения — 10 мкм Fig. 1. Cysts of Giardia duodenalis in Caucasian agama. Scale: 10 µm

opencc-by-4.0Mar 2023View details →
zenodo40/100

Fig. 2. Giardia duodenalis 18S in Giardia duodenalis and Cryptosporidium occurrence in Australian sea lions (Neophoca cinerea) exposed to varied levels of human interaction

Fig. 2. Giardia duodenalis 18S rRNA phylogenetic tree. Phylogenetic analysis of Giardia duodenalis positive samples was performed using a fragment of 18S rRNA gene. Analysis within the phylogenetic framework placed sea lion samples within the assemblage B (n = 27) and assemblage A clades (n = 1). Branch values indicate percent bootstrapping using 1000 replicates.

opencc-by-4.0Dec 2014View details →
zenodo40/100

Fig. 1 in Giardia duodenalis and Cryptosporidium occurrence in Australian sea lions (Neophoca cinerea) exposed to varied levels of human interaction

Fig. 1. (A) Western Australia sampling locations. Faecal samples were collected from West Australia Sea lion colonies on Beagle and North Fisherman Islands. Coastal settlements and human impacted camping locations within close proximity to Sea lion colonies are indicated. (B) South Australia sampling locations. Australian sea lion faecal samples were collected from South Australia colonies; Blefuscu, Lewis, Liguanea, Lilliput, Olive and West Waldegrave Islands. Coastal towns and camping areas within close proximity to Australian Sea lion colonies are identified. (C) South Australia sampling locations: Kangaroo Island. Three colonies were sampled from Kangaroo Island including Cape Gantheaume, Seal Bay and Seal Slide. Coastal towns and recreational beach camping sites on the island are indicated.

opencc-by-4.0Dec 2014View details →
zenodo40/100

Fig. 2 in First report of Giardia duodenalis infection in the crested porcupine (Hystrix cristata L., 1758)

Fig. 2. Sampling area and location of Hystrix cristata faecal samples: A). Location of faecal samples collected in each zone (green dots), from captured (blue dots) and road-killed (red dot) animals; B). Location of Giardia spp. positive faecal samples (pink dots). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opencc-by-4.0Apr 2020View details →
zenodo40/100

Fig. 3 in First report of Giardia duodenalis infection in the crested porcupine (Hystrix cristata L., 1758)

Fig. 3. Parasites identified in 52 crested porcupine faecal samples: A-C). Gastrointestinal strongyle eggs (59.8–78 μm x 28.6–44.2 μm) (A and C 400X, scale bar 15 μm; B 100X, scale bar 60 μm); D). Capillariid egg measuring 59.8 μm × 26 μm (400X, scale bar 15 μm); E, F). Trichuris spp. eggs of 60 x 28.6–40 μm in dimensions (400X, scale bar 15 μm); G). Coccidian oocyst measuring 36.4 μm × 23.4 μm (400X, scale bar 15 μm).

opencc-by-4.0Apr 2020View details →
zenodo40/100

Fig. 1 in First report of Giardia duodenalis infection in the crested porcupine (Hystrix cristata L., 1758)

Fig. 1. Map of Italy: in the inset detail of the study area (border red line), zones (close areas in black, Z1-Z7), transects (white lines), and Hystrix cristata trap-sites (red arrows, T1-T7) where faecal samples were collected from November 2018 to May 2019. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opencc-by-4.0Apr 2020View details →
zenodo40/100

Fig. 4 in Giardia duodenalis in a clinically healthy population of captive zoo chimpanzees: Rapid antigen testing, diagnostic real-time PCR and faecal microbiota profiling

Fig. 4. | Faecal bacterial community profile of captive chimpanzees infected with Giardia duodenalis detected by rapid antigen test. (A) Relative abundance of colour coded bacterial phyla separated based on presence (+) or absence (‒) of Giardia using rapid antigen test (RAT). The sample identity is located at the bottom of the graph with two labels (C20, C3) shaded indicating samples that were found as Giardia positive by real-time PCR. (B) Alpha diversity based on observed OTU and Shannon's index plotted as box plot and evaluated using t-tests. (C) Principal coordinates analysis (PCoA) 2D plot using first two principal components from Bray-Curtis dissimilarity matrix at the genus taxonomic levels. The clustering between Giardia positive (RAT+) and negative (RAT-) samples was tested using ANOSIM. (D) Linear discriminant analysis effect size (LEfSe) used plot of significant factors discriminating G. duodenalis positive from negative sample. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opencc-by-4.0Apr 2022View details →
zenodo40/100

Fig. 3 in Giardia duodenalis in a clinically healthy population of captive zoo chimpanzees: Rapid antigen testing, diagnostic real-time PCR and faecal microbiota profiling

Fig. 3. | Faecal bacterial community profile of captive chimpanzees infected with Giardia duodenalis as detected by rapid antigen test and real-time PCR combined. (A) Relative abundance of colour coded bacterial phyla separated based on presence (+) or absence (‒) of Giardia. The sample identity is located at the bottom of the graph. (B) Alpha diversity based on observed OTU and Shannon's index plotted as box plot and evaluated using t-tests. (C) Principal coordinates analysis (PCoA) 2D plot using first two principal components from Bray-Curtis dissimilarity matrix at the genus taxonomic levels. The clustering between Giardia positive (+) and negative (‒) samples was tested using ANOSIM. (D) Linear discriminant analysis effect size (LEfSe) used plot of significant factors discriminating G. duodenalis positive from negative sample. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)

opencc-by-4.0Apr 2022View details →
zenodo40/100

Fig. 2 in Giardia duodenalis in a clinically healthy population of captive zoo chimpanzees: Rapid antigen testing, diagnostic real-time PCR and faecal microbiota profiling

Fig. 2. | Results of Giardia duodenalis rapid antigen test applied on faecal samples from chimpanzees. A positive result for the Giardia duodenalis rapid antigen test (RAT, Anigen Rapid Giardia AG Test Kit) is represented by the line in the 'T' position in the window along with the positive control line in the 'C' position.

opencc-by-4.0Apr 2022View details →
zenodo40/100

Fig. 1 in Giardia duodenalis in a clinically healthy population of captive zoo chimpanzees: Rapid antigen testing, diagnostic real-time PCR and faecal microbiota profiling

Fig. 1. Captive chimpanzees and their enclosure in Sydney, Australia. (A) Main chimpanzee open air exhibit with multiple climbing structures. (B) View from the other direction showing entry to the indoor area at the end of the exhibit. (C) smaller exhibit with mesh covering and more climbing and sleeping structures. (D) Members of the chimpanzee troop at the Taronga Zoo.

opencc-by-4.0Apr 2022View details →
zenodo40/100

Fig. 1 in First Molecular Detection of Giardia duodenalis Assemblage B in a Free-Living European Wildcat (Felis s. silvestris) from Luxembourg

Fig. 1. Neighbor-joining distance analysis of the β-giardin nucleotide sequences. FS1 – sequence of partial β-giardin gene of the isolate from wildcat (KX685669). Reference human isolates: WB and KC8, (X85958 and AY072723); LD18, Nij5, VAN/90/UBC/44, GH- 202 (AY072727, AY072725, KP687755, AB618785); A101 and – cat isolate, (AY647264 and EU769206); P15 – reference cow isolate, (AY072729); A29 and A27 – reference dog isolates (AY545646 and AY545648). G. muris (AY258618) represents an outgroup.

opencc-by-4.0Dec 2019View details →
zenodo32/100

Highly contiguous genomes of Giardia duodenalis isolates

<pre>High-quality genome data sets for Giardia duodenalis are scarce. Here, we generated highly contiguous genomes by a hybrid PacBio/Illumina sequencing approach of four assemblage A (one AI from a cat, and three AII from humans) and five assemblage B isolates (from humans) derived by axenic culture from clinical samples.</pre> <p>Raw data available under PRJNA879307.</p>

opencc-by-4.0Sep 2023View details →
dryad28/100

Data from: Multilocus genotyping of Giardia duodenalis isolates from children in Oromia Special Zone, central Ethiopia

Open the record for dataset details and reuse information.

publicMay 2017View details →
geo20/100

Giardiavirus rewires host translation and glycolytic metabolism to support its replication in Giardia duodenalis

GEO Series GSE269427. Giardia duodenalis. 6 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenDec 2024View details →
geo20/100

Intestinal gene expression in 10-day Giardia duodenalis GS infected mice

GEO Series GSE23372. Mus musculus. 8 samples. Type: Expression profiling by array.

openGEO-OpenOct 2013View details →
geo20/100

Microarray analysis of the intestinal host response in Giardia duodenalis assemblage E infected calves

GEO Series GSE35920. Bos taurus. 8 samples. Type: Expression profiling by array.

openGEO-OpenApr 2012View details →
geo20/100

Expression data from the commensal bacteria Escherchia coli strain HB101 interacting with Caenorhabditis elegans and/or Giardia duodenalis

GEO Series GSE61092. Escherichia coli. 11 samples. Type: Expression profiling by array.

openGEO-OpenApr 2015View details →

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