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This project involved a large-scale population management experiment using properties and adjacent refugia as experimental units. Modells identified in this study are indicated by solid circles. Molecular Stocking foxes models of Cryptosporidium spp. KJType IV accession no. Farming mode is another risk factor associated with E. Shooting is increasingly being used as a means of reducing the agricultural impact of foxes. Parasit Vectors. Money Back Guarantee Refund in 15 Days.
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Metrics details. Microsporidiosis is a common disease in animals and humans around the world. Enterocytozoon bieneusi is the most common microsporidian species in humans. Many animal species may be a potential source of human microsporidiosis. However, information concerning prevalence and genotypes of E. Therefore, the present study examined prevalence, risk factors and genotypes of E. Of fecal samples from farmed foxes, 37 Eleven internal transcribed spacer ITS genotypes were identified among the positive samples: four known E.
All genotypes belonged to phylogenetic group 1. Multilocus sequence typing MLST analyses revealed additional diversity. These findings indicate the presence of zoonotic E.
The results will provide baseline data for preventing and controlling E. Microsporidia form an important group of obligate intracellular parasites, and the named species can infect virtually all animals [ 1 — 4 ]. Fourteen species in eight genera have been reported in humans [ 5 ]. Enterocytozoon bieneusi , Encephalitozoon cuniculi , Encephalitozoon intestinalis , and Encephalitozoon hellem are the major microsporidians infecting humans worldwide [ 5 ], with E.
The first case of human infection with E. Since E. Feces containing E. Thus far, two large groups have been documented by phylogenetic analysis of ITS sequences, namely a zoonotic group Group 1 which can infect both humans and animals, and a number of host-adapted groups Groups 2—5 and outlier genotypes in dogs.
More than distinct non-human genotypes are known [ 14 — 18 ]. Some additional small groups have also been found in recent years: Group 7 in Nigerian AIDS patients, Group 6 in urban wastewater in China, and Group 8 was also found in some animals in recent studies [ 19 , 20 ]. China has abundant animal resources, but only limited information is available regarding prevalence and genotypes of E. Most studies in China have reported on E.
Foxes have been the subject of only one study, which was conducted in Harbin City [ 27 ]. To improve the information of the distribution of E. In total, fecal samples were randomly collected from healthy farmed foxes from Jilin province 3 farms, 91 foxes , Heilongjiang province 2 farms, 70 foxes and Hebei province 3 farms, foxes , northern China in Each fecal sample was collected using sterile gloves immediately after the animal had defecated, and was then stored on ice.
Information regarding geographical origin, farming mode, gender and age of source fox were acquired for each fecal sample. Positive and negative controls were included in each test. Sequences were aligned with reference sequences of E. Bootstrapping replicates was performed [ 28 ]. The E. The variation in E.
In a multivariable regression analysis, each of these variables was included in a binary Logit model as an independent variable. Of fecal samples, 37 Enterocytozoon bieneusi was detected in each of the eight farms surveyed, and the highest infection rate was found in farm 8 Adult foxes had a higher E.
Foxes raised outdoors The impacts of multiple variables on E. Farming mode has a strong effect on the risk of E. Analysis of the ITS region of E. A comparative analysis of the ITS sequences showed that the four known genotypes sequences of the identified E. KJ , Type IV accession no. KJ and D accession no. JF sequences available in GenBank, respectively.
Phylogenetic analysis indicated that all the genotypes identified in this study belonged to group 1 Fig.
The numbers at notes indicate bootstrap values. Isolates identified in this study are indicated by solid circles.
Twenty-one, 15, 0 and 17 E. Ten E. In the present study, 37 This prevalence was lower than that in farmed foxes The different prevalence may be due to different geo-ecological conditions, sample collection time, animal husbandry practices, animal welfare, age distribution of the samples, as well as sample sizes.
Ingestion of contaminated water and food is the most important means of transmission of E. Therefore, density of foxes in a farm and environmental sanitation may strongly affect on prevalence.
Stocking density of foxes is generally higher in farms in Hebei and Heilongjiang provinces relative to those in Jilin province. This may explain why farms from Hebei and Heilongjiang had higher E. Farming mode is another risk factor associated with E. Foxes raised outdoors had a significantly higher prevalence than those kept indoors, probably due to the fact that outdoor foxes have more opportunities to make contact with contaminated environments and animals than indoor foxes.
Four E. Only one of these, D, was among the four known genotypes that we found in farmed foxes. Thus, eleven E. All these genotypes belonged to group 1 analyzed by NJ methods Fig. NCF2 was the most frequent genotype found in the present study. In contrast, only genotype D was found in farmed foxes in Harbin City in a previous study [ 27 ] and in wild foxes in Spain [ 29 ], and genotypes WL13 and WL15 were the most common in wild foxes in the USA [ 30 ].
For example, genotype D was found in golden takins Budorcas taxicolor bedfordi in Shannxi [ 13 ], HIV patients and non-human primates in Henan [ 11 , 21 ], dairy cattle, sheep, goats, pig, cats and dogs in Heilongjiang [ 24 , 31 — 33 ]. Peru8 was found in non-human primates in Henan [ 11 ], dogs in Heilongjiang [ 15 ]. These findings suggest cross-transmission of E. More importantly, genotypes D and Peru8 have also been found in drinking water in China, which suggests that we should pay more attention to this mode of transmission of E.
Recently, multilocus sequence typing MLST has been used to further study the taxonomy and population genetics of E. In the present study, amplification of at least one locus was successful for every isolate. Amplification of MS4 was unsuccessful in every case.
All the three microsatellite loci MS1, MS3 and MS7 were only successfully amplified from ten isolates, revealing the presence of much diversity. These findings demonstrate the genetic diversity of E. The present study revealed the existence Foxes raised outdoors displayed a significantly higher E.
These results suggest that control strategies are required to limit E. Ubiquitin-mediated response to microsporidia and virus infection in C. PLoS Pathog.
Genotypes of Enterocytozoon bieneusi in livestock in China: high prevalence and zoonotic potential. Multilocus sequence typing of Enterocytozoon bieneusi in nonhuman primates in China.
Vet Parasitol. Enterocytozoon bieneusi in sika deer Cervus nippon and red deer Cervus elaphus : deer specificity and zoonotic potential of ITS genotypes. Parasitol Res. Microsporidiosis: Enterocytozoon bieneusi in domesticated and wild animals. Res Vet Sci. Occurrence of a new microsporidan: Enterocytozoon bieneusi n.
J Protozool. Transmission and serial propagation of Enterocytozoon bieneusi from humans and Rhesus macaques in gnotobiotic piglets. Infect Immun. Molecular epidemiology of Encephalitozoon cuniculi and first detection of Enterocytozoon bieneusi in faecal samples of pigs. J Eukaryot Microbiol. J Infect Dis. First report of Enterocytozoon bieneusi from giant pandas Ailuropoda melanoleuca and red pandas Ailurus fulgens in China.
Infect Genet Evol. Genetic polymorphism and zoonotic potential of Enterocytozoon bieneusi from nonhuman primates in China. Appl Environ Microbiol. Enterocytozoon bieneusi genotype nomenclature based on the internal transcribed spacer sequence: a consensus. First report of zoonotic Cryptosporidium spp.