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Population Structure in Naegleria fowleri as Revealed by Microsatellite Markers
Bénédicte Coupat-Goutaland1, Estelle Régoudis1, Matthieu Besseyrias2
1Univ Lyon, Université Lyon 1, CNRS UMR 5240 Microbiology Adaptation and Pathogenesis, Villeurbanne, France.
Abstract:
Naegleria sp. is a free living amoeba belonging to the Heterolobosea class. Over 40 species of Naegleria were identified and recovered worldwide in different habitats such as swimming pools, freshwater lakes, soil or dust. Among them, N. fowleri, is a human pathogen responsible for primary amoeboic meningoencephalitis (PAM). Around 300 cases were reported in 40 years worldwide but PAM is a fatal disease of the central nervous system with only 5% survival of infected patients. Since both pathogenic and non pathogenic species were encountered in the environment, detection and dispersal mode are crucial points in the fight against this pathogenic agent. Previous studies on identification and genotyping of N. fowleri strains were focused on RAPD analysis and on ITS sequencing and identified 5 variants: euro-american, south pacific, widespread, cattenom and chooz. Microsatellites are powerful markers in population genetics with broad spectrum of applications (such as paternity test, fingerprinting, genetic mapping or genetic structure analysis). They are characterized by a high degree of length polymorphism. The aim of this study was to genotype N. fowleri strains using microsatellites markers in order to track this population and to better understand its evolution. Six microsatellite loci and 47 strains from different geographical origins were used for this analysis. The microsatellite markers revealed a level of discrimination higher than any other marker used until now, enabling the identification of seven genetic groups, included in the five main genetic groups based on the previous RAPD and ITS analyses. This analysis also allowed us to go further in identifying private alleles highlighting intra-group variability. A better identification of the N. fowleri isolates could be done with this type of analysis and could allow a better tracking of the clinical and environmental N. fowleri strains.
Insights
Naegleria fowleri, a brain-infecting amoeba, can now be better tracked using powerful microsatellite markers. This genetic tool enhances identification and helps understand the evolution of this dangerous pathogen.
Area of Science:
- Microbiology
- Population Genetics
- Molecular Biology
Background:
- Naegleria sp. are free-living amoebae found globally in various water and soil environments.
- Naegleria fowleri is a pathogenic species causing fatal primary amoebic meningoencephalitis (PAM), with a low survival rate.
- Environmental detection and dispersal of N. fowleri are critical due to the presence of both pathogenic and non-pathogenic species.
Purpose of the Study:
- To genotype Naegleria fowleri strains using microsatellite markers.
- To enhance the tracking and understanding of N. fowleri population evolution.
- To improve the discrimination of N. fowleri isolates compared to previous methods.
Main Methods:
- Genotyping of 47 N. fowleri strains from diverse geographical origins.
- Utilized six microsatellite loci for high-resolution genetic analysis.
- Compared microsatellite data with previous RAPD and ITS sequencing results.
Main Results:
- Microsatellite markers provided a higher level of discrimination than prior methods.
- Identified seven genetic groups within N. fowleri, refining the previously established five groups.
- Revealed private alleles, offering insights into intra-group genetic variability.
Conclusions:
- Microsatellite genotyping offers superior discrimination for Naegleria fowleri identification.
- This method facilitates improved tracking of clinical and environmental N. fowleri strains.
- Enhanced genetic resolution aids in understanding the evolutionary dynamics of N. fowleri populations.
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