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Global Population Genetic Analysis of Aspergillus fumigatus
Eta Ebasi Ashu1, Ferry Hagen2, Anuradha Chowdhary3
1Department of Biology, McMaster University, Hamilton, Ontario, Canada.
Abstract:
Aspergillus fumigatus is a ubiquitous opportunistic fungal pathogen capable of causing invasive aspergillosis, a globally distributed disease with a mortality rate of up to 90% in high-risk populations. Effective control and prevention of this disease require a thorough understanding of its epidemiology. However, despite significant efforts, the global molecular epidemiology of A. fumigatus remains poorly understood. In this study, we analyzed 2,026 A. fumigatus isolates from 13 countries in four continents using nine highly polymorphic microsatellite markers. Genetic cluster analyses suggest that our global sample of A. fumigatus isolates belonged to eight genetic clusters, with seven of the eight clusters showing broad geographic distributions. We found common signatures of sexual recombination within individual genetic clusters and clear evidence of hybridization between several clusters. Limited but statistically significant genetic differentiations were found among geographic and ecological populations. However, there was abundant evidence for gene flow at the local, regional, and global scales. Interestingly, the triazole-susceptible and triazole-resistant populations showed different population structures, consistent with antifungal drug pressure playing a significant role in local adaptation. Our results suggest that global populations of A. fumigatus are shaped by historical differentiation, contemporary gene flow, sexual reproduction, and the localized antifungal drug selection that is driving clonal expansion of genotypes resistant to multiple triazole drugs. IMPORTANCE The genetic diversity and geographic structure of the human fungal pathogen A. fumigatus have been the subject of many studies. However, most previous studies had relatively limited sample ranges and sizes and/or used genetic markers with low-level polymorphisms. In this paper, we characterize a global collection of strains of A. fumigatus using a panel of 9 highly polymorphic microsatellite markers. Using these markers, we analyze 2,026 isolates, which is ~3 times the number of isolates reported so far in previous studies. Our analyses suggest that A. fumigatus contains historically differentiated genetic populations but that its evolution is significantly impacted by contemporary forces such as widespread gene flow and local antifungal drug pressure. In the wake of a global rise in resistance to azoles in fungal pathogens, our findings should aid in developing management strategies to mitigate current increases to azole resistance.
Insights
Global populations of Aspergillus fumigatus show significant gene flow and sexual recombination, but antifungal drug pressure drives the expansion of resistant strains. Understanding this molecular epidemiology is crucial for controlling invasive aspergillosis.
Area of Science:
- Mycology
- Population Genetics
- Infectious Diseases
Background:
- Aspergillus fumigatus is a major opportunistic fungal pathogen causing invasive aspergillosis with high mortality.
- Understanding the global molecular epidemiology of A. fumigatus is essential for disease control.
- Previous studies had limited sample sizes and genetic markers, hindering a comprehensive global view.
Purpose of the Study:
- To investigate the global molecular epidemiology of Aspergillus fumigatus.
- To analyze the genetic diversity and population structure of A. fumigatus isolates worldwide.
- To identify factors shaping the evolution of A. fumigatus, including gene flow and antifungal drug resistance.
Main Methods:
- Analyzed 2,026 A. fumigatus isolates from 13 countries across four continents.
- Utilized nine highly polymorphic microsatellite markers for genetic analysis.
- Performed genetic cluster and population structure analyses.
Main Results:
- Identified eight distinct genetic clusters of A. fumigatus, with seven showing broad geographic distribution.
- Found evidence of sexual recombination and hybridization between clusters.
- Observed significant gene flow at local, regional, and global scales.
- Detected different population structures between triazole-susceptible and resistant strains, indicating local adaptation due to antifungal drug pressure.
Conclusions:
- Global A. fumigatus populations are shaped by historical differentiation, contemporary gene flow, sexual reproduction, and localized antifungal drug selection.
- Antifungal drug pressure is driving the clonal expansion of multi-triazole-resistant genotypes.
- Findings are critical for developing strategies to manage the increasing azole resistance in fungal pathogens.
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