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Published on: April 2, 2013
Virulence phenotypes result from interactions between pathogen ploidy and genetic background
Dorian J Feistel1, Rema Elmostafa1, Meleah A Hickman1
1Department of Biology Emory University Atlanta GA USA.
Abstract:
Studying fungal virulence is often challenging and frequently depends on many contexts, including host immune status and pathogen genetic background. However, the role of ploidy has often been overlooked when studying virulence in eukaryotic pathogens. Since fungal pathogens, including the human opportunistic pathogen Candida albicans, can display extensive ploidy variation, assessing how ploidy impacts virulence has important clinical relevance. As an opportunistic pathogen, C. albicans causes nonlethal, superficial infections in healthy individuals, but life-threatening bloodstream infections in individuals with compromised immune function. Here, we determined how both ploidy and genetic background of C. albicans impacts virulence phenotypes in healthy and immunocompromised nematode hosts by characterizing virulence phenotypes in four near-isogenic diploid and tetraploid pairs of strains, which included both laboratory and clinical genetic backgrounds. We found that C. albicans infections decreased host survival and negatively impacted host reproduction, and we leveraged these two measures to survey both lethal and nonlethal virulence phenotypes across the multiple C. albicans strains. In this study, we found that regardless of pathogen ploidy or genetic background, immunocompromised hosts were susceptible to fungal infection compared to healthy hosts. Furthermore, for each host context, we found a significant interaction between C. albicans genetic background and ploidy on virulence phenotypes, but no global differences between diploid and tetraploid pathogens were observed.
Insights
Ploidy and genetic background of Candida albicans impact its virulence. Immunocompromised hosts are more susceptible to fungal infections, with significant interactions between pathogen genetics and ploidy influencing outcomes.
Area of Science:
- Mycology
- Pathogen Biology
- Genetics
Background:
- Fungal virulence studies are complex, often influenced by host immunity and pathogen genetics.
- The impact of ploidy on eukaryotic pathogen virulence, including Candida albicans, is understudied.
- Candida albicans, an opportunistic pathogen, causes varied infections based on host immune status.
Purpose of the Study:
- To investigate how ploidy and genetic background of Candida albicans affect its virulence.
- To assess the impact of diploidy versus tetraploidy on C. albicans virulence in different host contexts.
- To understand the clinical relevance of ploidy variation in fungal pathogens.
Main Methods:
- Characterized virulence phenotypes of near-isogenic diploid and tetraploid C. albicans strains.
- Utilized healthy and immunocompromised nematode hosts to model host susceptibility.
- Measured host survival and reproduction as indicators of lethal and nonlethal virulence phenotypes.
Main Results:
- Candida albicans infections reduced host survival and negatively impacted host reproduction.
- Immunocompromised hosts were consistently more susceptible to C. albicans infection than healthy hosts.
- A significant interaction between C. albicans genetic background and ploidy influenced virulence, but no overall ploidy-specific differences were found.
Conclusions:
- Host immune status is a critical factor in susceptibility to Candida albicans infection.
- Both pathogen genetic background and ploidy interact to modulate C. albicans virulence.
- While ploidy variation exists, it does not globally determine the virulence of C. albicans in this model.
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