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Published on: December 27, 2010
Same-sex mating and the origin of the Vancouver Island Cryptococcus gattii outbreak
James A Fraser1, Steven S Giles, Emily C Wenink
1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, North Carolina 27710, USA.
Abstract:
Genealogy can illuminate the evolutionary path of important human pathogens. In some microbes, strict clonal reproduction predominates, as with the worldwide dissemination of Mycobacterium leprae, the cause of leprosy. In other pathogens, sexual reproduction yields clones with novel attributes, for example, enabling the efficient, oral transmission of the parasite Toxoplasma gondii. However, the roles of clonal or sexual propagation in the origins of many other microbial pathogen outbreaks remain unknown, like the recent fungal meningoencephalitis outbreak on Vancouver Island, Canada, caused by Cryptococcus gattii. Here we show that the C. gattii outbreak isolates comprise two distinct genotypes. The majority of isolates are hypervirulent and have an identical genotype that is unique to the Pacific Northwest. A minority of the isolates are significantly less virulent and share an identical genotype with fertile isolates from an Australian recombining population. Genotypic analysis reveals evidence of sexual reproduction, in which the majority genotype is the predicted offspring. However, instead of the classic a-alpha sexual cycle, the majority outbreak clone appears to have descended from two alpha mating-type parents. Analysis of nuclear content revealed a diploid environmental isolate homozygous for the major genotype, an intermediate produced during same-sex mating. These studies demonstrate how cryptic same-sex reproduction can enable expansion of a human pathogen to a new geographical niche and contribute to the ongoing production of infectious spores. This has implications for the emergence of other microbial pathogens and inbreeding in host range expansion in the fungal and other kingdoms.
Insights
Cryptococcus gattii outbreaks reveal that same-sex reproduction can create hypervirulent fungal clones. This cryptic mating strategy aids pathogen expansion into new environments and spore production.
Area of Science:
- Microbiology
- Evolutionary Biology
- Mycology
Background:
- Understanding pathogen evolution is crucial for public health.
- Cryptococcus gattii causes fungal meningoencephalitis, with recent outbreaks raising concerns.
- The reproductive strategies of many microbial pathogens remain poorly understood.
Purpose of the Study:
- To investigate the genetic makeup and reproductive mechanisms of Cryptococcus gattii outbreak isolates.
- To determine the evolutionary origins of the hypervirulent genotype responsible for the Vancouver Island outbreak.
Main Methods:
- Genotypic analysis of Cryptococcus gattii isolates from the Vancouver Island outbreak and comparison with global isolates.
- Analysis of nuclear content to identify ploidy and mating-type configurations.
- Phylogenetic analysis to infer evolutionary relationships and reproductive history.
Main Results:
- Two distinct genotypes of Cryptococcus gattii were identified in the outbreak isolates.
- A hypervirulent genotype, unique to the Pacific Northwest, predominated and showed evidence of same-sex mating (alpha x alpha).
- Less virulent isolates shared genotypes with Australian recombining populations, suggesting a hybrid origin.
Conclusions:
- Cryptic same-sex reproduction in Cryptococcus gattii can generate novel, hypervirulent genotypes.
- This reproductive strategy facilitates the pathogen's adaptation and expansion into new geographical niches.
- Findings have implications for understanding the emergence of other microbial pathogens and inbreeding in eukaryotes.
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