Fungus Causing White-Nose Syndrome in Bats Accumulates Genetic Variability in North America with No Sign of

Jigar Trivedi1, Josianne Lachapelle1, Karen J Vanderwolf2

  • 1Department of Biology, University of Toronto, Mississauga, Ontario, Canada.

Msphere
|July 18, 2017
PubMed

Insights

The fungus Pseudogymnoascus destructans, causing white-nose syndrome in bats, originated from a single clone. While it has mutated, there is no evidence of genetic exchange, limiting evolutionary adaptation and potential impacts on virulence.

Area of Science:

  • Mycology
  • Evolutionary Biology
  • Wildlife Disease

Background:

  • White-nose syndrome (WNS) is a devastating fungal epidemic affecting North American bats.
  • The disease is caused by a specific clonal lineage of the fungus Pseudogymnoascus destructans.
  • Understanding the evolutionary dynamics of P. destructans is crucial for bat conservation.

Purpose of the Study:

  • To investigate the early evolutionary changes in the North American population of P. destructans.
  • To determine the role of mutation and recombination in the fungus's adaptation.
  • To establish the origin and introduction timeline of P. destructans in North America.

Main Methods:

  • Genome-wide analysis of the P. destructans population.
  • Comparative genomics to assess genetic variation and recombination.
  • Phylogenetic analysis to infer population history and introduction events.

Main Results:

  • The North American P. destructans population originated from a single genotype and has expanded.
  • Genetic variation has accumulated primarily through spontaneous mutation.
  • No evidence of genetic exchange (recombination) was detected in the studied population.
  • The timing of the initial introduction of P. destructans to North America was confirmed.

Conclusions:

  • The clonal nature and lack of recombination limit the evolutionary potential of P. destructans in North America.
  • Selective pressures have had minimal genetic variation to act upon, impacting virulence evolution.
  • This study provides a unique real-time model for observing host-pathogen co-evolution.

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