Bat white-nose disease fungus diversity in time and space

Violeta L Zhelyazkova1, Nicola M Fischer2,3, Sebastien J Puechmaille4,2,3

  • 1National Museum of Natural History, Bulgarian Academy of Sciences, Sofia, Bulgaria National Museum of Natural History, Bulgarian Academy of Sciences Sofia Bulgaria.

Biodiversity Data Journal
|February 13, 2024
PubMed

Insights

White-nose disease (WND) in bats is caused by Pseudogymnoascus destructans. This study found significant genetic differences between hibernacula, with higher fungal diversity on cave walls than on bats, suggesting walls are a reservoir.

Area of Science:

  • Mycology
  • Bat Ecology
  • Conservation Biology

Background:

  • White-nose disease (WND) poses a severe threat to hibernating bats in North America.
  • The causative agent, Pseudogymnoascus destructans, is a psychrophilic fungus.
  • Understanding P. destructans genetic diversity is crucial for disease management.

Purpose of the Study:

  • Investigate P. destructans genetic diversity distribution in its native range.
  • Analyze genetic variation between and within European hibernacula.
  • Determine the role of hibernaculum walls versus bats as fungal reservoirs.

Main Methods:

  • Conducted intensive surveys in Bulgarian caves and a German cellar (2014-2019).
  • Utilized 18 microsatellite and 2 mating type markers for genetic analysis.
  • Sampled P. destructans from bats and hibernaculum walls.

Main Results:

  • Significant genetic differentiation was observed between distinct hibernacula.
  • No significant genetic differentiation was detected within individual hibernacula.
  • Genotypic richness was higher in natural caves than in the artificial cellar.
  • Fungal genotypic richness was consistently higher on hibernaculum walls than on bats.

Conclusions:

  • Hibernaculum walls serve as the primary environmental reservoir for P. destructans.
  • Pathogen movement appears to be more significant between sites than within them.
  • Multiple P. destructans genotypes can infect a single bat, impacting disease progression studies.

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