Two distinct host-specialized fungal species cause white-nose disease in bats

Nicola M Fischer1,2, Imogen Dumville2, Benoit Nabholz2,3

  • 1Zoological Institute and Museum, University of Greifswald, Greifswald, Germany.

Nature
|May 28, 2025
PubMed

Insights

White-nose disease in bats is caused by two cryptic fungal species, not one. Genetic analysis reveals host specialization and geographic differentiation, aiding in tracing the North American introduction to Ukraine.

Area of Science:

  • Mycology
  • Pathogen Genomics
  • Disease Ecology

Background:

  • Fungal pathogens pose significant threats to public health, wildlife, and ecosystems.
  • White-nose disease in bats has caused substantial mortality in nonhuman mammals.
  • Previous research on white-nose disease overlooked pathogen genetic variability, focusing instead on host and environmental factors.

Purpose of the Study:

  • To investigate the genetic variability of the fungal pathogen responsible for white-nose disease.
  • To determine if the causative agent comprises a single species or multiple cryptic species.
  • To understand the population structure and geographic origins of the pathogen.

Main Methods:

  • Analysis of 5,479 fungal isolates from 27 countries.
  • Genomic comparison of fungal isolates to identify species and genetic differentiation.
  • Phylogeographic analysis to trace the pathogen's introduction and source population.

Main Results:

  • The causative agent of white-nose disease consists of two sympatric cryptic fungal species.
  • Each species exhibits host specialization and significant genetic differentiation, including genome organization.
  • Geographically differentiated populations were identified, allowing the tracing of the North American introduction to Ukraine.

Conclusions:

  • The discovery of two cryptic species necessitates a re-evaluation of white-nose disease surveillance and management.
  • Integrating pathogen variability studies is crucial for understanding and controlling infectious diseases.
  • This research highlights the importance of a holistic approach to disease management, considering pathogen genetics.

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