A spontaneous mutation in DNA polymerase POL3 during in vitro passaging causes a hypermutator phenotype in

Kylie J Boyce1, Chengjun Cao2, Chaoyang Xue2

  • 1School of Science, Engineering and Health, RMIT University, Victoria, Australia.

DNA Repair
|December 16, 2019
PubMed

Insights

Microbial passaging in vitro can lead to rapid evolution. A mutation in Cryptococcus deneoformans DNA polymerase delta (POL3) causes a hypermutator phenotype, increasing mutation rates without decreasing virulence.

Area of Science:

  • Microbiology
  • Genetics
  • Mycology

Background:

  • In vitro passaging of microbes can select for microevolved strains with altered phenotypes.
  • Cryptococcus deneoformans isolate ATCC 24067 exhibits phenotypic changes after laboratory passaging, including decreased virulence and a hypermutator phenotype in derivative ATCC 24067A.

Purpose of the Study:

  • To determine the molecular basis for the phenotypic changes in the Cryptococcus deneoformans ATCC 24067 lineage.
  • To investigate the role of identified mutations in virulence and hypermutation.

Main Methods:

  • Next-generation sequencing of parent and passaged Cryptococcus deneoformans strain genomes.
  • Identification of point mutations, specifically in the POL3 gene.
  • Complementation experiments and regeneration of mutations in Cryptococcus neoformans.

Main Results:

  • A point mutation (D270G) in the POL3 gene was identified, responsible for the hypermutator phenotype.
  • The D270G mutation in POL3 causes rapid in vitro microevolution.
  • The hypermutator phenotype did not result in decreased virulence in the regenerated mutant.

Conclusions:

  • Mutator strains can emerge in pathogenic fungi without a fitness cost.
  • The POL3 D270G mutation drives rapid microevolution but does not inherently reduce virulence.
  • Rapid accumulation of mutations can be deleterious, despite the absence of an immediate fitness cost.

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