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Updated: Jan 1, 2026

Gene-targeted Random Mutagenesis to Select Heterochromatin-destabilizing Proteasome Mutants in Fission Yeast
Published on: May 15, 2018
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.
Abstract:
Passaging of microbes in vitro can lead to the selection of microevolved derivatives with differing properties to their original parent strains. One well characterised instance is the phenotypic differences observed between the series of strains derived from the type strain of the human pathogenic fungus Cryptococcus neoformans. A second case was reported in the close relative Cryptococcus deneoformans, in which a well-studied isolate ATCC 24067 (52D) altered its phenotypic characteristics after in vitro passaging in different laboratories. One of these derivatives, ATCC 24067A, has decreased virulence and also exhibits a hypermutator phenotype, in which the mutation rate is increased compared to wild type. In this study, the molecular basis behind the changes in the lineage of ATCC 24067 was determined by next-generation sequencing of the parent and passaged strain genomes. This analysis resulted in the identification of a point mutation that causes a D270G amino acid substitution within the exonuclease proofreading domain of the DNA polymerase delta subunit encoded by POL3. Complementation with POL3 confirmed that this mutation is responsible for the hypermutator phenotype of this strain. Regeneration of the mutation in C. neoformans, to eliminate the additional mutations present in the ATCC 24067A genetic background, demonstrated that the hypermutator phenotype of the pol3D270G mutant causes rapid microevolution in vitro but does not result in decreased virulence. These findings indicate that mutator strains can emerge in these pathogenic fungi without conferring a fitness cost, but the subsequent rapid accumulation of mutations can be deleterious.
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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