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Updated: Aug 10, 2026

Genetic Studies of Human DNA Repair Proteins Using Yeast as a Model System
Published on: March 18, 2010
Incompatibilities in Mismatch Repair Genes MLH1-PMS1 Contribute to a Wide Range of Mutation Rates in Human Isolates
Vandana Raghavan1, Duyen T Bui1, Najla Al-Sweel1
1Department of Molecular Biology and Genetics, Cornell University, Ithaca, New York 14853-2703.
Abstract:
Laboratory baker's yeast strains bearing an incompatible combination of MLH1 and PMS1 mismatch repair alleles are mutators that can adapt more rapidly to stress, but do so at the cost of long-term fitness. We identified 18 baker's yeast isolates from 1011 surveyed that contain the incompatible MLH1-PMS1 genotype in a heterozygous state. Surprisingly, the incompatible combination from two human clinical heterozygous diploid isolates, YJS5845 and YJS5885, contain the exact MLH1 (S288c-derived) and PMS1 (SK1-derived) open reading frames originally shown to confer incompatibility. While these isolates were nonmutators, their meiotic spore clone progeny displayed mutation rates in a DNA slippage assay that varied over a 340-fold range. This range was 30-fold higher than observed between compatible and incompatible combinations of laboratory strains. Genotyping analysis indicated that MLH1-PMS1 incompatibility was the major driver of mutation rate in the isolates. The variation in the mutation rate of incompatible spore clones could be due to background suppressors and enhancers, as well as aneuploidy seen in the spore clones. Our data are consistent with the observed variance in mutation rate contributing to adaptation to stress conditions (e.g., in a human host) through the acquisition of beneficial mutations, with high mutation rates leading to long-term fitness costs that are buffered by mating or eliminated through natural selection.
Insights
Baker's yeast with incompatible mismatch repair genes (MLH1-PMS1) show varied mutation rates, aiding stress adaptation but potentially reducing long-term fitness. This genetic incompatibility drives significant mutation rate variation in yeast populations.
Area of Science:
- Genetics
- Molecular Biology
- Yeast Biology
Background:
- Incompatible MLH1 and PMS1 mismatch repair alleles in baker's yeast create mutator strains.
- These mutators adapt rapidly to stress but incur long-term fitness costs.
Purpose of the Study:
- To investigate the mutation rate variation in baker's yeast isolates with heterozygous incompatible MLH1-PMS1 genotypes.
- To understand the role of MLH1-PMS1 incompatibility in driving mutation rate variance and adaptation.
Main Methods:
- Surveyed 1011 baker's yeast isolates for incompatible MLH1-PMS1 genotypes.
- Analyzed meiotic spore clone progeny for mutation rates using a DNA slippage assay.
- Performed genotyping to confirm MLH1-PMS1 incompatibility as the driver of mutation rates.
Main Results:
- Identified 18 isolates with heterozygous incompatible MLH1-PMS1 genotypes.
- Observed a 340-fold variation in mutation rates among meiotic spore clone progeny.
- MLH1-PMS1 incompatibility was identified as the primary driver of mutation rate variation.
Conclusions:
- MLH1-PMS1 incompatibility significantly increases mutation rate variance in yeast.
- This variance facilitates adaptation to stress through beneficial mutations.
- High mutation rates may lead to long-term fitness costs, potentially mitigated by selection or mating.
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