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.

Genetics
|October 24, 2018
PubMed

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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