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Updated: Jul 11, 2026

Genetic Studies of Human DNA Repair Proteins Using Yeast as a Model System
Published on: March 18, 2010
Analysis of yeast pms1, msh2, and mlh1 mutators points to differences in mismatch correction efficiencies between
Y Yang1, R Karthikeyan, S E Mack
1Atherosclerosis Specialty Laboratory, St. Paul's Hospital, Vancouver, B.C., Canada.
Abstract:
Genetic stability relies in part on the efficiency with which post-replicative mismatch repair (MMR) detects and corrects DNA replication errors. In Escherichia coli, endogenous transition mispairs and insertion/deletion (ID) heterologies are corrected with similar efficiencies--but much more efficiently than transversion mispairs--as revealed by mutation rate increases in MMR mutants. To assess the relative efficiencies with which these mismatches are corrected in the yeast Saccharomyces cerevisiae, we examined repair of defined mismatches on heteroduplex plasmids and compared the spectra for >1000 spontaneous SUP4-o mutations arising in isogenic wild-type or MMR-deficient (pms1, mlh1, msh2) strains. Heteroduplexes containing G/T mispairs or ID heterologies were corrected more efficiently than those containing transversion mismatches. However, the rates of single base-pair insertion/deletion were increased much more (82-fold or 34-fold, respectively) on average than the rate of base pair substitutions (4.4-fold), with the rates for total transitions and transversions increasing to similar extents. Thus, the relative efficiencies with which mismatches formed during DNA replication are repaired appear to differ in prokaryotic and eukaryotic cells. In addition, our results indicate that in yeast, and probably other eukaryotes, these efficiencies may not mirror those obtained from an analysis of heteroduplex correction.
Insights
DNA mismatch repair (MMR) corrects replication errors. Yeast corrects insertion/deletion errors more efficiently than base substitutions, differing from bacterial MMR efficiencies.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Genetic stability depends on accurate DNA replication and efficient post-replicative mismatch repair (MMR).
- Prokaryotic MMR in E. coli corrects transition and insertion/deletion (ID) mismatches efficiently, but transversions less so.
Purpose of the Study:
- To determine the relative efficiencies of MMR in correcting different types of DNA replication errors in the yeast Saccharomyces cerevisiae.
- To compare yeast MMR efficiencies with those observed in prokaryotes.
Main Methods:
- Analysis of spontaneous SUP4-o mutations in isogenic wild-type and MMR-deficient yeast strains (pms1, mlh1, msh2).
- Examination of repair efficiencies for defined mismatches on heteroduplex plasmids.
Main Results:
- Yeast exhibits higher correction efficiency for G/T mispairs and insertion/deletion (ID) heterologies compared to transversion mismatches.
- Mutation rates for single base-pair insertions/deletions increased significantly (82-fold and 34-fold) compared to base pair substitutions (4.4-fold).
- Transition and transversion substitution rates increased to similar extents in MMR-deficient yeast.
Conclusions:
- The relative efficiencies of repairing DNA replication mismatches differ between prokaryotic and eukaryotic cells.
- In yeast, MMR repair efficiencies may not directly correlate with heteroduplex correction analysis results.
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