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.

Molecular & General Genetics : MGG
|July 8, 1999
PubMed

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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