Genetics. Published Articles Ahead of Print: February 3, 2008, Copyright © 2008
doi:10.1534/genetics.107.085415


A more recent version of this article appeared on March 1, 2008.


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Role of PCNA interactions in the mismatch repair-dependent processing of mitotic and meiotic recombination intermediates in yeast

1 NIEHS
2 Emory University
3 Duke University

* To whom correspondence should be addressed. E-mail: sue.robertson{at}duke.edu.

Submitted on December 4, 2007
Revised on January 7, 2008
Accepted on 10 January 2008


Abstract

The mismatch repair (MMR) system is critical not only for the repair of DNA replication errors, but also for the regulation of mitotic and meiotic recombination processes. In a manner analogous to its ability to remove replication errors, the MMR system can remove mismatches in heteroduplex recombination intermediates to generate gene conversion events. Alternatively, such mismatches can trigger an MMR-dependent anti-recombination activity that blocks the completion of recombination, thereby limiting interactions between diverged sequences. In Saccharomyces cerevisiae, the MMR proteins Msh3, Msh6 and Mlh1 interact with PCNA, and mutations that disrupt these interactions result in a mutator phenotype. In addition, some mutations in the PCNA-encoding POL30 gene increase mutation rates in an MMR-dependent manner. In the current study, pol30, mlh1 and msh6 mutants were used to examine whether MMR-PCNA interactions are similarly important during mitotic and meiotic recombination. We find that MMR-PCNA interactions are important for repairing mismatches formed during meiotic recombination, but play only a relatively minor role in regulating the fidelity of mitotic recombination.

Key Words: PCNA, mismatch repair, postmeiotic segregation, recombination fidelity, yeast




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C. Welz-Voegele and S. Jinks-Robertson
Sequence Divergence Impedes Crossover More Than Noncrossover Events During Mitotic Gap Repair in Yeast
Genetics, July 1, 2008; 179(3): 1251 - 1262.
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