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Alleles of the yeast Pms1 mismatch-repair gene that differentially affect recombination- and replication-related processes.

Publication ,  Journal Article
Welz-Voegele, C; Stone, JE; Tran, PT; Kearney, HM; Liskay, RM; Petes, TD; Jinks-Robertson, S
Published in: Genetics
November 2002

Mismatch-repair (MMR) systems promote eukaryotic genome stability by removing errors introduced during DNA replication and by inhibiting recombination between nonidentical sequences (spellchecker and antirecombination activities, respectively). Following a common mismatch-recognition step effected by MutS-homologous Msh proteins, homologs of the bacterial MutL ATPase (predominantly the Mlh1p-Pms1p heterodimer in yeast) couple mismatch recognition to the appropriate downstream processing steps. To examine whether the processing steps in the spellchecker and antirecombination pathways might differ, we mutagenized the yeast PMS1 gene and screened for mitotic separation-of-function alleles. Two alleles affecting only the antirecombination function of Pms1p were identified, one of which changed an amino acid within the highly conserved ATPase domain. To more specifically address the role of ATP binding/hydrolysis in MMR-related processes, we examined mutations known to compromise the ATPase activity of Pms1p or Mlh1p with respect to the mitotic spellchecker and antirecombination activities and with respect to the repair of mismatches present in meiotic recombination intermediates. The results of these analyses confirm a differential requirement for the Pms1p ATPase activity in replication vs. recombination processes, while demonstrating that the Mlh1p ATPase activity is important for all examined MMR-related functions.

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Published In

Genetics

DOI

ISSN

0016-6731

Publication Date

November 2002

Volume

162

Issue

3

Start / End Page

1131 / 1145

Location

United States

Related Subject Headings

  • Two-Hybrid System Techniques
  • Sequence Analysis, DNA
  • Saccharomyces cerevisiae Proteins
  • Saccharomyces cerevisiae
  • Recombination, Genetic
  • Protein Structure, Tertiary
  • Mutation
  • MutL Proteins
  • MutL Protein Homolog 1
  • Fungal Proteins
 

Citation

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Welz-Voegele, C., Stone, J. E., Tran, P. T., Kearney, H. M., Liskay, R. M., Petes, T. D., & Jinks-Robertson, S. (2002). Alleles of the yeast Pms1 mismatch-repair gene that differentially affect recombination- and replication-related processes. Genetics, 162(3), 1131–1145. https://doi.org/10.1093/genetics/162.3.1131
Welz-Voegele, Caroline, Jana E. Stone, Phuoc T. Tran, Hutton M. Kearney, R Michael Liskay, Thomas D. Petes, and Sue Jinks-Robertson. “Alleles of the yeast Pms1 mismatch-repair gene that differentially affect recombination- and replication-related processes.Genetics 162, no. 3 (November 2002): 1131–45. https://doi.org/10.1093/genetics/162.3.1131.
Welz-Voegele C, Stone JE, Tran PT, Kearney HM, Liskay RM, Petes TD, et al. Alleles of the yeast Pms1 mismatch-repair gene that differentially affect recombination- and replication-related processes. Genetics. 2002 Nov;162(3):1131–45.
Welz-Voegele, Caroline, et al. “Alleles of the yeast Pms1 mismatch-repair gene that differentially affect recombination- and replication-related processes.Genetics, vol. 162, no. 3, Nov. 2002, pp. 1131–45. Pubmed, doi:10.1093/genetics/162.3.1131.
Welz-Voegele C, Stone JE, Tran PT, Kearney HM, Liskay RM, Petes TD, Jinks-Robertson S. Alleles of the yeast Pms1 mismatch-repair gene that differentially affect recombination- and replication-related processes. Genetics. 2002 Nov;162(3):1131–1145.

Published In

Genetics

DOI

ISSN

0016-6731

Publication Date

November 2002

Volume

162

Issue

3

Start / End Page

1131 / 1145

Location

United States

Related Subject Headings

  • Two-Hybrid System Techniques
  • Sequence Analysis, DNA
  • Saccharomyces cerevisiae Proteins
  • Saccharomyces cerevisiae
  • Recombination, Genetic
  • Protein Structure, Tertiary
  • Mutation
  • MutL Proteins
  • MutL Protein Homolog 1
  • Fungal Proteins