Mutations in Yeast Replication Proteins That Increase CAG/CTG Expansions Also Increase Repeat Fragility
Open Access
- 1 November 2003
- journal article
- Published by Taylor & Francis in Molecular and Cellular Biology
- Vol. 23 (21) , 7849-7860
- https://doi.org/10.1128/mcb.23.21.7849-7860.2003
Abstract
Expansion of trinucleotide repeats (TNRs) is the causative mutation in several human genetic diseases. Expanded TNR tracts are both unstable (changing in length) and fragile (displaying an increased propensity to break). We have investigated the relationship between fidelity of lagging-strand replication and both stability and fragility of TNRs. We devised a new yeast artificial chromomosme (YAC)-based assay for chromosome breakage to analyze fragility of CAG/CTG tracts in mutants deficient for proteins involved in lagging-strand replication: Fen1/Rad27, an endo/exonuclease involved in Okazaki fragment maturation, the nuclease/helicase Dna2, RNase HI, DNA ligase, polymerase δ, and primase. We found that deletion of RAD27 caused a large increase in breakage of short and long CAG/CTG tracts, and defects in DNA ligase and primase increased breakage of long tracts. We also found a correlation between mutations that increase CAG/CTG tract breakage and those that increase repeat expansion. These results suggest that processes that generate strand breaks, such as faulty Okazaki fragment processing or DNA repair, are an important source of TNR expansions.Keywords
This publication has 100 references indexed in Scilit:
- Replication and Expansion of Trinucleotide Repeats in YeastMolecular and Cellular Biology, 2003
- DNA Ligase I Competes with FEN1 to Expand Repetitive DNA Sequences in VitroJournal of Biological Chemistry, 2002
- Evidence of cis-acting factors in replication-mediated trinucleotide repeat instability in primate cellsNature Genetics, 2002
- Structural features of trinucleotide repeats associated with DNA expansionBiochemistry and Cell Biology, 2001
- Mini‐ and microsatellite expansions: the recombination connectionEMBO Reports, 2000
- Trinucleotide repeats affect DNA replication in vivoNature Genetics, 1997
- Repeat expansion — all in flap?Nature Genetics, 1997
- Enzymes and Reactions at the Eukaryotic DNA Replication ForkJournal of Biological Chemistry, 1997
- The saccharomyces PIF1 DNA helicase inhibits telomere elongation and de novo telomere formationCell, 1994
- Recombination occurs during telomere formation in yeastNature, 1989