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PMID: 9770504 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Orientation-dependent and sequence-specific expansions of CTG/CAG trinucleotide repeats in Saccharomyces cerevisiae.

Miret JJ, Pessoa-Brandão L, Lahue RS

Abstract

A quantitative and selective genetic assay was developed to monitor expansions of trinucleotide repeats (TNRs) in yeast. A promoter containing 25 repeats allows expression of a URA3 reporter gene and yields sensitivity to the drug 5-fluoroorotic acid. Expansion of the TNR to 30 or more repeats turns off URA3 and provides drug resistance. When integrated at either of two chromosomal loci, expansion rates were 1 x 10(-5) to 4 x 10(-5) per generation if CTG repeats were replicated on the lagging daughter strand. PCR analysis indicated that 5-28 additional repeats were present in 95% of the expanded alleles. No significant changes in CTG expansion rates occurred in strains deficient in the mismatch repair gene MSH2 or the recombination gene RAD52. The frequent nature of CTG expansions suggests that the threshold number for this repeat is below 25 in this system. In contrast, expansions of the complementary repeat CAG occurred at 500- to 1,000-fold lower rates, similar to a randomized (C,A,G) control sequence. When the reporter plasmid was inverted within the chromosome, switching the leading and lagging strands of replication, frequent expansions were observed only when CTG repeats resided on the lagging daughter strand. Among the rare CAG expansions, the largest gain in tract size was 38 repeats. The control repeats CTA and TAG showed no detectable rate of expansions. The orientation-dependence and sequence-specificity data support the model that expansions of CTG and CAG tracts result from aberrant DNA replication via hairpin-containing Okazaki fragments.

MeSH Terms
Base Sequence DNA Primers Polymerase Chain Reaction Saccharomyces cerevisiae/genetics Trinucleotide Repeats
Chemicals
DNA Primers
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Miret J J
The Eppley Institute for Research in Cancer and Allied Diseases, University of Nebraska Medical Center, Omaha, NE 68198-6805, USA.
Pessoa-Brandão L
Lahue R S
References (33)
33 references, click to expand
  1. Trinucleotide repeats associated with human disease.
    Nucleic Acids Res. 1997 Jun 15;25(12):2245-54 PMID: 9171073
  2. Expansion and deletion of CTG repeats from human disease genes are determined by the direction of replication in E. coli.
    Nat Genet. 1995 Jun;10(2):213-8 PMID: 7663518
  3. Simple repeat DNA is not replicated simply.
    Nat Genet. 1994 Feb;6(2):114-6 PMID: 8162063
  4. The distribution of the numbers of mutants in bacterial populations.
    J Genet. 1949 Dec;49(3):264-85 PMID: 24536673
  5. Alternative structures in duplex DNA formed within the trinucleotide repeats of the myotonic dystrophy and fragile X loci.
    Biochemistry. 1996 Apr 16;35(15):5041-53 PMID: 8664297
  6. Microsatellite instability in yeast: dependence on repeat unit size and DNA mismatch repair genes.
    Mol Cell Biol. 1997 May;17(5):2851-8 PMID: 9111357
  7. Stability of a CTG/CAG trinucleotide repeat in yeast is dependent on its orientation in the genome.
    Mol Cell Biol. 1997 Apr;17(4):2090-8 PMID: 9121457
  8. A system of shuttle vectors and yeast host strains designed for efficient manipulation of DNA in Saccharomyces cerevisiae.
    Genetics. 1989 May;122(1):19-27 PMID: 2659436
  9. Orientation dependence of trinucleotide CAG repeat instability in Saccharomyces cerevisiae.
    Mol Cell Biol. 1996 Dec;16(12):6617-22 PMID: 8943315
  10. Expansion and length-dependent fragility of CTG repeats in yeast.
    Science. 1998 Feb 6;279(5352):853-6 PMID: 9452383
  11. Conditional lethality of null mutations in RTH1 that encodes the yeast counterpart of a mammalian 5'- to 3'-exonuclease required for lagging strand DNA synthesis in reconstituted systems.
    J Biol Chem. 1995 Mar 3;270(9):4193-6 PMID: 7876174
  12. Trinucleotide repeats that expand in human disease form hairpin structures in vitro.
    Cell. 1995 May 19;81(4):533-40 PMID: 7758107
  13. Different mechanisms underlie DNA instability in Huntington disease and colorectal cancer.
    Am J Hum Genet. 1997 Apr;60(4):879-90 PMID: 9106534
  14. Dominant negative mutator mutations in the mutS gene of Escherichia coli.
    J Bacteriol. 1994 Sep;176(17):5393-400 PMID: 8071216
  15. Stability of triplet repeats of myotonic dystrophy and fragile X loci in human mutator mismatch repair cell lines.
    Hum Genet. 1996 Aug;98(2):151-7 PMID: 8698331
  16. Androgen receptor YAC transgenic mice carrying CAG 45 alleles show trinucleotide repeat instability.
    Hum Mol Genet. 1998 Jun;7(6):959-67 PMID: 9580659
  17. Molecular basis of genetic instability of triplet repeats.
    J Biol Chem. 1996 Feb 9;271(6):2875-8 PMID: 8621672
  18. Pathway correcting DNA replication errors in Saccharomyces cerevisiae.
    EMBO J. 1993 Apr;12(4):1467-73 PMID: 8385605
  19. Mechanisms of DNA expansion.
    Chromosoma. 1995 Oct;104(1):2-13 PMID: 7587591
  20. A novel mutation avoidance mechanism dependent on S. cerevisiae RAD27 is distinct from DNA mismatch repair.
    Cell. 1997 Jan 24;88(2):253-63 PMID: 9008166
  21. Trinucleotide repeats in neurogenetic disorders.
    Annu Rev Neurosci. 1996;19:79-107 PMID: 8833437
  22. Hairpin properties of single-stranded DNA containing a GC-rich triplet repeat: (CTG)15.
    Nucleic Acids Res. 1995 Mar 25;23(6):1050-9 PMID: 7731793
  23. Expansions of CAG repeat tracts are frequent in a yeast mutant defective in Okazaki fragment maturation.
    Hum Mol Genet. 1998 Jan;7(1):69-74 PMID: 9384605
  24. Palindromic sequences in heteroduplex DNA inhibit mismatch repair in yeast.
    Nature. 1989 Jul 27;340(6231):318-20 PMID: 2546083
  25. Instability of CAG and CTG trinucleotide repeats in Saccharomyces cerevisiae.
    Mol Cell Biol. 1997 Jun;17(6):3382-7 PMID: 9154837
  26. A positive selection for mutants lacking orotidine-5'-phosphate decarboxylase activity in yeast: 5-fluoro-orotic acid resistance.
    Mol Gen Genet. 1984;197(2):345-6 PMID: 6394957
  27. Destabilization of CAG trinucleotide repeat tracts by mismatch repair mutations in yeast.
    Hum Mol Genet. 1997 Mar;6(3):349-55 PMID: 9147637
  28. Destabilization of yeast micro- and minisatellite DNA sequences by mutations affecting a nuclease involved in Okazaki fragment processing (rad27) and DNA polymerase delta (pol3-t).
    Mol Cell Biol. 1998 May;18(5):2779-88 PMID: 9566897
  29. Heteroduplex DNA correction in Saccharomyces cerevisiae is mismatch specific and requires functional PMS genes.
    Mol Cell Biol. 1989 Oct;9(10):4432-40 PMID: 2685551
  30. GAA instability in Friedreich's Ataxia shares a common, DNA-directed and intraallelic mechanism with other trinucleotide diseases.
    Mol Cell. 1998 Mar;1(4):583-93 PMID: 9660942
  31. DNA sequence elements required for transcription initiation of the Schizosaccharomyces pombe ADH gene in Saccharomyces cerevisiae.
    Mol Gen Genet. 1990 Sep;223(3):407-16 PMID: 2270081
  32. High efficiency transformation of intact yeast cells using single stranded nucleic acids as a carrier.
    Curr Genet. 1989 Dec;16(5-6):339-46 PMID: 2692852
  33. Repeat expansion--all in a flap?
    Nat Genet. 1997 Jun;16(2):116-8 PMID: 9171819
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
1998-10-13
Pages
12438-43
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC22849
Subset
IM
Grants
NCI NIH HHS · P30 CA036727 · United States
NCI NIH HHS · P30 CA36727 · United States
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