Home LiteratureArticle Details
PMID: 19997493 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, N.I.H., Intramural Research Support, Non-U.S. Gov't

Stoichiometry of base excision repair proteins correlates with increased somatic CAG instability in striatum over cerebellum in Huntington's disease transgenic mice.

PLoS genetics ·Vol. 5 ·No. 12 ·2009-12-00 ·Pages e1000749

Goula AV, Berquist BR, Wilson DM, Wheeler VC, Trottier Y, Merienne K

Abstract

Huntington's disease (HD) is a progressive neurodegenerative disorder caused by expansion of an unstable CAG repeat in the coding sequence of the Huntingtin (HTT) gene. Instability affects both germline and somatic cells. Somatic instability increases with age and is tissue-specific. In particular, the CAG repeat sequence in the striatum, the brain region that preferentially degenerates in HD, is highly unstable, whereas it is rather stable in the disease-spared cerebellum. The mechanisms underlying the age-dependence and tissue-specificity of somatic CAG instability remain obscure. Recent studies have suggested that DNA oxidation and OGG1, a glycosylase involved in the repair of 8-oxoguanine lesions, contribute to this process. We show that in HD mice oxidative DNA damage abnormally accumulates at CAG repeats in a length-dependent, but age- and tissue-independent manner, indicating that oxidative DNA damage alone is not sufficient to trigger somatic instability. Protein levels and activities of major base excision repair (BER) enzymes were compared between striatum and cerebellum of HD mice. Strikingly, 5'-flap endonuclease activity was much lower in the striatum than in the cerebellum of HD mice. Accordingly, Flap Endonuclease-1 (FEN1), the main enzyme responsible for 5'-flap endonuclease activity, and the BER cofactor HMGB1, both of which participate in long-patch BER (LP-BER), were also significantly lower in the striatum compared to the cerebellum. Finally, chromatin immunoprecipitation experiments revealed that POLbeta was specifically enriched at CAG expansions in the striatum, but not in the cerebellum of HD mice. These in vivo data fit a model in which POLbeta strand displacement activity during LP-BER promotes the formation of stable 5'-flap structures at CAG repeats representing pre-expanded intermediate structures, which are not efficiently removed when FEN1 activity is constitutively low. We propose that the stoichiometry of BER enzymes is one critical factor underlying the tissue selectivity of somatic CAG expansion.

MeSH Terms
Aging/metabolism Animals Base Sequence Cerebellum/enzymology,metabolism,pathology DNA/chemistry DNA Damage DNA Glycosylases/metabolism DNA Polymerase beta/metabolism DNA Repair/genetics DNA Repair Enzymes/genetics,metabolism DNA-(Apurinic or Apyrimidinic Site) Lyase/metabolism Flap Endonucleases/metabolism Genomic Instability/genetics Huntington Disease/genetics Mice Mice, Transgenic Models, Genetic Molecular Sequence Data Neostriatum/enzymology,metabolism,pathology Nucleic Acid Conformation Organ Specificity/genetics Substrate Specificity Trinucleotide Repeat Expansion/genetics
Chemicals
DNA DNA Polymerase beta Flap Endonucleases DNA Glycosylases Ogg1 protein, mouse Apex1 protein, mouse DNA-(Apurinic or Apyrimidinic Site) Lyase DNA Repair Enzymes
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Goula Agathi-Vassiliki
Department of Neurobiology and Genetics, Institute of Genetics and Molecular and Cellular Biology, UMR 7104-CNRS/INSERM/UdS, Illkirch, France.
Berquist Brian R
Wilson David M
Wheeler Vanessa C
Trottier Yvon
Merienne Karine
Conflict of Interest

The authors have declared that no competing interests exist.

References (55)
55 references, click to expand
  1. Pms2 is a genetic enhancer of trinucleotide CAG.CTG repeat somatic mosaicism: implications for the mechanism of triplet repeat expansion.
    Hum Mol Genet. 2004 Aug 15;13(16):1815-25 PMID: 15198993
  2. Triplet repeat mutation length gains correlate with cell-type specific vulnerability in Huntington disease brain.
    Hum Mol Genet. 2007 May 15;16(10):1133-42 PMID: 17409200
  3. Concerted action of exonuclease and Gap-dependent endonuclease activities of FEN-1 contributes to the resolution of triplet repeat sequences (CTG)n- and (GAA)n-derived secondary structures formed during maturation of Okazaki fragments.
    J Biol Chem. 2007 Feb 9;282(6):3465-77 PMID: 17138563
  4. MSH2 ATPase domain mutation affects CTG*CAG repeat instability in transgenic mice.
    PLoS Genet. 2009 May;5(5):e1000482 PMID: 19436705
  5. Ape1 abasic endonuclease activity is regulated by magnesium and potassium concentrations and is robust on alternative DNA structures.
    J Mol Biol. 2005 Feb 4;345(5):1003-14 PMID: 15644200
  6. Expansion and length-dependent fragility of CTG repeats in yeast.
    Science. 1998 Feb 6;279(5352):853-6 PMID: 9452383
  7. Repair and mutagenesis at oxidized DNA lesions in the developing brain of wild-type and Ogg1-/- mice.
    Oncogene. 2006 Apr 20;25(17):2425-32 PMID: 16369492
  8. Trinucleotide repeat length instability and age of onset in Huntington's disease.
    Nat Genet. 1993 Aug;4(4):387-92 PMID: 8401587
  9. Slipped (CTG)*(CAG) repeats can be correctly repaired, escape repair or undergo error-prone repair.
    Nat Struct Mol Biol. 2005 Aug;12(8):654-62 PMID: 16025129
  10. Trinucleotide repeats that expand in human disease form hairpin structures in vitro.
    Cell. 1995 May 19;81(4):533-40 PMID: 7758107
  11. Somatic expansion of the Huntington's disease CAG repeat in the brain is associated with an earlier age of disease onset.
    Hum Mol Genet. 2009 Aug 15;18(16):3039-47 PMID: 19465745
  12. Inhibition of Ape1 nuclease activity by lead, iron, and cadmium.
    Environ Health Perspect. 2004 May;112(7):799-804 PMID: 15159209
  13. Intergenerational and striatal CAG repeat instability in Huntington's disease knock-in mice involve different DNA repair genes.
    Neurobiol Dis. 2009 Jan;33(1):37-47 PMID: 18930147
  14. Base damage and single-strand break repair: mechanisms and functional significance of short- and long-patch repair subpathways.
    DNA Repair (Amst). 2007 Apr 1;6(4):398-409 PMID: 17129767
  15. DNA substrates containing defined oxidative base lesions and their application to study substrate specificities of base excision repair enzymes.
    Prog Nucleic Acid Res Mol Biol. 2001;68:207-21 PMID: 11554298
  16. Novel nuclear and mitochondrial glycosylases revealed by disruption of the mouse Nth1 gene encoding an endonuclease III homolog for repair of thymine glycols.
    EMBO J. 2002 Jul 1;21(13):3486-93 PMID: 12093749
  17. Dramatic tissue-specific mutation length increases are an early molecular event in Huntington disease pathogenesis.
    Hum Mol Genet. 2003 Dec 15;12(24):3359-67 PMID: 14570710
  18. Instability of highly expanded CAG repeats in mice transgenic for the Huntington's disease mutation.
    Nat Genet. 1997 Feb;15(2):197-200 PMID: 9020849
  19. Length-dependent gametic CAG repeat instability in the Huntington's disease knock-in mouse.
    Hum Mol Genet. 1999 Jan;8(1):115-22 PMID: 9887339
  20. The RAD2 domain of human exonuclease 1 exhibits 5' to 3' exonuclease and flap structure-specific endonuclease activities.
    J Biol Chem. 1999 Dec 31;274(53):37763-9 PMID: 10608837
  21. Repeat instability: mechanisms of dynamic mutations.
    Nat Rev Genet. 2005 Oct;6(10):729-42 PMID: 16205713
  22. Fen1 does not control somatic hypermutability of the (CTG)(n)*(CAG)(n) repeat in a knock-in mouse model for DM1.
    FEBS Lett. 2006 Oct 2;580(22):5208-14 PMID: 16978612
  23. Modulation of the 5'-deoxyribose-5-phosphate lyase and DNA synthesis activities of mammalian DNA polymerase beta by apurinic/apyrimidinic endonuclease 1.
    J Biol Chem. 2004 Jun 11;279(24):25268-75 PMID: 15078879
  24. HMGB1 is a cofactor in mammalian base excision repair.
    Mol Cell. 2007 Sep 7;27(5):829-41 PMID: 17803946
  25. Coordination of steps in single-nucleotide base excision repair mediated by apurinic/apyrimidinic endonuclease 1 and DNA polymerase beta.
    J Biol Chem. 2007 May 4;282(18):13532-41 PMID: 17355977
  26. DNA instability in postmitotic neurons.
    Proc Natl Acad Sci U S A. 2008 Mar 4;105(9):3467-72 PMID: 18299573
  27. Msh2 deficiency prevents in vivo somatic instability of the CAG repeat in Huntington disease transgenic mice.
    Nat Genet. 1999 Dec;23(4):471-3 PMID: 10581038
  28. Exon 1 of the HD gene with an expanded CAG repeat is sufficient to cause a progressive neurological phenotype in transgenic mice.
    Cell. 1996 Nov 1;87(3):493-506 PMID: 8898202
  29. Inhibition of FEN-1 processing by DNA secondary structure at trinucleotide repeats.
    Mol Cell. 1999 Dec;4(6):1079-85 PMID: 10635332
  30. Oxidative damage in Huntington's disease pathogenesis.
    Antioxid Redox Signal. 2006 Nov-Dec;8(11-12):2061-73 PMID: 17034350
  31. FEN1 stimulation of DNA polymerase beta mediates an excision step in mammalian long patch base excision repair.
    J Biol Chem. 2000 Feb 11;275(6):4460-6 PMID: 10660619
  32. CTG/CAG repeat instability is modulated by the levels of human DNA ligase I and its interaction with proliferating cell nuclear antigen: a distinction between replication and slipped-DNA repair.
    J Biol Chem. 2009 Sep 25;284(39):26631-45 PMID: 19628465
  33. Structural analysis of slipped-strand DNA (S-DNA) formed in (CTG)n. (CAG)n repeats from the myotonic dystrophy locus.
    Nucleic Acids Res. 1998 Feb 1;26(3):816-23 PMID: 9443975
  34. DNA repair in mammalian cells: Base excision repair: the long and short of it.
    Cell Mol Life Sci. 2009 Mar;66(6):981-93 PMID: 19153658
  35. 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
  36. Trinucleotide expansion in haploid germ cells by gap repair.
    Nat Genet. 2001 Apr;27(4):407-11 PMID: 11279522
  37. OGG1 initiates age-dependent CAG trinucleotide expansion in somatic cells.
    Nature. 2007 May 24;447(7143):447-52 PMID: 17450122
  38. Mitochondrial and nuclear DNA-repair capacity of various brain regions in mouse is altered in an age-dependent manner.
    Neurobiol Aging. 2006 Aug;27(8):1129-36 PMID: 16005114
  39. DNA polymerase beta-catalyzed-PCNA independent long patch base excision repair synthesis: a mechanism for repair of oxidatively damaged DNA ends in post-mitotic brain.
    J Neurochem. 2008 Nov;107(3):734-44 PMID: 18752643
  40. Features of trinucleotide repeat instability in vivo.
    Cell Res. 2008 Jan;18(1):198-213 PMID: 18166978
  41. Somatic and gonadal mosaicism of the Huntington disease gene CAG repeat in brain and sperm.
    Nat Genet. 1994 Apr;6(4):409-14 PMID: 8054984
  42. Mapping the protein-DNA interface and the metal-binding site of the major human apurinic/apyrimidinic endonuclease.
    J Mol Biol. 2000 May 5;298(3):447-59 PMID: 10772862
  43. Full-length human mutant huntingtin with a stable polyglutamine repeat can elicit progressive and selective neuropathogenesis in BACHD mice.
    J Neurosci. 2008 Jun 11;28(24):6182-95 PMID: 18550760
  44. Mismatch repair gene Msh2 modifies the timing of early disease in Hdh(Q111) striatum.
    Hum Mol Genet. 2003 Feb 1;12(3):273-81 PMID: 12554681
  45. Long patch base excision repair proceeds via coordinated stimulation of the multienzyme DNA repair complex.
    J Biol Chem. 2009 May 29;284(22):15158-72 PMID: 19329425
  46. Gene regulation and DNA damage in the ageing human brain.
    Nature. 2004 Jun 24;429(6994):883-91 PMID: 15190254
  47. Factors associated with HD CAG repeat instability in Huntington disease.
    J Med Genet. 2007 Nov;44(11):695-701 PMID: 17660463
  48. Nuclease-deficient FEN-1 blocks Rad51/BRCA1-mediated repair and causes trinucleotide repeat instability.
    Mol Cell Biol. 2003 Sep;23(17):6063-74 PMID: 12917330
  49. Genetic instability induced by overexpression of DNA ligase I in budding yeast.
    Genetics. 2005 Oct;171(2):427-41 PMID: 15965249
  50. Coordination between polymerase beta and FEN1 can modulate CAG repeat expansion.
    J Biol Chem. 2009 Oct 9;284(41):28352-28366 PMID: 19674974
  51. Flap endonuclease 1: a central component of DNA metabolism.
    Annu Rev Biochem. 2004;73:589-615 PMID: 15189154
  52. A method for detecting abasic sites in living cells: age-dependent changes in base excision repair.
    Proc Natl Acad Sci U S A. 2000 Jan 18;97(2):686-91 PMID: 10639140
  53. Dysregulation of the peroxisome proliferator-activated receptor target genes by XPD mutations.
    Mol Cell Biol. 2005 Jul;25(14):6065-76 PMID: 15988019
  54. Haploinsufficiency of yeast FEN1 causes instability of expanded CAG/CTG tracts in a length-dependent manner.
    Gene. 2007 May 15;393(1-2):110-5 PMID: 17383831
  55. Characterization of abasic endonuclease activity of human Ape1 on alternative substrates, as well as effects of ATP and sequence context on AP site incision.
    J Mol Biol. 2008 May 23;379(1):17-27 PMID: 18439621
Article Info
Journal
PLoS genetics
Abbr.
PLoS Genet
ISSN
1553-7404
Published
2009-12-00
Epub
2009-00-04
Pages
e1000749
Language
English
Region
United States
NLM ID
101239074
PMCID
PMC2778875
Subset
IM
Grants
NINDS NIH HHS · R01 NS049206 · United States
Intramural NIH HHS · United States
NINDS NIH HHS · NS049206 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com