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Vera Gorbunova, Andrei Seluanov, David Mittelman, John H. Wilson, Genome-wide demethylation destabilizes CTG·CAG trinucleotide repeats in mammalian cells, Human Molecular Genetics, Volume 13, Issue 23, 1 December 2004, Pages 2979–2989, https://doi.org/10.1093/hmg/ddh317
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Abstract
Many neurological diseases, including myotonic dystrophy, Huntington's disease and several spinocerebellar ataxias, result from intergenerational increases in the length of a CTG·CAG repeat tract. Although the basis for intergenerational repeat expansion is unclear, repeat tracts are especially unstable during germline development and production of gametes. Mammalian development is characterized by waves of genome-wide demethylation and remethylation. To test whether changes in methylation status might contribute to trinucleotide repeat instability, we examined the effects of DNA methyltransferase inhibitors on trinucleotide repeat stability in mammalian cells. Using a selectable genetic system for detection of repeat contractions in CHO cells, we showed that the rate of contractions increased >1000-fold upon treatment with the DNA methyltransferase inhibitor 5-aza-deoxycytidine (5-aza-CdR). The link between DNA demethylation and repeat instability was strengthened by similar results obtained with hydralazine treatment, which inhibits expression of DNA methyltransferase. In human cells from myotonic dystrophy patients, treatment with 5-aza-CdR strongly destabilized repeat tracts in the DMPK gene, with a clear bias toward expansion. The bias toward expansion events and changes in repeat length that occur in jumps, rather than by accumulation of small changes, are reminiscent of the intergenerational repeat instability observed in human patients. The dramatic destabilizing effect of DNA methyltransferase inhibitors supports the hypothesis that changes in methylation patterns during epigenetic reprograming may trigger the intergenerational repeat expansions that lead to disease.
- myotonic dystrophy
- hydralazine
- huntington's disease
- adenine phosphoribosyltransferase
- cell lines
- cho cells
- deoxycytidine
- dna
- dna modification methylases
- genes
- genome
- germ cells
- mammals
- methylation
- trinucleotide repeats
- genetics
- epigenetics
- dna methyltransferase inhibitors
- wave - physical agent
- demethylation