DNA repair in the trinucleotide repeat disorders

被引:71
|
作者
Jones, Lesley [1 ]
Houlden, Henry [2 ,3 ]
Tabrizi, Sarah J. [4 ]
机构
[1] Cardiff Univ, MRC, Ctr Neuropsychiat Genet & Gen, Inst Psychol Med & Clin Neurosci, Cardiff, S Glam, Wales
[2] Dept Mol Neurosci, Queen Sq, London, England
[3] MRC, Ctr Neuromuscular Dis, Inst Neurol, Queen Sq, London, England
[4] UCL, Inst Neurol, Dept Neurodegenerat Dis, UCL Huntingtons Dis Ctr, London, England
来源
LANCET NEUROLOGY | 2017年 / 16卷 / 01期
基金
英国惠康基金; 英国医学研究理事会;
关键词
SOMATIC INSTABILITY; MUTS-BETA; HUNTINGTONS-DISEASE; CAG REPEATS; EXPANSION; DAMAGE; PROTEINS; ATAXIA; MECHANISMS; MOUSE;
D O I
10.1016/S1474-4422(16)30350-7
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Background Inherited diseases caused by unstable repeated DNA sequences are rare, but together represent a substantial cause of morbidity. Trinudeotide repeat disorders are severe, usually life-shortening, neurological disorders caused by nucleotide expansions, and most have no disease-modifying treatments. Longer repeat expansions are associated with genetic anticipation (ie, earlier disease onset in successive generations), although the differences in age at onset are not entirely accounted for by repeat length. Such phenotypic variation within disorders implies the existence of additional modifying factors in pathways that can potentially be modulated to treat disease. Recent developments A genome-wide association study detected genetic modifiers of age at onset in Huntington's disease. Similar findings were seen in the spinocerebellar ataxias, indicating an association between DNA damage response and repair pathways and the age at onset of disease. These studies also suggest that a common genetic mechanism modulates age at onset across polyglutamine diseases and could extend to other repeat expansion disorders. Genetic defects in DNA repair underlie other neurodegenerative disorders (eg, ataxia-telangiectasia), and DNA double-strand breaks are crucial to the modulation of early gene expression, which provides a mechanistic link between DNA repair and neurodegeneration. Mismatch and base-excision repair are important in the somatic expansion of repeated sequences in mouse models of trinudeotide repeat disorders, and somatic expansion of the expanded CAG tract in HTT correlates with age at onset of Huntington's disease and other trinudeotide repeat disorders. Where next? To understand the common genetic architecture of trinudeotide repeat disorders and any further genetic susceptibilities in individual disorders, genetic analysis with increased numbers of variants and sample sizes is needed, followed by sequencing approaches to define the phenotype-modifying variants. The findings must then be translated into cell biology analyses to elucidate the mechanisms through which the genetic variants operate. Genes that have roles in the DNA damage response could underpin a common DNA repeat-based mechanism and provide new therapeutic targets (and hence therapeutics) in multiple trinudeotide repeat disorders.
引用
收藏
页码:88 / 96
页数:9
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