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首页> 外文期刊>Nucleic Acids Research >Disease-associated CAG center dot CTG triplet repeats expand rapidly in non-dividing mouse cells, but cell cycle arrest is insufficient to drive expansion
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Disease-associated CAG center dot CTG triplet repeats expand rapidly in non-dividing mouse cells, but cell cycle arrest is insufficient to drive expansion

机译:与疾病相关的CAG中心点CTG三联体重复在非分裂小鼠细胞中迅速扩增,但细胞周期停滞不足以驱动扩增

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摘要

Genetically unstable expanded CAG center dot CTG trinucleotide repeats are causal in a number of human disorders, including Huntington disease and myotonic dystrophy type 1. It is still widely assumed that DNA polymerase slippage during replication plays an important role in the accumulation of expansions. Nevertheless, somatic mosaicism correlates poorly with the proliferative capacity of the tissue and rates of cell turnover, suggesting that expansions can occur in the absence of replication. We monitored CAG center dot CTG repeat instability in transgenic mouse cells arrested by chemical or genetic manipulation of the cell cycle and generated unequivocal evidence for the continuous accumulation of repeat expansions in non-dividing cells. Importantly, the rates of expansion in non-dividing cells were at least as high as those of proliferating cells. These data are consistent with a major role for cell division-independent expansion in generating somatic mosaicism in vivo. Although expansions can accrue in non-dividing cells, we also show that cell cycle arrest is not sufficient to drive instability, implicating other factors as the key regulators of tissue-specific instability. Our data reveal that de novo expansion events are not limited to S-phase and further support a cell division-independent mutational pathway
机译:遗传上不稳定的扩展CAG中心点CTG三核苷酸重复序列在许多人类疾病中均是因果关系,包括亨廷顿病和1型肌强直性营养不良。人们仍然普遍认为复制过程中的DNA聚合酶滑移在扩展积累中起着重要作用。然而,体细胞镶嵌性与组织的增殖能力和细胞更新率的相关性很差,这表明在没有复制的情况下可能发生扩张。我们监测了通过化学或遗传操纵细胞周期而被阻滞的转基因小鼠细胞中CAG中心点CTG重复的不稳定性,并产生了明确的证据表明重复扩增在非分裂细胞中不断积累。重要的是,非分裂细胞的扩增速率至少与增殖细胞的扩增速率一样高。这些数据与细胞分裂非依赖性扩增在体内产生体细胞镶嵌的主要作用是一致的。尽管在不分裂的细胞中会发生扩增,但我们也表明细胞周期停滞不足以驱动不稳定性,这牵涉其他因素作为组织特异性不稳定性的关键调节因子。我们的数据表明,从头扩增事件不仅限于S期,而且进一步支持了不依赖细胞分裂的突变途径

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