首页> 外文期刊>Nucleic Acids Research >Slow repair of lipid peroxidation-induced DNA damage at p53 mutation hotspots in human cells caused by low turnover of a DNA glycosylase
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Slow repair of lipid peroxidation-induced DNA damage at p53 mutation hotspots in human cells caused by low turnover of a DNA glycosylase

机译:DNA糖基化酶的低周转率导致人细胞中p53突变热点处脂质过氧化诱导的DNA损伤的修复缓慢

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摘要

Repair of oxidative stress-and inflammation-induced DNA lesions by the base excision repair (BER) pathway prevents mutation, a form of genomic instability which is often observed in cancer as 'mutation hotspots'. This suggests that some sequences have inherent mutability, possibly due to sequence-related differences in repair. This study has explored intrinsic mutability as a consequence of sequence-specific repair of lipid peroxidation-induced DNA adduct, 1, N-6-ethenoadenine (epsilon A). For the first time, we observed significant delay in repair of is an element of A at mutation hotspots in the tumor suppressor gene p53 compared to non-hotspots in live human hepatocytes and endothelial cells using an in-cell real time PCR-based method. In-cell and in vitro mechanism studies revealed that this delay in repair was due to inefficient turnover of N-methylpurine-DNA glycosylase (MPG), which initiates BER of epsilon A. We determined that the product dissociation rate of MPG at the hotspot codons was approximate to 5-12-fold lower than the non-hotspots, suggesting a previously unknown mechanism for slower repair at mutation hotspots and implicating sequence-related variability of DNA repair efficiency to be responsible for mutation hotspot signatures.
机译:通过碱基切除修复(BER)途径修复氧化应激和炎症诱导的DNA损伤可防止突变,这是一种基因组不稳定性,通常在癌症中被称为“突变热点”。这表明某些序列具有固有的可变性,这可能是由于序列相关的修复差异所致。这项研究探索了固有的可变性,这是脂质过氧化诱导的DNA加合物1,N-6-乙炔腺嘌呤(εA)进行序列特异性修复的结果。首次,我们发现使用基于细胞内实时PCR的方法与活人肝细胞和内皮细胞中的非热点相比,在肿瘤抑制基因p53中突变热点处的A元素修复明显延迟。细胞内和体外机制研究表明,修复的延迟是由于N-甲基嘌呤-DNA糖基化酶(MPG)转换效率低下而引起的,它启动了εA的BER。大约比非热点低5-12倍,这表明突变突变点修复速度较慢的先前未知机制,暗示DNA修复效率的序列相关变异性是突变热点特征的原因。

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