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Replication fork collapse is a major cause of the high mutation frequency at three-base lesion clusters

机译:复制叉塌陷是三碱基病变簇高突变频率的主要原因

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Unresolved repair of clustered DNA lesions can lead to the formation of deleterious double strand breaks (DSB) or to mutation induction. Here, we investigated the outcome of clusters composed of base lesions for which base excision repair enzymes have different kinetics of excision/incision. We designed multiply damaged sites (MDS) composed of a rapidly excised uracil (U) and two oxidized bases, 5-hydroxyuracil (hU) and 8-oxoguanine (oG), excised more slowly. Plasmids harboring these U-oG/hU MDS-carrying duplexes were introduced into Escherichia coli cells either wild type or deficient for DNA n-glycosylases. Induction of DSB was estimated from plasmid survival and mutagenesis determined by sequencing of surviving clones. We show that a large majority of MDS is converted to DSB, whereas almost all surviving clones are mutated at hU. We demonstrate that mutagenesis at hU is correlated with excision of the U placed on the opposite strand. We propose that excision of U by Ung initiates the loss of U-oG-carrying strand, resulting in enhanced mutagenesis at the lesion present on the opposite strand. Our results highlight the importance of the kinetics of excision by base excision repair DNA n-glycosylases in the processing and fate of MDS and provide evidence for the role of strand loss/replication fork collapse during the processing of MDS on their mutational consequences.
机译:簇状DNA损伤的未解决修复可能导致有害双链断裂(DSB)的形成或突变的诱导。在这里,我们调查了由基本病变组成的簇的结果,对于这些簇,基本切除修复酶具有不同的切除/切割动力学。我们设计了由快速切除的尿嘧啶(U)和两个氧化碱基5-羟基尿嘧啶(hU)和8-氧代鸟嘌呤(oG)组成的多重损伤位点(MDS),其切除速度较慢。将携带这些U-oG / hU MDS的双链体的质粒导入野生型或DNA n-糖基化酶缺陷的大肠杆菌细胞中。通过质粒存活和通过对存活克隆的测序确定的诱变来估计DSB的诱导。我们表明,大多数MDS转换为DSB,而几乎所有存活的克隆都在hU发生突变。我们证明在hU的诱变与放置在相反链上的U的切除相关。我们建议由Ung切除U会引发携带U-oG的链的丢失,从而导致在相反链上的病变处诱变增强。我们的结果突出了碱基切除修复DNA正糖基化酶在MDS加工和命运中进行切除动力学的重要性,并为MDS加工过程中链丢失/复制叉塌陷对其突变后果的作用提供了证据。

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