首页> 外文期刊>Radiation Research: Official Organ of the Radiation Research Society >Single-Strand Annealing, Conservative Homologous Recombination, Nonhomologous DNA End Joining, and the Cell Cycle-Dependent Repair of DNA Double-Strand Breaks Induced by Sparsely or Densely Ionizing Radiation
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Single-Strand Annealing, Conservative Homologous Recombination, Nonhomologous DNA End Joining, and the Cell Cycle-Dependent Repair of DNA Double-Strand Breaks Induced by Sparsely or Densely Ionizing Radiation

机译:单链退火,保守同源重组,非同源DNA末端连接以及稀疏或密集电离辐射诱导的DNA双链断裂的细胞周期依赖性修复

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The cell cycle-dependent relative contributions of error-prone single-strand annealing (SSA), error-free conservative homologous recombination (HR), and potentially error-prone nonhomologous DNA end joining (NHEJ) to repair simple (induced by 200 kV X rays) or complex (induced by Am-241 a particles) DNA double-strand breaks (DSBs) in Chinese hamster ovary cells are reported for the first time. Cells of the parental cell line AA8 and its derivatives UV41 (SSA-deficient), irs1SF (HR-deficient) and V3 (NHEJ-deficient) were synchronized in G, or in S phase, and survival responses after exposure to either type of radiation were measured. It is demonstrated for the first time that in G(1)-phase SSA is negligible for the repair of DSBs of various complexities. HR-deficient cells exposed to X rays or a particles in G, phase show enhanced radiosensitivity, but this does not necessarily mean that HR is important in G, phase. NHEJ appears to be the most important (if not the only) mechanism in G, phase acting efficiently on simple DSBs, but complex DSBs are a less preferred target. In contrast to X rays, NHEJ-deficient cells show no cell cycle-dependent variation in sensitivity to a particles. Surprisingly, when these cells are exposed to X rays in G, phase, they are even more sensitive compared to a particles. It is also shown for the first time that in S phase all three mechanisms play a role in the repair of simple and complex DSBs. A defect in SSA confers radiosensitivity to cells in S phase, suggesting that the error-prone SSA mechanism is important for the repair of specific simple and complex DSBs that are not a substrate for HR or NHEJ. The most important mechanism in S phase for the repair of simple and complex DSBs is HR. This is also emphasized by the finding that irs1SF cells, after complementation of their HR defect by human XRCC3 cDNA, show a greater radioresistance than parental cells, whereas resistance to mitomycin C is only partially restored. Complementation confers a greater resistance to a particles than X rays, suggesting an important role of HR, especially for the repair of complex DSBs. In S phase, NHEJ is more important than SSA for the repair of simple DSBs, but SSA is more important than NHEJ for the repair of complex DSBs.
机译:易错单链退火(SSA),无错保守同源重组(HR)和潜在易错非同源DNA末端连接(NHEJ)修复简单(由200 kV X诱导)的细胞周期依赖性相对贡献射线或复合物(由Am-241 a颗粒诱导)首次报道了中国仓鼠卵巢细胞中的DNA双链断裂(DSB)。亲本细胞系AA8及其衍生物UV41(SSA缺陷),irs1SF(HR缺陷)和V3(NHEJ缺陷)的细胞在G期或S期同步,并且在暴露于任何一种辐射后存活响应被测量。首次证明,在G(1)相中,SSA对于各种复杂程度的DSB修复是微不足道的。暴露于X射线或G相中颗粒的HR缺陷细胞显示出增强的放射敏感性,但这并不一定意味着HR在G相中很重要。 NHEJ似乎是G相中最重要(即使不是唯一)的机制,可以有效地作用于简单的DSB,但复杂的DSB则不是首选。与X射线相反,缺乏NHEJ的细胞对颗粒的敏感性没有细胞周期依赖性的变化。出乎意料的是,当这些细胞在G相中暴露于X射线时,与粒子相比,它们甚至更加敏感。还首次表明,在S阶段,所有三种机制都在简单和复杂DSB的修复中起作用。 SSA中的缺陷使S期细胞具有放射敏感性,这表明容易出错的SSA机制对于修复不是HR或NHEJ底物的特定简单和复杂DSB至关重要。 S期修复简单和复杂DSB的最重要机制是HR。这项发现还强调了这一点,即irs1SF细胞在被人XRCC3 cDNA补充了其HR缺陷后,显示出比亲代细胞更大的放射抵抗力,而对丝裂霉素C的抗性只能部分恢复。补体比X射线对颗粒具有更大的抵抗力,这表明HR的重要作用,特别是对于修复复杂的DSB。在S阶段,NHEJ在修复简单DSB方面比SSA更重要,但是SSA在修复复杂DSB方面比NHEJ更重要。

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