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The dynamics of Ku70/80 and DNA-PKcs at DSBs induced by ionizing radiation is dependent on the complexity of damage

机译:电离辐射在DSB处Ku70 / 80和DNA-PKcs的动力学取决于损伤的复杂性

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DNA double-strand breaks (DSBs) are biologically one of the most important cellular lesions and possess varying degrees of chemical complexity. The notion that the repairability of more chemically complex DSBs is inefficient led to the concept that the extent of DSB complexity underlies the severity of the biological consequences. The repair of DSBs by non-homologous end joining (NHEJ) has been extensively studied but it remains unknown whether more complex DSBs require a different sub-set of NHEJ protein for their repair compared with simple DSBs. To address this, we have induced DSBs in fluorescently tagged mammalian cells (Ku80-EGFP, DNA-PKcs-YFP or XRCC4-GFP, key proteins in NHEJ) using ultra-soft X-rays (USX) or multi-photon near infrared (NIR) laser irradiation. We have shown in real-time that simple DSBs, induced by USX or NIR microbeam irradiation, are repaired rapidly involving Ku70/80 and XRCC4/Ligase IV/XLF. In contrast, DSBs with greater chemical complexity are repaired slowly involving not only Ku70/80 and XRCC4/Ligase IV/XLF but also DNA-PKcs. Ataxia telangiectasia-mutated inhibition only retards repair of the more chemically complex DSBs which require DNA-PKcs. In summary, the repair of DSBs by NHEJ is highly regulated with pathway choice and kinetics of repair dependent on the chemical complexity of the DSB.
机译:DNA双链断裂(DSB)在生物学上是最重要的细胞病变之一,并具有不同程度的化学复杂性。化学上更复杂的DSB的可修复性效率低下的观点导致了这样一个概念,即DSB复杂程度决定了生物学后果的严重性。通过非同源末端连接(NHEJ)修复DSB已被广泛研究,但是与简单DSB相比,更复杂的DSB是否需要不同的NHEJ蛋白子集进行修复仍是未知的。为了解决这个问题,我们已经使用超软X射线(USX)或多光子近红外(USH)诱导了荧光标记的哺乳动物细胞(Ku80-EGFP,DNA-PKcs-YFP或XRCC4-GFP,NHEJ中的关键蛋白)中的DSB。 NIR)激光照射。我们已经实时显示,由USX或NIR微束辐射诱导的简单DSB可以快速修复,涉及Ku70 / 80和XRCC4 / Ligase IV / XLF。相反,具有更大化学复杂性的DSB修复缓慢,不仅涉及Ku70 / 80和XRCC4 / Ligase IV / XLF,而且涉及DNA-PKcs。共济失调的毛细血管扩张突变抑制仅延迟了对需要DNA-PKcs的化学更复杂的DSB的修复。总之,NHEJ对DSB的修复受途径选择和修复动力学的高度调节,取决于DSB的化学复杂性。

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