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DNA-PK inhibition causes a low level of H2AX phosphorylation and homologous recombination repair in Medaka (Oryzias latipes) cells

机译:DNA-PK抑制导致Medaka(Oryzias Lipipes)细胞中的低水平H2AX磷酸化和同源重组修复

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Nonhomologous end joining (NHEJ) and homologous recombination (HR) are known as DNA double-strand break (DSB) repair pathways. It has been reported that DNA-PK, a member of PI3 kinase family, promotes NHEJ and aberrant DNA-PK causes NHEJ deficiency. However, in this study, we demonstrate that a wild-type cell line treated with DNA-PK inhibitor and a mutant cell line with dysfunctional DNA-PK showed decreased HR efficiency in fish cells (Medaka, Oryzias latipes). Previously, we reported that the radiation-sensitive mutant RIC1 strain has a defect in the Histone H2AX phosphorylation after γ-irradiation. Here, we showed that a DNA-PK inhibitor, NU7026, treatment resulted in significant reduction in the number of γH2AX foci after γ-irradiation in wild-type cells, but had no significant effect in RIC1 cells. In addition, RIC1 cells showed significantly lower levels of DNA-PK kinase activity compared with wild-type cells. We investigated NHEJ and HR efficiency after induction of DSBs. Wild-type cells treated with NU7026 and RIC1 cells showed decreased HR efficiency. These results indicated that aberrant DNA-PK causes the reduction in the number of γH2AX foci and HR efficiency in RIC1 cells. We performed phosphorylated DNA-PKcs (Thr2609) and 53BP1 focus assay after γ-irradiation. RIC1 cells showed significant reduction in the number of phosphorylated DNA-PKcs foci and no deference in the number of 53BP1 foci compared with wild-type cells. These results suggest that low level of DNA-PK activity causes aberrant DNA-PKcs autophosphorylation in RIC1 cells. It is known that 53BP1 is involved in both DNA-PK dependent and independent NHEJ. Therefore we suggest that DNA-PK independent NHEJ repair DSBs under the condition of decreased DNA-PK activity, which causes reduction of HR efficiency.
机译:非症状结束(NHEJ)和同源重组(HR)称为DNA双链断裂(DSB)修复途径。据报道,DNA-PK是PI3激酶家族的成员,促进NHEJ和异常DNA-PK导致NHEJ缺乏症。然而,在本研究中,我们证明了用DNA-PK抑制剂和具有功能障碍DNA-PK的突变细胞系处理的野生型细胞系在鱼细胞(Medaka,Oryzias LaTipes)中表现出降低的HR效率。以前,我们报道了辐射敏感突变体Ric1菌株在γ-辐射后的组蛋白H2AX磷酸化中具有缺陷。在这里,我们表明DNA-PK抑制剂Nu7026,治疗导致γ-辐射在野生型细胞中的γH2AX焦点的数量显着降低,但在RIC1细胞中没有显着效果。此外,与野生型细胞相比,RIC1细胞显示出明显较低的DNA-PK激酶活性。我们在诱导DSB后调查了NHEJ和HR效率。用Nu7026和RIC1细胞处理的野生型细胞显示出低于HR效率降低。这些结果表明,异常DNA-PK导致RIC1细胞中的γH2AX焦点和HR效率的数量降低。在γ-辐射后,我们在γ-辐照后进行了磷酸化的DNA-PKC(THR2609)和53bp1聚焦试验。 RIC1细胞显示出磷酸化DNA-PKCS焦点的数量显着降低,与野生型细胞相比,53bp1焦点的数量没有张相。这些结果表明,低水平的DNA-PK活性导致RIC1细胞中的异常DNA-PKCS自磷酸化。已知53bp1涉及DNA-PK依赖性和独立的NHEJ。因此,我们建议DNA-PK独立的NHEJ在DNA-PK活性降低的情况下修复DSB,这导致HR效率降低。

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