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Synthetic lethality between BRCA1 deficiency and poly(ADP-ribose) polymerase inhibition is modulated by processing of endogenous oxidative DNA damage

机译:通过加工内源性氧化DNA损伤来调节BRCA1缺乏和聚(ADP-核糖)聚合酶抑制的合成致死性

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摘要

Poly(ADP-ribose) polymerases (PARPs) facilitate the repair of DNA single-strand breaks (SSBs). When PARPs are inhibited, unrepaired SSBs colliding with replication forks give rise to cytotoxic double-strand breaks. These are normally rescued by homologous recombination (HR), but, in cells with suboptimal HR, PARP inhibition leads to genomic instability and cell death, a phenomenon currently exploited in the therapy of ovarian cancers in BRCA1/2 mutation carriers. In spite of their promise, resistance to PARP inhibitors (PARPis) has already emerged. In order to identify the possible underlying causes of the resistance, we set out to identify the endogenous source of DNA damage that activates PARPs. We argued that if the toxicity of PARPis is indeed caused by unrepaired SSBs, these breaks must arise spontaneously, because PARPis are used as single agents. We now show that a significant contributor to PARPi toxicity is oxygen metabolism. While BRCA1-depleted or -mutated cells were hypersensitive to the clinically approved PARPi olaparib, its toxicity was significantly attenuated by depletion of OGG1 or MYH DNA glycosylases, as well as by treatment with reactive oxygen species scavengers, growth under hypoxic conditions or chemical OGG1 inhibition. Thus, clinical resistance to PARPi therapy may emerge simply through reduced efficiency of oxidative damage repair.
机译:聚(ADP-核糖)聚合酶(PARPS)促进DNA单链(SSBS)的修复。当PARP被抑制时,与复制叉碰撞的未分发的SSBS会产生细胞毒性双链断裂。这些通常通过同源重组(HR)来拯救,但是,在具有次优,HR的细胞中,PARP抑制导致基因组不稳定性和细胞死亡,目前在BRCA1 / 2突变载体的卵巢癌治疗中被利用的现象。尽管他们承诺,已经出现了对PARP抑制剂(PARPI)的抵抗力。为了确定阻力可能的潜在原因,我们开始鉴定激活PARPS的DNA损伤的内源性源。我们认为,如果Parpis的毒性确实是由未料的SSBS引起的,则这些破裂必须自发地出现,因为Parpis用作单一代理。我们现在表明,Parpi毒性的重要贡献是氧代谢。虽然BRCA1耗尽或蓄水细胞对临床批准的PARPIIB过敏,但其毒性通过耗尽OGG1或MYH DNA糖基酶而显着减弱,以及通过反应性氧物种清除剂的处理,缺氧条件下的生长或化学ogg1抑制作用。因此,通过降低氧化损伤修复的效率,可以简单地出现对Parpi治疗的临床抗性。

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  • 来源
    《Nucleic Acids Research》 |2019年第17期|共12页
  • 作者单位

    Univ Zurich Inst Mol Life Sci Winterthurerstr 190 CH-8057 Zurich Switzerland;

    Univ Zurich Inst Mol Canc Res Winterthurerstr 190 CH-8057 Zurich Switzerland;

    Univ Zurich Inst Mol Canc Res Winterthurerstr 190 CH-8057 Zurich Switzerland;

    Univ Hosp Zurich Inst Pathol &

    Mol Pathol Schmelzbergstr 12 CH-8091 Zurich Switzerland;

    Univ Zurich Inst Mol Life Sci Winterthurerstr 190 CH-8057 Zurich Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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