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Dynamic PML protein nucleolar associations with persistent DNA damage lesions in response to nucleolar stress and senescence-inducing stimuli

机译:动态PML蛋白核仁与持续的DNA损伤病变响应核仁压力和衰老诱导刺激。

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摘要

Diverse stress insults trigger interactions of PML with nucleolus, however, the function of these PML nucleolar associations (PNAs) remains unclear. Here we show that during induction of DNA damage-induced senescence in human non-cancerous cells, PML accumulates at the nucleolar periphery simultaneously with inactivation of RNA polymerase I (RNAP I) and nucleolar segregation. Using time-lapse and high-resolution microscopy, we followed the genesis, structural transitions and destiny of PNAs to show that: 1) the dynamic structural changes of the PML-nucleolar interaction are tightly associated with inactivation and reactivation of RNAP I-mediated transcription, respectively; 2) the PML-nucleolar compartment develops sequentially under stress and, upon stress termination, it culminates in either of two fates: disappearance or persistence; 3) all PNAs stages can associate with DNA damage markers; 4) the persistent, commonly long-lasting PML multi-protein nucleolar structures (PML-NDS) associate with markers of DNA damage, indicating a role of PNAs in persistent DNA damage response characteristic for senescent cells. Given the emerging evidence implicating PML in homologous recombination-directed DNA repair, we propose that PNAs contribute to sequestration and faithful repair of the highly unstable ribosomal DNA repeats, a fundamental process to maintain a precise balance between DNA repair mechanisms, with implications for genomic integrity and aging.
机译:不同的压力侮辱触发PML与核仁的相互作用,但是,这些PML核仁协会(PNAs)的功能仍不清楚。在这里,我们显示了在人类非癌细胞中DNA损伤诱导的衰老诱导过程中,PML积聚在核仁周围,同时失活了RNA聚合酶I(RNAP I)和核仁分离。使用延时和高分辨率显微镜观察了PNA的发生,结构转变和命运,结果表明:1)PML-核仁相互作用的动态结构变化与RNAi介导的转录的失活和重新激活紧密相关。 , 分别; 2)PML核仁室在压力下依序发育,并且在压力终止时最终达到两个命运:消失或持久。 3)所有PNA阶段均可与DNA损伤标志物相关; 4)持久的,通常持久的PML多蛋白核仁结构(PML-NDS)与DNA损伤的标志物相关,表明PNA在衰老细胞的持久性DNA损伤反应特征中的作用。鉴于新兴证据表明PML参与同源重组指导的DNA修复,我们建议PNA有助于螯合和忠实修复高度不稳定的核糖体DNA重复序列,这是维持DNA修复机制之间精确平衡的基本过程,对基因组完整性具有影响和老化。

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