Ionizing radiation-induced foci persistence screen to discover enhancers of accelerated senescence.

Edwardine Labay, Elena V Efimova, Benjamin K Quarshie, Daniel W Golden, Ralph R Weichselbaum, Stephen J Kron
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引用次数: 14

Abstract

Much like replicative senescence, the irreversible cell-cycle arrest induced by eroded telomeres, accelerated senescence occurs when replicative cells suffer irreparable DNA double-strand breaks (DSBs). Along with apoptosis and necrosis, senescence is a desirable outcome in cancer treatment with ionizing radiation (IR) or chemotherapy. In both normal and cancer cells, DSBs promote the assembly of IR-induced foci (IRIF), domains of modified chromatin that serve a key role in DNA damage signaling. IRIF persistence is a critical determinant of accelerated senescence, making drugs that promote persistent IRIF an attractive strategy to sensitize cancer to genotoxic therapy. As an IRIF reporter, we have expressed an inducible green fluorescent protein (GFP) fusion to the IRIF-binding domain (IBD) of 53BP1 (GFP-IBD) in the breast cancer cell line MCF7. Within minutes of exposure to IR, the GFP-IBD relocalizes to form fluorescent nuclear foci, which disperse within several hours. A pair of high-content screening assays for IRIF formation and persistence were established in multiwell plates based on imaging and quantifying GFP-IBD foci per Hoechst-stained MCF7 nucleus at 2 hours and 24 hours. Using the ataxia telangiectasia-mutated inhibitor CGK733 to block IRIF formation and the topoisomerase II inhibitor etoposide to prevent IRIF resolution, we obtained a Z' >0.8 both for IRIF formation at 2 hours and IRIF persistence at 24 hours. Screening the diverse drugs and natural products in the National Cancer Institute Developmental Therapeutics Program Approved Oncology Drugs Set, the National Institutes of Health Clinical Collection, and the MicroSource Spectrum Collection yielded multiple hits that significantly delayed IRIF resolution. Secondary screening suggested some of these otherwise nontoxic drugs also enhance accelerated senescence, indicating strong potential for their repurposing as radiation sensitizers to improve the efficacy of cancer therapy.

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电离辐射诱导的病灶持久性筛选,以发现加速衰老的增强剂。
就像复制性衰老一样,端粒被侵蚀导致不可逆的细胞周期停滞,当复制细胞遭受不可修复的DNA双链断裂(DSBs)时,加速衰老就会发生。随着细胞凋亡和坏死,衰老是电离辐射(IR)或化疗治疗癌症的理想结果。在正常细胞和癌细胞中,dsb促进ir诱导的病灶(IRIF)的组装,IRIF是修饰的染色质结构域,在DNA损伤信号传导中起关键作用。IRIF持续存在是加速衰老的关键决定因素,这使得促进IRIF持续存在的药物成为一种有吸引力的策略,可以使癌症对基因毒性治疗变得敏感。作为IRIF报告者,我们在乳腺癌细胞系MCF7中表达了一种诱导型绿色荧光蛋白(GFP)融合到53BP1的IRIF结合域(IBD) (GFP-IBD)。在暴露于IR的几分钟内,GFP-IBD重新定位形成荧光核灶,并在几小时内分散。基于hoechst染色MCF7细胞核在2小时和24小时的成像和定量GFP-IBD聚焦,在多孔板上建立了一对高含量筛选IRIF形成和持久性的方法。使用失调毛细血管扩张突变抑制剂CGK733来阻断IRIF的形成,使用拓扑异构酶II抑制剂依托oposide来阻止IRIF的分解,我们获得了IRIF在2小时形成和24小时持续的Z' >0.8。在美国国家癌症研究所发展治疗计划批准的肿瘤药物集、美国国家卫生研究院临床收集和MicroSource频谱收集中筛选多种药物和天然产物,产生了多个显著延迟IRIF分辨率的结果。二次筛选表明,这些原本无毒的药物也会加速衰老,这表明它们有很大的潜力可以作为放射增敏剂来提高癌症治疗的疗效。
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