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DNA 脆性位点亲和色谱和定量蛋白质组学揭示DNA修复因子着色性干皮病C组蛋白在应对复制应激中的作用

Role of DNA Repair Factor Xeroderma Pigmentosum Protein Group C in Response to Replication Stress As Revealed by DNA Fragile Site Affinity Chromatography and Quantitative Proteomics.

作者信息

Beresova Lucie, Vesela Eva, Chamrad Ivo, Voller Jiri, Yamada Masayuki, Furst Tomas, Lenobel Rene, Chroma Katarina, Gursky Jan, Krizova Katerina, Mistrik Martin, Bartek Jiri

机构信息

Institute of Molecular and Translational Medicine, Faculty of Medicine and Dentistry, Palacky University , Olomouc, Czech Republic.

Department of Protein Biochemistry and Proteomics, Centre of the Region Hana for Biotechnological and Agricultural Research, Faculty of Science, Palacky University , Olomouc, Czech Republic.

出版信息

J Proteome Res. 2016 Dec 2;15(12):4505-4517. doi: 10.1021/acs.jproteome.6b00622. Epub 2016 Nov 9.

Abstract

Replication stress (RS) fuels genomic instability and cancer development and may contribute to aging, raising the need to identify factors involved in cellular responses to such stress. Here, we present a strategy for identification of factors affecting the maintenance of common fragile sites (CFSs), which are genomic loci that are particularly sensitive to RS and suffer from increased breakage and rearrangements in tumors. A DNA probe designed to match the high flexibility island sequence typical for the commonly expressed CFS (FRA16D) was used as specific DNA affinity bait. Proteins significantly enriched at the FRA16D fragment under normal and replication stress conditions were identified using stable isotope labeling of amino acids in cell culture-based quantitative mass spectrometry. The identified proteins interacting with the FRA16D fragment included some known CFS stabilizers, thereby validating this screening approach. Among the hits from our screen so far not implicated in CFS maintenance, we chose Xeroderma pigmentosum protein group C (XPC) for further characterization. XPC is a key factor in the DNA repair pathway known as global genomic nucleotide excision repair (GG-NER), a mechanism whose several components were enriched at the FRA16D fragment in our screen. Functional experiments revealed defective checkpoint signaling and escape of DNA replication intermediates into mitosis and the next generation of XPC-depleted cells exposed to RS. Overall, our results provide insights into an unexpected biological role of XPC in response to replication stress and document the power of proteomics-based screening strategies to elucidate mechanisms of pathophysiological significance.

摘要

复制应激(RS)加剧基因组不稳定和癌症发展,并可能导致衰老,这就使得识别参与细胞对这种应激反应的因素变得很有必要。在此,我们提出了一种策略,用于识别影响常见脆性位点(CFSs)维持的因素,CFSs是基因组位点,对RS特别敏感,在肿瘤中易发生断裂和重排增加。一种设计用于匹配常见表达的CFS(FRA16D)典型的高灵活性岛序列的DNA探针被用作特异性DNA亲和诱饵。使用基于细胞培养的定量质谱中的氨基酸稳定同位素标记,鉴定了在正常和复制应激条件下在FRA16D片段上显著富集的蛋白质。鉴定出的与FRA16D片段相互作用的蛋白质包括一些已知的CFS稳定剂,从而验证了这种筛选方法。在我们目前筛选出的尚未涉及CFS维持的命中蛋白中,我们选择了着色性干皮病C组蛋白(XPC)进行进一步表征。XPC是DNA修复途径——全基因组核苷酸切除修复(GG-NER)中的关键因素,在我们的筛选中,该机制的几个组分在FRA16D片段上富集。功能实验揭示了检查点信号缺陷以及DNA复制中间体进入有丝分裂并传递给暴露于RS的下一代XPC缺失细胞。总体而言,我们的结果为XPC在应对复制应激中的意外生物学作用提供了见解,并证明了基于蛋白质组学的筛选策略在阐明具有病理生理意义的机制方面的作用。

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