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着色性干皮病D(XPD)蛋白在氧化应激下人细胞基因组维持中的作用。

Role of Xeroderma pigmentosum D (XPD) protein in genome maintenance in human cells under oxidative stress.

作者信息

Low Grace Kah Mun, Ting Aloysius Poh Leong, Fok Edwin Dan Zhihao, Gopalakrishnan Kalpana, Zeegers Dimphy, Khaw Aik Kia, Jayapal Manikandan, Martinez-Lopez Wilner, Hande M Prakash

机构信息

Department of Physiology, Yong Loo Lin School of Medicine, National University of Singapore, Singapore.

Instituto de Investigaciones Biológicas Clemente Estable, Montevideo, Uruguay; Associate Unit on Genomic Stability, Faculty of Medicine, University of the Republic (UdelaR), Montevideo, Uruguay; Vellore Institute of Technology, Vellore, India.

出版信息

Mutat Res Genet Toxicol Environ Mutagen. 2022 Apr-May;876-877:503444. doi: 10.1016/j.mrgentox.2022.503444. Epub 2022 Jan 15.

Abstract

Xeroderma pigmentosum D (XPD) protein plays a pivotal role in the nucleotide excision repair pathway. XPD unwinds the local area of the damaged DNA by virtue of constituting transcription factor II H (TFIIH) and is important not only for repair but also for basal transcription. Although cells deficient in XPD have shown to be defective in oxidative base-lesion repair, the effects of the oxidative assault on primary fibroblasts from patients suffering from Xeroderma Pigmentosum D have not been fully explored. Therefore, we sought to investigate the role of XPD in oxidative DNA damage-repair by treating primary fibroblasts derived from a patient suffering from Xeroderma Pigmentosum D, with hydrogen peroxide. Our results show dose-dependent increase in genotoxicity with minimal effect on cytotoxicity with HO in XPD deficient cells compared to control cells. XPD deficient cells displayed increased susceptibility and reduced repair capacity when subjected to DNA damage induced by oxidative stress. XPD deficient fibroblasts exhibited increased telomeric loss after HO treatment. In addition, we demonstrated that chronic oxidative stress induced accelerated premature senescence characteristics. Gene expression profiling revealed alterations in genes involved in transcription and nucleotide metabolisms, as well as in cellular and cell cycle processes in a more significant way than in other pathways. This study highlights the role of XPD in the repair of oxidative stress and telomere maintenance. Lack of functional XPD seems to increase the susceptibility of oxidative stress-induced genotoxicity while retaining cell viability posing as a potential cancer risk factor of Xeroderma Pigmentosum D patients.

摘要

着色性干皮病D(XPD)蛋白在核苷酸切除修复途径中起关键作用。XPD通过构成转录因子II H(TFIIH)来解开受损DNA的局部区域,不仅对修复很重要,而且对基础转录也很重要。尽管已显示缺乏XPD的细胞在氧化碱基损伤修复方面存在缺陷,但氧化攻击对着色性干皮病D患者原代成纤维细胞的影响尚未得到充分研究。因此,我们试图通过用过氧化氢处理来自着色性干皮病D患者的原代成纤维细胞,来研究XPD在氧化DNA损伤修复中的作用。我们的结果表明,与对照细胞相比,XPD缺陷细胞中遗传毒性呈剂量依赖性增加,而过氧化氢对细胞毒性的影响最小。当受到氧化应激诱导的DNA损伤时,XPD缺陷细胞表现出更高的敏感性和更低的修复能力。过氧化氢处理后,XPD缺陷的成纤维细胞端粒损失增加。此外,我们证明慢性氧化应激诱导了加速的早衰特征。基因表达谱分析显示,与其他途径相比,参与转录和核苷酸代谢以及细胞和细胞周期过程的基因发生了更显著的改变。这项研究突出了XPD在氧化应激修复和端粒维持中的作用。缺乏功能性XPD似乎会增加氧化应激诱导的遗传毒性的易感性,同时保持细胞活力,这成为着色性干皮病D患者潜在的癌症风险因素。

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