特异性TP53突变损害53BP1对DNA双链断裂的招募,这是辐射耐药机制的基础。

IF 2.4 4区 生物学 Q3 BIOPHYSICS
Paolo Fagherazzi, Lenka Stixová, Eva Bartova
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引用次数: 0

摘要

肿瘤抑制因子p53已被广泛研究了40多年,它是多种细胞通路的关键调节因子,通常独立于其转录活性发挥作用。值得注意的是,p53已被证明在DNA修复中起着至关重要的作用,不仅在感知DNA损伤方面,而且在影响修复途径选择方面。本研究评估了p53对NHEJ介质53BP1募集和活性的影响,特别关注了在人类癌症中发现的常见p53热点突变。目的是了解这些突变如何损害DNA损伤反应机制并导致遗传不稳定,从而提高肿瘤存活率。对p53错义突变(R248W, R273C, G245S)的分析揭示了突变对53BP1和RIF1募集的特异性影响,G245S保留了野生型53BP1募集,但仍表现出增强的BRCA1灶形成。考虑到NHEJ在整个细胞周期中的广泛激活,特别是在对放疗和化疗的反应中,深入了解p53突变如何影响这种反应对于制定未来的治疗策略至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Specific TP53 mutations impair the recruitment of 53BP1 to DNA double-strand breaks underlying the mechanism of radioresistance.

The tumor suppressor p53, extensively studied for over 40 years, is a key regulator of various cellular pathways, often functioning independently of its transcriptional activity. Notably, p53 has been shown to play a crucial role in DNA repair, not only in sensing DNA damage but also in influencing repair pathway choice. This work assesses the influence of p53 on the recruitment and activity of the NHEJ mediator 53BP1, focusing specifically on common p53 hotspot mutations found in human cancers. The aim is to understand how these mutations impair DNA damage response mechanisms and contribute to genetic instability, which enhances tumor survival. Analysis of p53 missense mutations (R248W, R273C, G245S) revealed mutation-specific effects on 53BP1 and RIF1 recruitment, with G245S retaining wild-type-like 53BP1 recruitment but still exhibiting enhanced BRCA1 foci formation. Given the widespread activation of NHEJ throughout the cell cycle, especially in response to radiotherapy and chemotherapy, gaining insight into how p53 mutations affect this response is vital for developing future therapeutic strategies.

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来源期刊
European Biophysics Journal
European Biophysics Journal 生物-生物物理
CiteScore
4.30
自引率
0.00%
发文量
43
审稿时长
6-12 weeks
期刊介绍: The journal publishes papers in the field of biophysics, which is defined as the study of biological phenomena by using physical methods and concepts. Original papers, reviews and Biophysics letters are published. The primary goal of this journal is to advance the understanding of biological structure and function by application of the principles of physical science, and by presenting the work in a biophysical context. Papers employing a distinctively biophysical approach at all levels of biological organisation will be considered, as will both experimental and theoretical studies. The criteria for acceptance are scientific content, originality and relevance to biological systems of current interest and importance. Principal areas of interest include: - Structure and dynamics of biological macromolecules - Membrane biophysics and ion channels - Cell biophysics and organisation - Macromolecular assemblies - Biophysical methods and instrumentation - Advanced microscopics - System dynamics.
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