人类细胞中DNA双链断裂修复能力的评估:当前功能方法的关键概述

IF 6.4 2区 医学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Xavier Tatin , Giovanna Muggiolu , Sylvie Sauvaigo , Jean Breton
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引用次数: 8

摘要

DNA双链断裂(DSBs)是高度有害的病变,负责突变,染色体易位或细胞死亡。因此,DSBR修复(DSBR)是DNA损伤反应(DDR)中恢复分子和基因组完整性的关键部分。在人类中,这个过程是通过不同的途径和不同的结果来实现的。DSB修复活动之间的平衡取决于细胞类型、组织或个体。多年来,已经开发了几种方法来研究DSBR容量的变化。在这里,我们主要关注功能技术,它提供了关于全局DSB修复能力或特定途径活性的动态信息。这些方法依赖于两种方法。间接技术,如脉冲场凝胶电泳(PFGE),彗星测定和免疫荧光(IF),通过量化暴露于dna损伤剂后DSB水平的时间依赖性下降来测量DSB修复能力。另一方面,无细胞测定法和基于报告者的方法直接跟踪人工DNA底物的修复。每种方法都有其固有的优点和局限性,尽管付出了巨大的努力,但目前还没有理想的方法来量化DSBR容量。所有的技术提供了不同的信息,可以被认为是互补的,但一些研究报告了相互矛盾的结果。诸如生物材料类型、所需设备或分析成本等参数也可能限制可用的选择。改进目前可用的测量DSBR容量的方法将是向前迈出的重要一步,我们提出直接应用于机制研究,药物开发,人体生物监测和个性化医疗,其中DSBR分析可以提高对符合化疗和放疗条件的患者的识别。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of DNA double-strand break repair capacity in human cells: Critical overview of current functional methods

DNA double-strand breaks (DSBs) are highly deleterious lesions, responsible for mutagenesis, chromosomal translocation or cell death. DSB repair (DSBR) is therefore a critical part of the DNA damage response (DDR) to restore molecular and genomic integrity. In humans, this process is achieved through different pathways with various outcomes. The balance between DSB repair activities varies depending on cell types, tissues or individuals. Over the years, several methods have been developed to study variations in DSBR capacity. Here, we mainly focus on functional techniques, which provide dynamic information regarding global DSB repair proficiency or the activity of specific pathways. These methods rely on two kinds of approaches. Indirect techniques, such as pulse field gel electrophoresis (PFGE), the comet assay and immunofluorescence (IF), measure DSB repair capacity by quantifying the time-dependent decrease in DSB levels after exposure to a DNA-damaging agent. On the other hand, cell-free assays and reporter-based methods directly track the repair of an artificial DNA substrate. Each approach has intrinsic advantages and limitations and despite considerable efforts, there is currently no ideal method to quantify DSBR capacity. All techniques provide different information and can be regarded as complementary, but some studies report conflicting results. Parameters such as the type of biological material, the required equipment or the cost of analysis may also limit available options. Improving currently available methods measuring DSBR capacity would be a major step forward and we present direct applications in mechanistic studies, drug development, human biomonitoring and personalized medicine, where DSBR analysis may improve the identification of patients eligible for chemo- and radiotherapy.

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来源期刊
CiteScore
12.20
自引率
1.90%
发文量
22
审稿时长
15.7 weeks
期刊介绍: The subject areas of Reviews in Mutation Research encompass the entire spectrum of the science of mutation research and its applications, with particular emphasis on the relationship between mutation and disease. Thus this section will cover advances in human genome research (including evolving technologies for mutation detection and functional genomics) with applications in clinical genetics, gene therapy and health risk assessment for environmental agents of concern.
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