Quantification of radiation-induced DNA double strand break repair foci to evaluate and predict biological responses to ionizing radiation.

IF 3.4 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY NAR cancer Pub Date : 2021-10-04 DOI:10.1093/narcan/zcab046
S. Penninckx, Eloise Pariset, Egle Cekanaviciute, S. Costes
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引用次数: 17

Abstract

Radiation-induced foci (RIF) are nuclear puncta visualized by immunostaining of proteins that regulate DNA double-strand break (DSB) repair after exposure to ionizing radiation. RIF are a standard metric for measuring DSB formation and repair in clinical, environmental and space radiobiology. The time course and dose dependence of their formation has great potential to predict in vivo responses to ionizing radiation, predisposition to cancer and probability of adverse reactions to radiotherapy. However, increasing complexity of experimentally and therapeutically setups (charged particle, FLASH …) is associated with several confounding factors that must be taken into account when interpreting RIF values. In this review, we discuss the spatiotemporal characteristics of RIF development after irradiation, addressing the common confounding factors, including cell proliferation and foci merging. We also describe the relevant endpoints and mathematical models that enable accurate biological interpretation of RIF formation and resolution. Finally, we discuss the use of RIF as a biomarker for quantification and prediction of in vivo radiation responses, including important caveats relating to the choice of the biological endpoint and the detection method. This review intends to help scientific community design radiobiology experiments using RIF as a key metric and to provide suggestions for their biological interpretation.
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量化辐射诱导的DNA双链断裂修复焦点,以评估和预测电离辐射的生物反应。
辐射诱导病灶(RIF)是指在暴露于电离辐射后,通过对调节DNA双链断裂(DSB)修复的蛋白质进行免疫染色而可见的核点。RIF是临床、环境和空间放射生物学中测量DSB形成和修复的标准度量。它们形成的时间过程和剂量依赖性在预测体内对电离辐射的反应、癌症易感和放射治疗不良反应的可能性方面具有很大的潜力。然而,在解释RIF值时,实验和治疗设置(带电粒子、FLASH等)的复杂性日益增加,这与几个必须考虑的混杂因素有关。本文综述了辐照后RIF发展的时空特征,讨论了常见的混杂因素,包括细胞增殖和病灶合并。我们还描述了相关的端点和数学模型,能够准确地解释RIF的形成和分辨率。最后,我们讨论了RIF作为生物标志物用于体内辐射反应的定量和预测,包括与选择生物学终点和检测方法有关的重要注意事项。本综述旨在帮助科学界设计以RIF为关键指标的放射生物学实验,并为其生物学解释提供建议。
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来源期刊
CiteScore
6.90
自引率
0.00%
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0
审稿时长
13 weeks
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