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DNA and cellular effects of charged particles

机译:DNA和细胞带电粒子的影响

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Development of new radiotherapy strategies based on the use of hadrons, as well as reduction of uncertainties associated with radiation health risk during long-term space flights, requires increasing knowledge of the mechanisms underlying the biological effects of charged particles. It is well known that charged particles are more effective in damaging biological systems than photons. This capability has been related to the production of spatially correlated and/or clustered DNA damage, in particular two or more double-strand breaks (DSB) in close proximity or DSB associated with other lesions within a localized DNA region. These kinds of complex damages are rarely induced by photons. They are difficult to repair accurately and are therefore expected to produce severe consequences at the cellular level. This paper provides a review of radiation-induced cellular effects and will discuss the dependence of cell death and mutation induction on the linear energy transfer of various light and heavy ions. This paper will show the inadequacy of a single physical parameter for describing radiation quality, underlining the importance of the characteristics of the track structure at the submicrometer level to determine the biological effects. This paper will give a description of the physical properties of the track structure that can explain the differences in the spatial distributions of DNA damage, in particular DSB, induced by radiation of different qualities. In addition, this paper will show how a combined experimental and theoretical approach based on Monte Carlo simulations can be useful for providing information on the damage distribution at the nanoscale level. It will also emphasize the importance, especially for DNA damage evaluation at low doses, of the more recent functional approaches based on the use of fluorescent antibodies against proteins involved in the cellular processing of DNA damage. Advantages and limitations of the different experimental techniques will be discussed with particular emphasis on the still unsolved problem of the clustered DNA damage resolution. Development of biophysical models aimed to describe the kinetics of the DNA repair process is underway, and it is expected to support the experimental investigation of the mechanisms underlying the cellular radiation response.
机译:开发新的放射治疗策略的基础在强子的使用,以及减少不确定性与辐射相关的健康在长期太空飞行风险,需要增加知识的机制带电粒子的生物效应。众所周知,带电粒子更吗有效地破坏生物系统光子。生产和/或空间相关集群DNA损伤,特别是两个或更多双链断裂(双边带)或挨得很近双边带与内其他病变有关本地化的DNA区域。光子引起的损失很少。很难准确,因此修复将产生的严重后果细胞水平上。并将辐射诱导细胞的影响讨论的依赖细胞死亡和突变感应的线性能量转移各种光和重离子。显示单个物理的不足参数描述辐射质量,突显出特征的重要性轨道结构的亚微米级别确定生物效应。会给身体的描述吗属性的轨道结构解释空间的差异DNA损伤的分布,特别是双边带,辐射引起的不同的品质。本文将展示如何结合基于实验和理论方法可以用于蒙特卡罗模拟提供信息的损失分布在纳米级别。的重要性,尤其是对DNA损伤最近的评估低剂量根据使用功能的方法荧光抗体蛋白质参与在细胞DNA损伤的处理。不同的优缺点将讨论与实验技术特别强调仍未解决的问题集群DNA损伤的决议。生物物理模型旨在发展描述了DNA修复过程的动力学正在进行中,预计将支持吗实验调查的机制底层细胞辐射响应。

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