首页> 外文期刊>International Journal of Radiation Biology: Covering the Physical, Chemical, Biological, and Medical Effects of Ionizing and Non-ionizing Radiations >Stochastic properties of radiation-induced DSB: DSB distributions in large scale chromatin loops, the HPRT gene and within the visible volumes of DNA repair foci.
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Stochastic properties of radiation-induced DSB: DSB distributions in large scale chromatin loops, the HPRT gene and within the visible volumes of DNA repair foci.

机译:辐射诱导的DSB的随机特性:大规模染色质环,HPRT基因以及DNA修复灶的可见体积内的DSB分布。

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Purpose: We computed probabilities to have multiple double-strand breaks (DSB), which are produced in DNA on a regional scale, and not in close vicinity, in volumes matching the size of DNA damage foci, of a large chromatin loop, and in the physical volume of DNA containing the HPRT (human hypoxanthine phosphoribosyltransferase) locus. Materials and methods: The model is based on a Monte Carlo description of DSB formation by heavy ions in the spatial context of the entire human genome contained within the cell nucleus, as well as at the gene sequence level. Results: We showed that a finite physical volume corresponding to a visible DNA repair focus, believed to be associated with one DSB, can contain multiple DSB due to heavy ion track structure and the DNA supercoiled topography. A corrective distribution was introduced, which was a conditional probability to have excess DSB in a focus volume, given that there was already one present. The corrective distribution was calculated for 19.5 MeV/amu N ions,3.77 MeV/amu alpha-particles, 1000 MeV/amu Fe ions, and X-rays. The corrected initial DSB yield from the experimental data on DNA repair foci was calculated. The DSB yield based on the corrective function converts the focus yield into the DSB yield, which is comparable with the DSB yield based on the earlier PFGE experiments. The distribution of DSB within the physical limits of the HPRT gene was analyzed by a similar method as well. Conclusion: This corrective procedure shows the applicability of the model and empowers the researcher with a tool to better analyze focus statistics. The model enables researchers to analyze the DSB yield based on focus statistics in real experimental situations that lack one-to-one focus-to-DSB correspondance.
机译:目的:我们计算了具有多个双链断裂(DSB)的概率,这些断裂在区域内而不是在邻近区域内以与DNA损伤位点大小,大染色质环和包含HPRT(人次黄嘌呤磷酸核糖基转移酶)基因座的DNA的物理体积。材料和方法:该模型基于蒙特卡洛描述的重离子在细胞核内整个人类基因组的空间范围内以及基因序列水平上由重离子形成的DSB。结果:我们显示,由于重离子径迹结构和DNA超螺旋形拓扑,与可见的DNA修复焦点相对应的有限物理体积(据信与一个DSB相关)可以包含多个DSB。引入了一种校正分布,这是有条件的概率,即在焦点体积中存在过量DSB的情况(假设已经存在)。计算了19.5 MeV / amu N离子,3.77 MeV / amuα粒子,1000 MeV / amu Fe离子和X射线的校正分布。从DNA修复灶的实验数据计算出校正的初始DSB产率。基于校正函数的DSB产量将焦点产量转换为DSB产量,这与基于早期PFGE实验的DSB产量相当。还通过类似的方法分析了在HPRT基因的物理极限内的DSB的分布。结论:该纠正程序显示了该模型的适用性,并为研究人员提供了更好地分析焦点统计数据的工具。该模型使研究人员能够在缺乏一对一的焦点到DSB对应关系的实际实验情况下,基于焦点统计信息来分析DSB产量。

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