Liang Ying, Yang Gen, Liu Feng, Wang Yugang
State Key Laboratory of Nuclear Physics and Technology, Peking University, Beijing, 100871, People's Republic of China.
Phys Med Biol. 2016 Jan 7;61(1):445-60. doi: 10.1088/0031-9155/61/1/445. Epub 2015 Dec 16.
Ionizing radiation threatens genome integrity by causing DNA damage. Monte Carlo simulation of the interaction of a radiation track structure with DNA provides a powerful tool for investigating the mechanisms of the biological effects. However, the more or less oversimplification of the indirect effect and the inadequate consideration of high-order chromatin structures in current models usually results in discrepancies between simulations and experiments, which undermine the predictive role of the models. Here we present a biophysical model taking into consideration factors that influence indirect effect to simulate radiation-induced DNA strand breaks in eukaryotic cells with high-order chromatin structures. The calculated yields of single-strand breaks and double-strand breaks (DSBs) for photons are in good agreement with the experimental measurements. The calculated yields of DSB for protons and α particles are consistent with simulations by the PARTRAC code, whereas an overestimation is seen compared with the experimental results. The simulated fragment size distributions for (60)Co γ irradiation and α particle irradiation are compared with the measurements accordingly. The excellent agreement with (60)Co irradiation validates our model in simulating photon irradiation. The general agreement found in α particle irradiation encourages model applicability in the high linear energy transfer range. Moreover, we demonstrate the importance of chromatin high-order structures in shaping the spectrum of initial damage.
电离辐射通过造成DNA损伤来威胁基因组完整性。对辐射径迹结构与DNA相互作用进行蒙特卡罗模拟,为研究生物效应机制提供了一个强大工具。然而,当前模型中对间接效应或多或少的过度简化以及对高阶染色质结构考虑不足,通常导致模拟结果与实验之间存在差异,这削弱了模型的预测作用。在此,我们提出一个生物物理模型,该模型考虑了影响间接效应的因素,以模拟具有高阶染色质结构的真核细胞中辐射诱导的DNA链断裂。计算得到的光子单链断裂和双链断裂(DSB)产额与实验测量结果吻合良好。质子和α粒子的DSB计算产额与PARTRAC代码的模拟结果一致,但与实验结果相比存在高估。相应地,将模拟的(60)Coγ射线照射和α粒子照射的片段大小分布与测量结果进行了比较。与(60)Co照射的出色吻合验证了我们的模型在模拟光子照射方面的有效性。在α粒子照射中发现的总体一致性鼓励了该模型在高线性能量转移范围内的适用性。此外,我们证明了染色质高阶结构在塑造初始损伤谱方面的重要性。