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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 >Calculation of the biological effects of ion beams based on the microscopic spatial damage distribution pattern
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Calculation of the biological effects of ion beams based on the microscopic spatial damage distribution pattern

机译:基于微观空间损伤分布规律的离子束生物效应计算

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Purpose: To present details of the recent version of the 'Local Effect Model' (LEM), that has been developed and implemented in treatment planning for the ion beam therapy pilot project performed at GSI Helmholtzzentrum fr Schwerionenforschung in Darmstadt, Germany. Materials and methods: The new version of the model is based on a detailed consideration of the spatial distribution of the initial damages, i.e., double-strand breaks (DSB). This spatial distribution of DSB is obtained from the radial dose profile of the ion track using Monte Carlo methods. These distributions are then analyzed with regard to the proximity of DSB. This version of the model also facilitates the calculation of full dose response curves up to arbitrary high doses, thus allowing to thoroughly check the approximations previously used to estimate the quadratic term (β-term) for the linear-quadratic description of dose response curves. Results: The accuracy of the model predictions is demonstrated by good agreement of the relative biological effectiveness (RBE) as a function of the linear energy transfer (LET) with experimental data obtained for V79 cells after carbon irradiation. The β-values predicted by the full simulation tend to be larger as compared to the approximation in the intermediate LET range. Conclusion: The new version of the model allows a more mechanistic description of the biological effects of ion radiation. The full simulation is a prerequisite for tests of the validity of the approach at high doses, which are of particular interest for application in hypofractionation studies.
机译:目的:介绍最近版本的“局部效应模型”(LEM)的详细信息,该模型已在德国达姆施塔特GSI Helmholtzzentrum fr Schwerionenforschung进行的离子束治疗试验项目的治疗计划中开发和实施。材料和方法:该模型的新版本基于对初始损伤(即双链断裂(DSB))的空间分布的详细考虑。 DSB的这种空间分布是使用Monte Carlo方法从离子轨迹的径向剂量分布中获得的。然后针对DSB的邻近性分析这些分布。此版本的模型还便于计算直至任意高剂量的全剂量响应曲线,从而允许彻底检查先前用于估计剂量响应曲线的线性二次描述的二次项(β项)的近似值。结果:模型预测的准确性通过相对生物学有效性(RBE)作为线性能量转移(LET)的函数与碳辐照后获得的V79细胞的实验数据的良好吻合得到证明。与中间LET范围内的近似值相比,通过完全模拟预测的β值趋于更大。结论:该模型的新版本允许对离子辐射的生物学效应进行更机械的描述。完整的模拟是在高剂量下测试该方法有效性的先决条件,这对于应用在超分割研究中尤为重要。

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