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基于线性二次模型的放射生物效应治疗计划优化。

Radiobiological effect based treatment plan optimization with the linear quadratic model.

机构信息

German Cancer Research Center, Department of Medical Physics in Radiation Oncology, 69120 Heidelberg, Germany.

出版信息

Z Med Phys. 2010;20(3):188-96. doi: 10.1016/j.zemedi.2010.02.003. Epub 2010 Mar 20.

Abstract

As an approach towards more biology-oriented treatment planning for external beam radiation therapy, we present the incorporation of local radiation damage models into three dimensional treatment planning. This allows effect based instead of dose based plan optimization which could potentially better match the biologically relevant tradeoff between target and normal tissues. In particular, our approach facilitates an effective comparison of different fractionation schemes. It is based on the linear quadratic model to describe the biological radiation effect. Effect based optimization was integrated into our inverse treatment planning software KonRad, and we demonstrate the resulting differences between conventional and biological treatment planning. Radiation damage can be analyzed both qualitatively and quantitatively in dependence of the fractionation scheme and tissue specific parameters in a three dimensional voxel based system. As an example the potential advantages as well as the associated risks of hypofractionation for prostate cancer are analyzed and visualized with the help of effective dose volume histograms. Our results suggest a very conservative view regarding alternative fractionation schemes since uncertainties in biological parameters are still too big to make reliable clinical predictions.

摘要

为了实现更具生物学导向的外照射放射治疗计划,我们将局部放射损伤模型纳入三维治疗计划中。这种方法基于效应而不是剂量进行优化,可能会更好地匹配肿瘤和正常组织之间的生物学相关权衡。特别是,我们的方法促进了不同分割方案的有效比较。它基于线性二次模型来描述生物学辐射效应。基于效应的优化已集成到我们的逆向治疗计划软件 KonRad 中,我们展示了传统治疗计划与生物学治疗计划之间的差异。可以在三维体素系统中根据分割方案和组织特异性参数定性和定量地分析放射损伤。作为一个例子,借助有效剂量体积直方图,分析并可视化了前列腺癌的适形分割的潜在优势及其相关风险。我们的结果表明,对于替代分割方案,应该持非常保守的观点,因为生物学参数的不确定性仍然太大,无法进行可靠的临床预测。

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