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4D Monte Carlo Dose Calculations for Particle Therapy Combined with the Spring Network Model of Lung Motion

机译:4D Monte Carlo剂量计算粒子疗法与肺部春天网络模型相结合

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To enable the evaluation of the impact of respiratory motion on charged particle therapy and to realize 4D treatment planning while keeping CT exposure as low as possible, we are developing a Monte Carlo dose calculation system combined with a computational biomechanical model of lung motion. The human lung is CT scanned for a single phase of a respiratory motion. The CT images are transformed into tetrahedral elements by automated segmentation. Then, the respiratory motion is simulated using a computational biomechanical model called the spring network model, and the calculated 3D shape of the lung for a given phase is transformed to a voxel data set. For each phase, assuming carbon-ion beam irradiation, biological dose distribution is calculated using the Monte Carlo particle and heavy ion transport code PHITS coupled with a microdosimetric kinetic model. The dose is mapped onto the reference data set to obtain the accumulated dose. The first version of the 4D dose calculation system we have developed so far can realistically reproduce the lung motion, successfully read the data set for each phase and calculate the accumulated dose. The number of the phases to be sampled and their weights can be set arbitrarily, without need of additional CT scanning. Our first simulations for a 70 MeV/u carbon ion beam with a diameter of 2 cm indicate that the dose distribution can significantly change with phase and that many data sets may be needed to accurately evaluate the dose to the surrounding normal tissue. The impact of the system we developed is two-fold: in the short term, it can be used to investigate different issues of 4D treatment planning; our goal is an entirely simulation-based 4D planning from a single CT scanning. The system is being developed further.
机译:为了能够评估呼吸运动对带电粒子疗法的影响,并实现4D治疗计划,同时保持CT暴露,我们正在开发蒙特卡罗剂量计算系统与肺动作的计算生物力学模型相结合。人肺被CT扫描呼吸运动的单相。通过自动分割将CT图像转化为四面体元件。然后,使用称为弹簧网络模型的计算生物力学模型来模拟呼吸运动,并且将给定相的肺的计算的3D形状转换为voxel数据集。对于每个阶段,假设碳离子束照射,使用与微透过动力学模型偶联的蒙特卡罗颗粒和重离子传输码率来计算生物剂量分布。剂量映射到参考数据集上以获得累积剂量。我们开发到目前为止的4D剂量计算系统的第一个版本可以实际再现肺部运动,成功读取每个阶段的数据集并计算累积剂量。可以随意设置要采样的阶段的数量及其重量,而无需额外的CT扫描。我们的第一种模拟直径为2cm的70 meV / U碳离子束,表明剂量分布可以随着阶段而显着改变,并且可能需要许多数据集来准确地评估围绕围绕正常组织的剂量。我们开发的系统的影响是两倍:在短期内,它可以用来调查4D治疗计划的不同问题;我们的目标是从单个CT扫描到完全基于仿真的4D规划。系统正在进一步开发。

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