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首页> 外文期刊>Journal of Radiation Research: Official Organ of the Japan Radiation Research Society >Monte Carlo modeling in CT-based geometries: dosimetry for biological modeling experiments with particle beam radiation
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Monte Carlo modeling in CT-based geometries: dosimetry for biological modeling experiments with particle beam radiation

机译:基于CT的几何中的蒙特卡洛建模:用于粒子束辐射生物建模实验的剂量法

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摘要

The space radiation environment imposes increased dangers of exposure to ionizing radiation, particularly during a solar particle event (SPE). These events consist primarily of low energy protons that produce a highly inhomogeneous dose distribution. Due to this inherent dose heterogeneity, experiments designed to investigate the radiobiological effects of SPE radiation present difficulties in evaluating and interpreting dose to sensitive organs. To address this challenge, we used the Geant4 Monte Carlo simulation framework to develop dosimetry software that uses computed tomography (CT) images and provides radiation transport simulations incorporating all relevant physical interaction processes. We found that this simulation accurately predicts measured data in phantoms and can be applied to model dose in radiobiological experiments with animal models exposed to charged particle (electron and proton) beams. This study clearly demonstrates the value of Monte Carlo radiation transport methods for two critically interrelated uses: (i) determining the overall dose distribution and dose levels to specific organ systems for animal experiments with SPE-like radiation, and (ii) interpreting the effect of random and systematic variations in experimental variables (e.g. animal movement during long exposures) on the dose distributions and consequent biological effects from SPE-like radiation exposure. The software developed and validated in this study represents a critically important new tool that allows integration of computational and biological modeling for evaluating the biological outcomes of exposures to inhomogeneous SPE-like radiation dose distributions, and has potential applications for other environmental and therapeutic exposure simulations.
机译:空间辐射环境特别是在太阳粒子事件(SPE)期间增加了暴露于电离辐射的危险。这些事件主要由产生高度不均匀剂量分布的低能质子组成。由于这种固有的剂量异质性,旨在研究SPE辐射的放射生物学效应的实验在评估和解释对敏感器官的剂量方面存在困难。为了应对这一挑战,我们使用Geant4蒙特卡洛模拟框架开发了剂量分析软件,该软件使用计算机断层扫描(CT)图像并提供了包含所有相关物理相互作用过程的辐射传输模拟。我们发现,该模拟可以准确地预测幻像中的测量数据,并且可以将其应用于暴露于带电粒子(电子和质子)束的动物模型的放射生物学实验中的剂量模型。这项研究清楚地证明了蒙特卡洛辐射传输方法对于两种至关重要的相互关联的用途的价值:(i)确定类器官固相萃取辐射在动物实验中特定器官系统的总体剂量分布和剂量水平,以及(ii)解释剂量分布的实验变量(例如长时间暴露过程中的动物运动)的随机和系统变化,以及类似SPE的辐射暴露对生物学的影响。在这项研究中开发和验证的软件代表了至关重要的新工具,该工具可以集成计算模型和生物学模型,以评估暴露于非均匀SPE样辐射剂量分布的生物学结果,并且在其他环境和治疗暴露模拟中具有潜在的应用。

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