Monte Carlo modeling in CT-based geometries: dosimetry for biological modeling experiments with particle beam radiation.
Monte Carlo modeling in CT-based geometries: dosimetry for biological modeling experiments with particle beam radiation.
复制标题
基于 CT 的几何形状中的蒙特卡罗建模:粒子束辐射生物建模实验的剂量测定。
DOI:
10.1093/jrr/rrt118
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发表时间:
2014
影响因子:
2
通讯作者:
Cengel,KeithA
中科院分区:
文献类型:
--
作者:
Diffenderfer,EricS;Dolney,Derek;Schaettler,Maximilian;Sanzari,JenineK;McDonough,James;Cengel,KeithA
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.