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质子和重离子在柱状或球状神经元细胞树突段微观能量沉积的轨迹结构模型。

Track structure model of microscopic energy deposition by protons and heavy ions in segments of neuronal cell dendrites represented by cylinders or spheres.

机构信息

Department of Health Physics and Diagnostic Sciences, University of Nevada, Las Vegas, NV, USA.

Department of Health Physics and Diagnostic Sciences, University of Nevada, Las Vegas, NV, USA.

出版信息

Life Sci Space Res (Amst). 2017 May;13:27-38. doi: 10.1016/j.lssr.2017.03.004. Epub 2017 Apr 2.

Abstract

Changes to cognition, including memory, following radiation exposure are a concern for cosmic ray exposures to astronauts and in Hadron therapy with proton and heavy ion beams. The purpose of the present work is to develop computational methods to evaluate microscopic energy deposition (ED) in volumes representative of neuron cell structures, including segments of dendrites and spines, using a stochastic track structure model. A challenge for biophysical models of neuronal damage is the large sizes (> 100µm) and variability in volumes of possible dendritic segments and pre-synaptic elements (spines and filopodia). We consider cylindrical and spherical microscopic volumes of varying geometric parameters and aspect ratios from 0.5 to 5 irradiated by protons, and He and C particles at energies corresponding to a distance of 1cm to the Bragg peak, which represent particles of interest in Hadron therapy as well as space radiation exposure. We investigate the optimal axis length of dendritic segments to evaluate microscopic ED and hit probabilities along the dendritic branches at a given macroscopic dose. Because of large computation times to analyze ED in volumes of varying sizes, we developed an analytical method to find the mean primary dose in spheres that can guide numerical methods to find the primary dose distribution for cylinders. Considering cylindrical segments of varying aspect ratio at constant volume, we assess the chord length distribution, mean number of hits and ED profiles by primary particles and secondary electrons (δ-rays). For biophysical modeling applications, segments on dendritic branches are proposed to have equal diameters and axes lengths along the varying diameter of a dendritic branch.

摘要

辐射暴露后认知能力(包括记忆力)的变化是宇航员宇宙射线暴露和质子与重离子束强子治疗的关注点。本工作的目的是开发计算方法,使用随机径迹结构模型评估代表神经元细胞结构的体积内的微观能量沉积(ED)。神经元损伤的生物物理模型的一个挑战是,可能的树突段和前突(棘突和丝状伪足)的体积很大(> 100µm)且变化多样。我们考虑了不同几何参数和纵横比(从 0.5 到 5)的圆柱形和球形微观体积,用质子以及 He 和 C 粒子照射,这些粒子的能量对应于布拉格峰的 1cm 距离,这代表了强子治疗以及空间辐射暴露中的感兴趣粒子。我们研究了树突段的最佳轴长,以评估在给定宏观剂量下沿树突分支的微观 ED 和命中概率。由于分析不同尺寸体积内 ED 的计算时间很长,我们开发了一种分析球体中平均初级剂量的解析方法,可以指导数值方法找到圆柱体内的初级剂量分布。考虑到在恒定体积下具有不同纵横比的圆柱形段,我们评估了由初级粒子和次级电子(δ射线)引起的节段的弦长分布、命中次数和 ED 分布。对于生物物理建模应用,建议在具有不同直径的树突分支上的节段具有相等的直径和沿树突分支的直径变化的轴长。

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