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使用 Geant4-DNA 计算质子的微剂量学谱,并使用纳米结构的 -randomness 采样算法。

Calculation of microdosimetric spectra for protons using Geant4-DNA and a -randomness sampling algorithm for the nanometric structures.

机构信息

Department of Physics, Behbahan Khatam Alanbia University of Technology, Behbahan, Iran.

Department of Physics, School of Science, Shiraz University, Shiraz, Iran.

出版信息

Int J Radiat Biol. 2021;97(2):208-218. doi: 10.1080/09553002.2021.1854488. Epub 2021 Jan 19.

Abstract

PURPOSE

Through introducing stochastic quantities that can be connected to the dimensions of the microscopic structures exposed to radiations, microdosimetry is concerned with the substantive specifications of radiation quality that could help gain insight into radiation effects. Utilizing the -randomness method and Geant4-DNA code, we calculated microdosimetry quantities for nanometric structures in a spherical body of water irradiated with protons. To gain more insight into the effects of radiation on microscopic structures and validate the code parameters, we made a comparison between our results obtained within Geant4-DNA and results from other simulations.

MATERIALS AND METHODS

We calculated microdosimetric quantities through irradiating a spherical body of water of 6 m diameter with 0.5-100 MeV protons. Microdosimetric quantities were derived for cylinders with diameter × height values of 23 × 23, 50 × 100, and 300 × 300 Å × Å, which would resemble the typical sizes of sub-cellular organisms such as the DNA, nucleosome, and chromatin fiber. We exploited the concept of -randomness to introduce convex bodies of random positions and directions for calculating microdosimetric quantities. We used the Geant4-DNA Monte Carlo simulation toolkit for transporting protons and secondary particles and calculating the frequency- and dose-mean lineal and specific energies in cylindrical volumes. Specifically, for same-sized cylindrical volumes, microdosimetric parameters obtained by Nikjoo et al. using the KURBUC code were used for evaluation.

RESULTS

For the energy range investigated, the frequency-mean lineal energy, dose-mean lineal energy, frequency-mean specific energy, and dose-mean specific energy vary within [2.34,47.06] (keV/m), [10.40,68.55] (keV/m), [0.04,39.38] × 10 cGy, and [0.16,90.29] × 10 cGy, respectively. Regardless of the proton energy, our specific-energy results showed higher sensitivity to volume change, for smaller cylinder volumes rather than larger ones. Regardless of both proton energy and volume of the cylinder under study, we observed a generally better agreement between our frequency-mean, than dose-mean, specific energy results and the KURBUC results.

CONCLUSION

Using Geant4-DNA to account for the stochastic nature of energy depositions due to physical interactions between radiation and matter, we calculated microdosimetry parameters concerning proton irradiation. By employing microdosimetry concepts in conjunction with simulation results of our previous work on radiation effects on the DNA, we pinpointed and quantified correlations between microdosimetry parameters and DNA damage. As such, for a volume with comparable mass and mean chord length to the DNA, we could observe the clear correspondence of the mean lineal and specific energy results with the double-strand-break yields of protons in Gy.Gbp.

摘要

目的

通过引入与暴露于辐射的微观结构的尺寸相关的随机量,微剂量学关注于有助于深入了解辐射效应的辐射质量的实质规范。利用随机方法和 Geant4-DNA 代码,我们计算了质子辐照球形水中纳米结构的微剂量学参数。为了更深入地了解辐射对微观结构的影响并验证代码参数,我们将我们在 Geant4-DNA 中获得的结果与其他模拟的结果进行了比较。

材料和方法

我们通过用 0.5-100 MeV 质子辐照直径为 6 m 的球形水来计算微剂量学参数。对于直径×高度值分别为 23×23、50×100 和 300×300 Å×Å 的圆柱体,我们推导了微剂量学参数,这些参数类似于 DNA、核小体和染色质纤维等亚细胞结构的典型大小。我们利用随机性的概念引入了具有随机位置和方向的凸体,以计算微剂量学参数。我们使用 Geant4-DNA 蒙特卡罗模拟工具包来传输质子和次级粒子,并计算圆柱形体积中的频率和剂量平均线性能量和比能。具体来说,对于相同尺寸的圆柱形体积,我们使用 Nikjoo 等人使用 KURBUC 代码获得的微剂量学参数进行评估。

结果

在所研究的能量范围内,频率平均线性能量、剂量平均线性能量、频率平均比能和剂量平均比能分别在[2.34,47.06](keV/m)、[10.40,68.55](keV/m)、[0.04,39.38]×10 cGy 和[0.16,90.29]×10 cGy 之间变化。无论质子能量如何,我们的比能结果对体积变化的敏感性更高,对于较小的圆柱体体积而不是较大的体积。无论质子能量和研究中的圆柱体体积如何,我们观察到我们的频率平均比能结果与 KURBUC 结果之间的一致性通常优于剂量平均比能结果。

结论

我们使用 Geant4-DNA 来考虑由于辐射与物质之间的物理相互作用导致的能量沉积的随机性,计算了与质子辐照相关的微剂量学参数。通过将微剂量学概念与我们之前关于辐射对 DNA 影响的工作的模拟结果结合使用,我们确定并量化了微剂量学参数与 DNA 损伤之间的相关性。因此,对于与 DNA 具有可比质量和平均弦长的体积,我们可以观察到线性能量和比能结果与 Gy.Gbp 中质子的双链断裂产额之间的清晰对应关系。

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