Chatzipapas Konstantinos P, Tran Ngoc Hoang, Dordevic Milos, Zivkovic Sara, Zein Sara, Shin Wook-Geun, Sakata Dousatsu, Lampe Nathanael, Brown Jeremy M C, Ristic-Fira Aleksandra, Petrovic Ivan, Kyriakou Ioanna, Emfietzoglou Dimitris, Guatelli Susanna, Incerti Sébastien
University of Bordeaux, CNRS, LP2I Bordeaux, UMR 5797 Gradignan France.
Vinca Institute of Nuclear Sciences, National Institute of the Republic of Serbia University of Belgrade, Vinca Belgrade Serbia.
Precis Radiat Oncol. 2023 Feb 13;7(1):4-14. doi: 10.1002/pro6.1186. eCollection 2023 Mar.
The scientific community shows great interest in the study of DNA damage induction, DNA damage repair, and the biological effects on cells and cellular systems after exposure to ionizing radiation. Several methods have been proposed so far to study these mechanisms using Monte Carlo simulations. This study outlines a Geant4-DNA example application, named "molecularDNA", publicly released in the 11.1 version of Geant4 (December 2022).
It was developed for novice Geant4 users and requires only a basic understanding of scripting languages to get started. The example includes two different DNA-scale geometries of biological targets, namely "cylinders" and "human cell". This public version is based on a previous prototype and includes new features, such as: the adoption of a new approach for the modeling of the chemical stage, the use of the standard DNA damage format to describe radiation-induced DNA damage, and upgraded computational tools to estimate DNA damage response.
Simulation data in terms of single-strand break and double-strand break yields were produced using each of the available geometries. The results were compared with the literature, to validate the example, producing less than 5% difference in all cases. Conclusion: "molecularDNA" is a prototype tool that can be applied in a wide variety of radiobiology studies, providing the scientific community with an open-access base for DNA damage quantification calculations. New DNA and cell geometries for the "molecularDNA" example will be included in future versions of Geant4-DNA.
科学界对电离辐射暴露后DNA损伤诱导、DNA损伤修复以及对细胞和细胞系统的生物学效应研究表现出极大兴趣。到目前为止,已经提出了几种使用蒙特卡罗模拟来研究这些机制的方法。本研究概述了一个名为“molecularDNA”的Geant4-DNA示例应用程序,该程序在Geant4的11.1版本(2022年12月)中公开发布。
它是为Geant4新手用户开发的,只需对脚本语言有基本了解即可开始使用。该示例包括两种不同的生物靶标的DNA尺度几何结构,即“圆柱体”和“人类细胞”。这个公开版本基于之前的原型,并包括新功能,例如:采用新方法对化学阶段进行建模,使用标准DNA损伤格式来描述辐射诱导的DNA损伤,以及升级计算工具以估计DNA损伤反应。
使用每种可用的几何结构生成了单链断裂和双链断裂产率方面的模拟数据。将结果与文献进行比较,以验证该示例,在所有情况下差异均小于5%。结论:“molecularDNA”是一种原型工具,可应用于各种放射生物学研究,为科学界提供用于DNA损伤定量计算的开放获取基础。“molecularDNA”示例的新DNA和细胞几何结构将包含在未来版本的Geant4-DNA中。