Kyriakou Ioanna, Sakata Dousatsu, Tran Hoang Ngoc, Perrot Yann, Shin Wook-Geun, Lampe Nathanael, Zein Sara, Bordage Marie Claude, Guatelli Susanna, Villagrasa Carmen, Emfietzoglou Dimitris, Incerti Sébastien
Medical Physics Laboratory, Department of Medicine, University of Ioannina, 45110 Ioannina, Greece.
Department of Accelerator and Medical Physics, Institute of Quantum Medical Science, QST, Chiba 263-8555, Japan.
Cancers (Basel). 2021 Dec 22;14(1):35. doi: 10.3390/cancers14010035.
The Geant4-DNA low energy extension of the Geant4 Monte Carlo (MC) toolkit is a continuously evolving MC simulation code permitting mechanistic studies of cellular radiobiological effects. Geant4-DNA considers the physical, chemical, and biological stages of the action of ionizing radiation (in the form of x- and γ-ray photons, electrons and β-rays, hadrons, α-particles, and a set of heavier ions) in living cells towards a variety of applications ranging from predicting radiotherapy outcomes to radiation protection both on earth and in space. In this work, we provide a brief, yet concise, overview of the progress that has been achieved so far concerning the different physical, physicochemical, chemical, and biological models implemented into Geant4-DNA, highlighting the latest developments. Specifically, the "dnadamage1" and "molecularDNA" applications which enable, for the first time within an open-source platform, quantitative predictions of early DNA damage in terms of single-strand-breaks (SSBs), double-strand-breaks (DSBs), and more complex clustered lesions for different DNA structures ranging from the nucleotide level to the entire genome. These developments are critically presented and discussed along with key benchmarking results. The Geant4-DNA toolkit, through its different set of models and functionalities, offers unique capabilities for elucidating the problem of radiation quality or the relative biological effectiveness (RBE) of different ionizing radiations which underlines nearly the whole spectrum of radiotherapeutic modalities, from external high-energy hadron beams to internal low-energy gamma and beta emitters that are used in brachytherapy sources and radiopharmaceuticals, respectively.
Geant4蒙特卡罗(MC)工具包的Geant4-DNA低能扩展是一个不断发展的MC模拟代码,可用于细胞放射生物学效应的机制研究。Geant4-DNA考虑了电离辐射(以x射线和γ射线光子、电子和β射线、强子、α粒子以及一组重离子的形式)在活细胞中的物理、化学和生物阶段,以用于从预测放射治疗结果到地球和太空辐射防护等各种应用。在这项工作中,我们简要而精炼地概述了到目前为止在Geant4-DNA中实现的不同物理、物理化学、化学和生物模型所取得的进展,突出了最新进展。具体而言,“dnadamage1”和“molecularDNA”应用程序首次在开源平台内实现了对早期DNA损伤的定量预测,这些损伤包括单链断裂(SSB)、双链断裂(DSB)以及从核苷酸水平到整个基因组的不同DNA结构的更复杂的簇状损伤。这些进展与关键的基准测试结果一起进行了批判性的呈现和讨论。Geant4-DNA工具包通过其不同的模型和功能集,为阐明辐射质量问题或不同电离辐射的相对生物效应(RBE)提供了独特的能力,这几乎是整个放射治疗模式的基础,从外部高能强子束到分别用于近距离放射治疗源和放射性药物的内部低能γ和β发射体。