Radiation Applications Research School, Nuclear Science and Technology Research Institute, Atomic Energy Organization of Iran, Tehran.
Int J Radiat Biol. 2013 Jan;89(1):57-64. doi: 10.3109/09553002.2012.715785. Epub 2012 Sep 13.
In this work the number of DNA single-strand breaks (SSB) and double-strand breaks (DSB) due to direct and indirect effects of Auger electrons from incorporated (123)I and (125)I have been calculated by using the Geant4-DNA toolkit. We have performed and compared the calculations for several cases: (125)I versus (123)I, source positions and direct versus indirect breaks to study the capability of the Geant4-DNA in calculations of DNA damage yields.
Two different simple geometries of a 41 base pair of B-DNA have been simulated. The location of (123)I has been considered to be in (123)IdUrd and three different locations for (125)I.
The results showed that the simpler geometry is sufficient for direct break calculations while indirect damage yield is more sensitive to the helical shape of DNA. For (123)I Auger electrons, the average number of DSB due to the direct hits is almost twice the DSB due to the indirect hits. Furthermore, a comparison between the average number of SSB or DSB caused by Auger electrons of (125)I and (123)I in (125)IdUrd and (123)IdUrd shows that (125)I is 1.5 times more effective than (123)I per decay.
The results are in reasonable agreement with previous experimental and theoretical results which shows the applicability of the Geant-DNA toolkit in nanodosimetry calculations which benefits from the open-source accessibility with the advantage that the DNA models used in this work enable us to save the computational time. Also, the results showed that the simpler geometry is suitable for direct break calculations, while for the indirect damage yield, the more precise model is preferred.
在这项工作中,通过使用 Geant4-DNA 工具包,计算了掺入的 (123)I 和 (125)I 的俄歇电子的直接和间接作用导致的 DNA 单链断裂 (SSB) 和双链断裂 (DSB) 的数量。我们已经针对几种情况进行了计算和比较:(125)I 与 (123)I、源位置以及直接与间接断裂,以研究 Geant4-DNA 在 DNA 损伤产额计算中的能力。
模拟了两种不同的 41 个碱基对 B-DNA 的简单几何形状。考虑了 (123)I 的位置在 (123)IdUrd 中,以及 (125)I 的三个不同位置。
结果表明,对于直接断裂计算,较简单的几何形状就足够了,而间接损伤产额对 DNA 的螺旋形状更为敏感。对于 (123)I 俄歇电子,直接命中引起的 DSB 平均数量几乎是间接命中引起的 DSB 平均数量的两倍。此外,(125)IdUrd 和 (123)IdUrd 中 (125)I 和 (123)I 的俄歇电子引起的 SSB 或 DSB 的平均数量的比较表明,(125)I 的每一次衰变比 (123)I 有效 1.5 倍。
结果与先前的实验和理论结果基本一致,这表明 Geant-DNA 工具包适用于纳米剂量学计算,其开源可访问性具有优势,我们可以利用该优势在这项工作中使用的 DNA 模型来节省计算时间。此外,结果表明,较简单的几何形状适用于直接断裂计算,而对于间接损伤产额,则需要更精确的模型。