Modelling single cell dosimetry and DNA damage of targeted alpha therapy using Monte-Carlo techniques.

IF 2 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Adam L Jolly, Andrew L Fielding
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引用次数: 0

Abstract

Targeted alpha therapy (TαT) employs alpha particle-emitting radioisotopes conjugated to tumour-specific carriers to precisely irradiate tumour cells. Monte-carlo techniques have been used to accurately simulate absorbed dose and DNA damage for the four promising TαT radionuclides, Actinium-225 (225Ac), Radium-223, (223Ra), Lead-212 (212Pb) and Astatine-211, (211At). TOPAS and TOPAS-nBio, based on the Geant4 and Geant4-DNA monte-carlo codes respectively, were used to model the radioactive decay and alpha particle transport within a simplified spherical cell model. Four different sites within the cell model were used for the initial radionuclide distributions: the cell membrane layer, within the cytoplasm volume, on the nucleus surface, and within the nucleus volume. Results indicate higher absorbed doses to the nucleus per decay when radionuclides are initially located on the nucleus wall or within the nucleus volume. 225Ac and 223Ra, with longer decay chains and higher alpha yields, exhibit higher doses to the nucleus per decay compared to 212Pb and 211At. Notably, 211At, particularly when initially distributed within the nucleus volume or at its surface, demonstrates high relative efficacy, indicated by the absorbed dose to the nucleus per decay and number of single and double-strand breaks. These findings suggest that tumour-specific molecules should ideally target the nucleus to optimize efficacy.

利用蒙特卡罗技术模拟单细胞剂量学和靶向α治疗的DNA损伤。
靶向α疗法(t - α t)利用α粒子发射放射性同位素与肿瘤特异性载体结合,精确照射肿瘤细胞。利用蒙特卡罗技术精确模拟了四种有前途的TαT放射性核素:锕-225 (225Ac)、镭-223 (223Ra)、铅-212 (212Pb)和砹-211 (211At)的吸收剂量和DNA损伤。TOPAS和TOPAS- nbio分别基于Geant4和Geant4- dna蒙特卡罗编码,在简化的球形细胞模型中模拟了放射性衰变和α粒子的输运。细胞模型内的四个不同位置用于初始放射性核素分布:细胞膜层、细胞质体积内、核表面和核体积内。结果表明,当放射性核素最初位于核壁或核体积内时,每次衰变对核的吸收剂量更高。与212Pb和211At相比,225Ac和223Ra具有更长的衰变链和更高的α产率,每次衰变对原子核的剂量更高。值得注意的是,211At,特别是最初分布在细胞核体积内或其表面时,表现出较高的相对功效,这可以通过每次衰变对细胞核的吸收剂量和单链和双链断裂的数量来表明。这些发现表明,肿瘤特异性分子应该理想地靶向细胞核以优化疗效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.40
自引率
4.50%
发文量
110
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