Gold nanoparticle effect on dose and DNA damage enhancement in the vicinity of gold nanoparticles

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Abstract

This study uses Monte Carlo simulations to examine the dose enhancement effect of gold nanoparticles (AuNPs) in radiation therapy and its effects on DNA damage. Using the GATE- 9.0 and Geant4-DNA packages, Monte Carlo simulations were used to simulate a mathematical phantom and determine the energy deposition in the vicinity of AuNP. The simulations were conducted for various photon beam energies (50, 100, 250, and 6000 keV) with and without the presence of different-size AuNPs (10, 30, 50 and 100 nm). The dose enhancement factor (DER) was evaluated using Geant4-DNA to examine the effects AuNP sizes and photon beam energies on DNA damage. A multi-scale Monte Carlo simulation was conducted to evaluate enhanced DNA damage owing to nanoparticles in the proximity of cancer cells. The Monte Carlo simulations indicated that AuNPs boost the dose delivery, resulting in enhanced energy deposition and subsequent DNA damage. The DER analysis revealed a significant increase in the dose deposition within DNA, leading to single or double-strand breaks. Geant4-DNA simulations revealed information on the dosage enhancement factor for various AuNP sizes and photon beam intensities, enabling a deeper comprehension of the underlying mechanics. The outcomes of this study emphasize the potential of AuNPs as effective radiosensitizers in radiation therapy and contribute to the growing body of research on the use of nanotechnology in enhancing cancer treatment outcomes. Further investigations and experimental validations are necessary to optimize the usage of AuNPs for improved radiation therapy.

金纳米粒子对剂量和金纳米粒子附近 DNA 损伤增强的影响
本研究利用蒙特卡罗模拟来研究金纳米粒子(AuNPs)在放射治疗中的剂量增强效应及其对 DNA 损伤的影响。利用 GATE- 9.0 和 Geant4-DNA 软件包,蒙特卡罗模拟法模拟了一个数学模型,并确定了 AuNP 附近的能量沉积。模拟针对不同光子束能量(50、100、250 和 6000 keV)、不同尺寸 AuNPs(10、30、50 和 100 nm)的存在和不存在进行。使用 Geant4-DNA 评估了剂量增强因子 (DER),以研究 AuNP 尺寸和光子束能量对 DNA 损伤的影响。进行了多尺度蒙特卡洛模拟,以评估纳米粒子在癌细胞附近造成的 DNA 损伤增强。蒙特卡洛模拟结果表明,金纳米粒子提高了剂量传递,从而增强了能量沉积和随后的DNA损伤。DER 分析显示,DNA 内的剂量沉积明显增加,导致单链或双链断裂。Geant4-DNA 模拟揭示了不同 AuNP 尺寸和光子束强度下剂量增强因子的信息,从而加深了对基本力学的理解。这项研究的成果强调了 AuNPs 在放射治疗中作为有效放射增敏剂的潜力,并为越来越多的利用纳米技术提高癌症治疗效果的研究做出了贡献。要优化 AuNPs 的使用,提高放射治疗效果,还需要进一步的研究和实验验证。
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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