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Monte Carlo simulation of enhanced laser absorption in tumors with gold nanorods inclusions.

机译:用金纳米棒包裹体在肿瘤中增强激光吸收的蒙特卡罗模拟。

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摘要

Laser ablation is a widely used technology in medicine as a surgical tool for cutting and removing tissue. In cancer treatment via temperature elevations in tumor by laser energy absorption, the challenge is how to deliver laser to deep-seated tumors and how to confine laser energy to targeted region. Recently, laser photothermal therapy utilizing gold nanoshells or nanorods has attracted a lot of attention due to its ability of concentrating laser energy to tumor region with minimal collateral thermal damage to the surrounding healthy tissue. In this thesis research, the focus is on the near infrared (NIR) laser propagation in tumor tissue and the resulted specific absorption rate (SAR) distribution in tumors enhanced by nanorod absorption of laser energy. We have developed a computational algorithm of Monte Carlo simulation of laser photon propagation in a two-layer spherical tumor, mimicking a tumor with an intratumoral nanorod injection at the tumor center. It has been found that the presence of nanorods in the tumor not only concentrates the majority of the laser, but also shifts the laser absorption towards the upper half of the tumor. Parametric studies are also performed to test the effects of radiation properties of the nanorod region on the resulted energy absorption distribution. It is confirmed that the absorption coefficient acts similarly as that suggested by the Beer's law, however, the scattering coefficient greatly enhances photon energy escaping from the upper boundary of the simulated domain. We conclude that the Monte Carlo method is a powerful tool to understand photon propagation in multi-layer tissue and it is supposed to be more accurate than the simple Beer's law even with an effective attenuation coefficient combining absorption and scattering coefficients. The computational algorithm can be used in the future to extract radiation properties of nanorod region, as well as to improve simulation accuracy in designing optimal treatment protocols in cancer treatment using laser photothermal therapy.
机译:激光消融是医学上广泛用于外科手术的技术,用于切除组织。在通过激光能量吸收使肿瘤温度升高的癌症治疗中,挑战在于如何将激光传递到深部肿瘤以及如何将激光能量限制在目标区域。近来,利用金纳米壳或纳米棒的激光光热疗法由于能够将激光能量集中到肿瘤区域而对周围健康组织的间接热损害最小,因而引起了很多关注。在本论文的研究中,重点是近红外(NIR)激光在肿瘤组织中的传播以及纳米棒吸收激光能量增强了肿瘤中的比吸收率(SAR)分布。我们已经开发了蒙特卡罗模拟的激光光子在两层球形肿瘤中传播的计算算法,通过在肿瘤中心进行瘤内纳米棒注射来模拟肿瘤。已经发现,肿瘤中纳米棒的存在不仅使大部分激光集中,而且使激光吸收移向肿瘤的上半部分。还进行了参数研究,以测试纳米棒区域的辐射特性对所得能量吸收分布的影响。可以确认,吸收系数的作用与比尔定律所建议的相似,但是,散射系数极大地增强了从模拟域的上边界逸出的光子能量。我们得出的结论是,蒙特卡洛方法是了解光子在多层组织中传播的有力工具,并且即使具有结合吸收系数和散射系数的有效衰减系数,它也比简单比尔定律更准确。该计算算法可在将来用于提取纳米棒区域的辐射特性,以及在设计使用激光光热疗法治疗癌症的最佳治疗方案时提高模拟准确性。

著录项

  • 作者

    Chen, Yonghui.;

  • 作者单位

    University of Maryland, Baltimore County.;

  • 授予单位 University of Maryland, Baltimore County.;
  • 学科 Engineering Biomedical.;Health Sciences Oncology.;Engineering Mechanical.
  • 学位 M.S.
  • 年度 2012
  • 页码 58 p.
  • 总页数 58
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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