微波辅助热疗过程中介电纳米粒子注入组织幻象的热响应

Dhiraj Kumar, Purbarun Dhar, Anup K. Paul
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引用次数: 1

摘要

热疗已经使用了很多年;作为癌症治疗的潜在替代方式。本文报道了利用家用微波炉对组织模体进行微波辅助加热的实验研究。利用基于有限元方法的工具进行计算机模拟,以支持实验观察和深入了解组织模体内部的热传输方面。预测温度与实测温度吻合较好。此外,我们还通过实验研究了电介质纳米颗粒氧化铝(Al2O3)和氧化钛(TiO2)在纳米颗粒注入肿瘤幻影的math过程中的作用。实验专门模拟了注射纳米粒子溶液的深部肿瘤。在纳米颗粒注入组织模态的时空热历史方面获得了有趣的结果。由于纳米颗粒的存在,靶区附近的温度分布发生了升高,温度的空间分布发生了明显的变形。我们通过实验和模拟得出结论,与其他纳米颗粒介导的热疗技术不同,在肿瘤内直接注射纳米颗粒会增强邻近健康组织的产热。热疗事件的不均匀性从热点和冷点的局部发生可见一斑。本研究结果可能具有深远的意义,作为预测MWA期间温度分布的框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Response of Dielectric Nanoparticle-Infused Tissue Phantoms During Microwave-Assisted Hyperthermia
Hyperthermia has been in use for many years; as a potential alternative modality for cancer treatment. In this paper, an experimental investigation of microwave assisted thermal heating (MWATH) of tissue phantom using a domestic microwave oven has been reported. Computer simulations using finite element method based tools was also carried out to support the experimental observations and probe insight on the thermal transport aspects deep within the tissue phantom. A good agreement between predicted and measured temperature were achieved. Furthermore, experiments were conducted to investigate the efficacy of dielectric nanoparticles viz. alumina (Al2O3) and titanium oxide (TiO2) during the MWATH of nanoparticle infused tumor phantoms. A deep seated tumor injected with nanoparticle solution was specifically mimicked in the experiments. Interesting results were obtained in terms of spatiotemporal thermal history of the nanoparticle infused tissue phantoms. An elevation in the temperature distribution was achieved in the vicinity of the targeted zone due to the presence of nanoparticles, and the spatial distribution of temperature was grossly morphed. We conclusively show, using experiments and simulations that unlike other nanoparticle mediated hyperthermia techniques, direct injection of the nanoparticles within the tumor leads to enhanced heat generation in the neighb oring healthy tissues. The inhomogeneity of the hyperthermia event is evident from the lo cal occurrence of hot spots and cold spots respectively. The present findings may have far reaching implications as a framework in predicting temperature distributions during MWA.
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