a Faculty of Informatics and Management , University of Hradec Kralove , Hradec Kralove , Czech Republic.
b Biomedical Research Centre , University Hospital Hradec Kralove , Hradec Kralove , Czech Republic.
Int J Hyperthermia. 2018 Dec;34(8):1255-1264. doi: 10.1080/02656736.2018.1440016. Epub 2018 Mar 5.
The optimal light dose, heat generation, consequent heat spread and an accurate thermal damage model, are key components of effective laser therapies. Recent advances in nanotechnology offer numerous possibilities on how to increase the efficacy of hyperthermia for tumour treatments. Gold nanoparticles are a promising candidate towards the achievement of this goal owing to their properties for efficiently converting light to heat. In this review, we summarise the numerical tools that are available for theoretical studies of gold-nanoparticle-mediated photo-thermal therapy. The processes that occur in the treatments based on light propagation inside biological tissues and the subsequent temperature distributions are considered first, followed by evaluation of the thermal damage. The fundamental ideas underlying the presented methods are described in addition to their applications in photo-thermal therapy and its effects. The descriptions of extensively used tools for the characterisation of nanoparticles across multiple research fields are also presented for estimating the electromagnetic properties of gold nanoparticles (e.g. discrete dipole approximations, finite-difference time-domain simulations), the Monte Carlo model of light propagation in biological tissues, and the Pennes' bio-heat equation. In addition, the Arrhenius damage evaluation and the cumulative effective minutes normalisation methods are described. Finally, recent in vivo and in vitro results from the rapidly growing field of nanomedicine are presented.
最佳光剂量、热量产生、随之而来的热扩散以及准确的热损伤模型是有效激光治疗的关键组成部分。纳米技术的最新进展为如何提高肿瘤热疗的疗效提供了许多可能性。由于金纳米粒子具有将光高效转化为热的特性,因此它们是实现这一目标的有前途的候选者。在这篇综述中,我们总结了可用于金纳米粒子介导的光热治疗理论研究的数值工具。首先考虑了基于生物组织内光传播和随后的温度分布的治疗中发生的过程,然后评估了热损伤。除了在光热治疗及其效果中的应用外,还描述了所提出方法的基本思想。还介绍了用于在多个研究领域中表征纳米粒子的广泛使用的工具的描述,以估计金纳米粒子的电磁特性(例如离散偶极近似、有限差分时域模拟)、生物组织中的光传播的蒙特卡罗模型和彭内斯生物热方程。此外,还描述了阿仑尼乌斯损伤评估和累积有效分钟归一化方法。最后,介绍了纳米医学这一快速发展领域的最新体内和体外结果。