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首页> 外文期刊>Trends in Ecology & Evolution >Probing deep tissues with laser-induced thermotherapy using near-infrared light
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Probing deep tissues with laser-induced thermotherapy using near-infrared light

机译:用近红外光探测激光诱导热疗的深组织

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摘要

Optically tunable gold nanoparticles have been widely used in research with near-infrared light as a means to enhance laser-induced thermal therapy since it capitalizes on nanoparticles' plasmonic heating properties. There have been several studies published on numerical models replicating this therapy in such conditions. However, there are several limitations on some of the models which can render the model unfaithful to therapy simulations. In this paper, two techniques of simulating laser-induced thermal therapy with a high-absorbing localized region of interest inside a phantom are compared. To validate these models, we conducted an experiment of an agar-agar phantom with an inclusion reproducing it with both models. The phantom was optically characterized by absorption and total attenuation. The first model is based on the macroperspective solution of the radiative transfer equation given by the diffusion equation, which is then coupled with the Pennes bioheat equation to obtain the temperature. The second is a Monte Carlo model that considers a stochastic solution of the same equation and is also considered as input to the Pennes bioheat transfer equation which is then computed. The Monte Carlo is in good agreement with the experimental data having an average percentage difference of 4.5% and a correlation factor of 0.98, while the diffusion method comparison with experimental data is 61% and 0.95 respectively. The optical characterization of the phantom and its inclusion were also validated indirectly since the Monte Carlo, which used those parameters, was also validated. While knowing the temperature in all points inside a body during photothermal therapy is important, one has to be mindful of the model which fits the conditions and properties. There are several reasons to justify the discrepancy of the diffusion method: low-scattering conditions, absorption, and reduced scattering are comparable. The error bars that are normally associated when characterizing an optical phantom can justify also a part of that uncertainty. For low-size tumors in depth, one may have to increase the light dosage in photothermal therapies to have a more effective treatment.
机译:光学可调谐金纳米颗粒已广泛用于近红外光的研究,作为增强激光诱导的热疗法的手段,因为它利用纳米颗粒的等离子体加热性能。在这些条件下复制这种治疗的数值模型上有几项研究。然而,一些模型存在若干局限性,这可以使模型不忠于治疗模拟。在本文中,比较了模拟激光诱导的热疗法的两种技术,其利用幽灵内部的高吸收局部感兴趣的感兴趣区域。为了验证这些模型,我们进行了一个agar-agar phantom的实验,其中包含两个模型的含有它。通过吸收和总衰减来光学表征幻影。第一模型基于由扩散方程给出的辐射传递方程的大倍频选择解,然后与Pennes生物发热方程耦合以获得温度。第二个是一种蒙特卡罗模型,其考虑相同的等式的随机解决方案,并且也被认为是对那时计算的彭尼斯生物发热方程的输入。 Monte Carlo与平均百分比差异为4.5%的实验数据和0.98的相关因子,分别与实验数据的扩散方法相比分别为61%和0.95。由于使用那些参数的蒙特卡罗,也经过验证,幻象的光学表征和其包含的光学表征也是间接验证的。在光热疗过程中知道身体内的所有点的温度虽然重要性是重要的,但必须注意符合条件和性质的模型。有几种原因是证明扩散方法的差异:低散射条件,吸收和降低的散射是可比的。在表征光学幻像时通常关联的误差条可以证明该不确定性的一部分。对于深度的低尺寸肿瘤,可能必须增加光热疗法中的光剂量以具有更有效的处理。

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