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Analysis of nanoparticles optical propagation influence in biological tissue simulating phantoms

机译:纳米颗粒光学繁殖影响对生物组织模拟模拟的分析

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The applications of nanoparticles in optical techniques of diagnosis and treatment of biological tissues are increasing. Image contrast can be improved in diagnostic approaches such as fluorescence, spectroscopy or optical coherence tomography. The therapeutic effect can be increased if nanoparticles are previously incorporated in the biological tissue. This is the case in thermotherapy, or in Photodynamic Therapy. All these applications take advantage of specific properties of the nanoparticles involved, either optical up- or down-conversion, thermal confinement or the ability to act as a drug-carrier. Although many biomedical applications that involve nanoparticles are being proposed and tested, there is a need to take into account the influence of those nanoparticles on optical radiation propagation. The previously mentioned optical treatment and diagnosis techniques assume a particular optical propagation pattern, which is altered by the addition of nanoparticles. This change depends on the nanoparticle material, shape, size and concentration, among other parameters. In order to try to quantify these changes, in this work several phantoms that include different nanoparticles are analyzed, in order to estimate the influence of nanoparticles in optical propagation. A theoretical model of optical propagation, which takes into account the absorption and scattering changes in the medium, is also considered. Nanoparticles of different sizes from 40 run to 1 μm are analyzed. Nanoparticle materials of interest in biomedical applications are employed. The results are relevant in diagnosis interpretation of images and treatment outcome evaluation when nanoparticles are present.
机译:纳米颗粒在诊断和治疗生物组织的光学技术中的应用正在增加。在诸如荧光,光谱或光学相干断层扫描的诊断方法中可以改善图像对比度。如果纳米颗粒预先掺入生物组织中,可以增加治疗效果。这是热疗的情况,或在光动力疗法中。所有这些应用都利用所涉及的纳米颗粒的特异性,光学升级或下转化,热限制或充当药物载体的能力。尽管提出和测试了许多涉及纳米颗粒的生物医学应用,但需要考虑这些纳米颗粒对光学辐射繁殖的影响。前面提到的光学处理和诊断技术假设特定的光学传播图案,其通过添加纳米颗粒而改变。这种变化取决于纳米颗粒材料,形状,尺寸和浓度等参数。为了尝试量化这些变化,在该工作中,分析包括不同纳米颗粒的几个幻像,以估计纳米颗粒在光学繁殖中的影响。还考虑了考虑了培养基中吸收和散射变化的光传播的理论模型。分析从40次达到1μm的不同尺寸的纳米粒子。采用生物医学应用的纳米粒子材料。结果与纳米颗粒存在的图像和治疗结果评估的诊断解释相关。

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