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Time-resolved optical fluorescence spectroscopy of heterogeneous turbid media with special emphasis on brain tissue structures including diseased regions: A sensitivity analysis

机译:异质混浊介质的时间分辨光学荧光光谱法,特别关注包括患病部位在内的脑组织结构:敏感性分析

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摘要

Fluorescence-enhanced optical imaging based on near-infrared light provides a promising tool to differentiate diseased lesions from normal tissue. However, the measurement sensitivity of the fluorescence signals acquired at the output surface of the tissue is greatly influenced by the tissue structure, the optical properties, the location and the size of the target. In this paper, we present a numerical model based on the Monte Carlo method that allows to simulate time-resolved reflectance signals acquired on the surface of the scalp of a human head model bearing a fluorescent diseased region (tumor, glioma). The influence of tumor depth, tumor size and tumor shape evolution on the computed signals are analyzed by taking into account the multi-layered tissue structure. The simulations show that the mean-time-of-flight and the difference between two mean-times acquired at two source–detector distances are both relevant to this problem type. Furthermore, the simulations suggest that the use of the difference between mean-flight-times may be interesting to probe scattering changes that occur in the cerebrospinal fluid (CSF).
机译:基于近红外光的荧光增强光学成像为区分病变组织与正常组织提供了一种有前途的工具。然而,在组织的输出表面处获取的荧光信号的测量灵敏度受到组织结构,光学特性,靶标的位置和大小的很大影响。在本文中,我们提出了一种基于蒙特卡洛方法的数值模型,该模型可以模拟在带有荧光病变区域(肿瘤,神经胶质瘤)的人头模型的头皮表面上获取的时间分辨反射信号。通过考虑多层组织结构,分析了肿瘤深度,肿瘤大小和肿瘤形状演变对计算信号的影响。模拟表明,飞行平均时间和在两个源-探测器距离处获得的两个平均时间之间的差都与此问题类型有关。此外,模拟结果表明,使用平均飞行时间之间的差异来探测脑脊液(CSF)中发生的散射变化可能很有趣。

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