首页> 外文会议>Conference on Optical Tomography and Spectroscopy of Tissue V Jan 26-29, 2003 San Jose, California, USA >Effects of tissue optical properties on time-resolved fluorescence measurements from brain tumors: An experimental and computational study
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Effects of tissue optical properties on time-resolved fluorescence measurements from brain tumors: An experimental and computational study

机译:组织光学特性对脑肿瘤时间分辨荧光测量的影响:一项实验和计算研究

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Time-Resolved Laser-Induced Fluorescence Spectroscopy (tr-LIFS) offers the potential for intra-operative diagnosis of primary brain tumors. However, both the intrinsic properties of endogenous fluorophores and the optical properties of brain tissue could affect the fluorescence measurements from brain. Scattering has been demonstrated to increase, for instance, detected lifetimes by 10-20% in media less scattering than the brain. The overall goal of this study is to investigate experimentally and computationally how optical properties of distinct types of brain tissue (normal porcine white and gray matter) affect the propagation of the excitation pulse and fluorescent transients and the detected fluorescence lifetime. A time-domain tr-LIFS apparatus (fast digitizer and gated detection) was employed to measure the propagation of ultra-short pulsed light through brain specimens (1-2.5-mm source-detector separation; 0,100-mm increment). A Monte Carlo model for semi-infinite turbid media was used to simulate time-resolved light propagation for arbitrary source-detector fiber geometries and optical fiber specifications; and to record spatially- and temporally resolved information. We determined a good correlation between experimental and computational results. Our findings provide means for quantification of time-resolved fluorescence spectra from healthy and diseased brain tissue.
机译:时间分辨激光诱导荧光光谱法(tr-LIFS)为原发性脑肿瘤的术中诊断提供了潜力。然而,内源性荧光团的内在特性和大脑组织的光学特性都可能影响来自大脑的荧光测量。例如,在比大脑更少的散射介质中,散射被证明可以提高检测到的寿命10-20%。这项研究的总体目标是通过实验和计算方式研究不同类型的脑组织(正常猪白和灰质)的光学特性如何影响激发脉冲和荧光瞬变的传播以及检测到的荧光寿命。使用时域tr-LIFS仪器(快速数字化仪和门控检测)测量超短脉冲光通过脑标本的传播(1-2.5毫米源-探测器间距; 0,100毫米增量)。使用半无限混浊介质的蒙特卡洛模型来模拟时间分辨的光传播,以分析任意源探测器光纤的几何形状和光纤规格;并记录时空解析的信息。我们确定了实验结果与计算结果之间的良好相关性。我们的发现提供了量化来自健康和患病脑组织的时间分辨荧光光谱的手段。

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