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Time-domain geometrical localization of point-like fluorescence inclusions in turbid media with early photon arrival times

机译:光子到达时间较早的浑浊介质中点状荧光包裹体的时域几何定位

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摘要

We introduce a novel approach for localizing a plurality of discrete point-like fluorescent inclusions embedded in a thick turbid medium using time-domain measurements. The approach uses early photon information contained in measured time-of-flight distributions originating from fluorescence emission. Fluorescence time point-spread functions (FTPSFs) are acquired with ultrafast time-correlated single photon counting after short pulse laser excitation. Early photon arrival times are extracted from the FTPSFs obtained from several source-detector positions. Each source-detector measurement allows defining a geometrical locus where an inclusion is to be found. These loci take the form of ovals in 2D or ovoids in 3D. From these loci a map can be built, with the maxima thereof corresponding to positions of inclusions. This geometrical approach is supported by Monte Carlo simulations performed for biological tissue-like media with embedded fluorescent inclusions. To validate the approach, several experiments are conducted with a homogeneous phantom mimicking tissue optical properties. In the experiments, inclusions filled with indocyanine green are embedded in the phantom and the fluorescence response to a short pulse of excitation laser is recorded. With our approach, several inclusions can be localized with low millimeter positional error. Our results support the approach as an accurate, efficient, and fast method for localizing fluorescent inclusions embedded in highly turbid media mimicking biological tissues. Further Monte Carlo simulations on a realistic mouse model show the feasibility of the technique for small animal imaging.
机译:我们介绍了一种新颖的方法,可以使用时域测量来定位嵌入在浑浊的厚介质中的多个离散点状荧光包裹体。该方法使用包含在源自荧光发射的测量飞行时间分布中的早期光子信息。在短脉冲激光激发后,通过超快速的时间相关的单光子计数获得荧光时间点扩展函数(FTPSF)。从几个源探测器位置获得的FTPSF中提取早期光子到达时间。每个源检测器测量都允许定义要在其中找到夹杂物的几何轨迹。这些位点的形式为2D的椭圆形或3D的卵形。从这些基因座可以构建一个图,其最大值对应于包含物的位置。这种几何方法得到了对具有嵌入式荧光包裹体的生物组织样介质进行的蒙特卡洛模拟的支持。为了验证该方法,使用模拟组织光学特性的均质体模进行了一些实验。在实验中,填充有吲哚花青绿的夹杂物嵌入模型中,并记录了对短脉冲激发激光的荧光响应。使用我们的方法,可以以低毫米的位置误差定位多个夹杂物。我们的结果支持该方法作为一种准确,高效和快速的方法,用于定位嵌入在模仿生物组织的高浊度介质中的荧光包裹体。在逼真的鼠标模型上进行的进一步蒙特卡洛模拟显示了该技术用于小动物成像的可行性。

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