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Transmission and fluorescence angular domain optical projection tomography of turbid media

机译:混浊介质的透射和荧光角域光学投影层析成像

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When imaging through turbid media, objects are often blurred by scattered light. An optical collimator (i.e., an angular filter array) improves images by accepting only photons propagating within a narrow solid angle about the direction of the incident light. These photons are expected to participate in a limited number of small-angle scattering events, maintaining their original propagation direction and, finally, contributing to the development of a faithful image of an object within a turbid medium. The collimation method, also referred to as angular domain imaging (ADI), applies to a see-through configuration where the incident collimated light beam can be aligned with the collimator in a transillumination mode of operation. In this paper, we present angular domain optical projection tomography (ADOPT), a method that can extract depth information of optical contrast in turbid media with high longitudinal resolution based on ADI technology. The resolution of the ADI system has been tested over various depths in a 5 cm optical cuvette using a resolution target suspended in a homogeneous turbid medium. The ADOPT system reconstructed images from a series of angular domain projections collected at angular intervals. The system was used to measure the attenuation of an absorbing target in transmission mode (t-ADOPT) and to measure the light emitting from a fluorescent target (f-ADOPT). Tissue-mimicking phantoms were used to validate the performance of the method. In the t-ADOPT configuration, a background scattered light estimation and subtraction methodology was introduced to improve the imaging contrast. A target consisting of two graphite rods (0.9 mm diameter) was suspended in the cuvette by a rotation stage. An Indocyanine Green-filled glass rod was used as an imaging target in the f-ADOPT arrangement. The target was placed in a manner such that the line of laser light was perpendicular to the longitudinal axis of the rods. Several projections were collected at increments of 1.8 deg and compiled into a sinogram. A transverse image was reconstructed from the sinogram by using filtered backprojection and image contrast was improved by experimental scatter measurements using a wedge prism and an image processing algorithm. The submillimeter target embedded in a 2 cm thick scattering medium (reduced scattering coefficient <=2.4 cm~(-1)) was discernable in both the sinograms and the reconstructed images. In the f-ADOPT system, fluorescent line targets < 1 cm in diameter embedded in a 2 cm thick scattering medium (reduced scattering coefficient <=0.8 cm~(-1)) were discernable in both the sinograms and the reconstructed images. The proposed method could be used as the basis to construct an optical tomographic scanner for simultaneous absorption and fluorescence-based imaging of biological specimens (i.e., up to 7 mm across).
机译:通过混浊的介质成像时,物体经常被散射光模糊。光学准直仪(即,角度滤光器阵列)通过仅接受围绕入射光的方向在窄立体角内传播的光子来改善图像。预计这些光子将参与有限数量的小角度散射事件,从而保持其原始传播方向,并最终有助于在浑浊的介质中形成物体的真实图像。准直方法,也称为角域成像(ADI),适用于透视配置,在该配置中,入射的准直光束可以在透射模式下与准直器对准。在本文中,我们提出了一种角域光学投影层析成像技术(ADOPT),它是一种基于ADI技术能够以高纵向分辨率提取浑浊介质中光学对比度深度信息的方法。 ADI系统的分辨率已在5 cm光学比色皿中的各个深度上进行了测试,使用的是悬浮在均匀浑浊介质中的分辨率目标。 ADOPT系统从以角度间隔收集的一系列角域投影中重建图像。该系统用于测量吸收目标在透射模式下的衰减(t-ADOPT),并测量从荧光目标发出的光(f-ADOPT)。模仿组织的模型用于验证该方法的性能。在t-ADOPT配置中,引入了背景散射光估计和减法以提高成像对比度。通过旋转台将由两根石墨棒(直径为0.9 mm)组成的标靶悬挂在比色杯中。在f-ADOPT装置中,使用填充了吲哚菁绿的玻璃棒作为成像目标。以使得激光线垂直于棒的纵轴的方式放置靶。以1.8度的增量收集了几个投影,并将其编译成正弦图。通过使用滤波后的反投影从正弦图重建横向图像,并通过使用楔形棱镜和图像处理算法的实验散射测量来改善图像对比度。在正弦图和重建图像中都可以分辨出嵌入2 cm厚散射介质(降低的散射系数<= 2.4 cm〜(-1))中的亚毫米级目标。在f-ADOPT系统中,在正弦图和重建图像中都可以分辨出直径小于1 cm的荧光线目标嵌入2 cm厚的散射介质(散射系数<= 0.8 cm〜(-1))。所提议的方法可以用作构建光学断层扫描仪的基础,以便同时吸收和基于荧光的生物样本成像(即,最大跨度为7毫米)。

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