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Laminar optical tomography: high-resolution 3D functional imaging of superficial tissues

机译:层层光学断层扫描:高分辨率3D功能成像的浅表组织

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Laminar Optical Tomography (LOT) is a new medical imaging modality for high-resolution, depth-resolved, functional imaging of superficial tissue such as rodent cortex, skin and the retina. LOT uses visible laser light to image to depths of > 2mm (far deeper than microscopy) and is highly sensitive to absorption and fluorescence contrast, enabling spectroscopic functional information such as hemoglobin oxygenation to be imaged with 100-200 micron resolution. LOT has been used to image the hemodynamic response to stimulus in the somatosensory cortex of rats. The resulting three-dimensional (3D) images through the depth of the cortex can be used to delineate the arterial, capillary and venous responses, revealing new information about the intricacies of the oxygenation and blood flow dynamics related to neuronal activation. Additional applications of LOT are being explored, including the integration of 3D Voltage Sensitive Dye fluorescence imaging. LOT imaging uses a system similar to a confocal microscope, quickly scanning a focused beam of light over the surface of the tissue (~8Hz frame rate). Light is detected from both the focus of the scanning beam, and also at increasing distances from the beam's focus. This scattered light has penetrated more deeply into the tissue, and allows features at different depths to be distinguished. An algorithm that includes photon migration modeling of light scattering converts the raw data into 3D images. The motivation for functional optical imaging will be outlined, the basic principles of LOT imaging will be described, and the latest in-vivo results will be presented.
机译:层层光学断层扫描(批次)是一种新的医学成像模型,用于高分辨率,深度分辨,表面组织的功能成像,如啮齿动物皮层,皮肤和视网膜。批次使用可见激光至图像到图像的深度> 2mm(比显微镜深度深刻),并且对吸收和荧光对比度非常敏感,使得能够以100-200微米分辨率成像诸如血红蛋白氧合的光谱功能信息。很多人已被用来以对大鼠躯体感染性皮层的刺激造成血液动力学反应。通过皮质深度的由此产生的三维(3D)图像可用于描绘动脉,毛细管和静脉响应,揭示有关与神经元激活相关的氧合和血流动力学复杂的新信息。正在探索批次的额外应用,包括3D电压敏感染料荧光成像的集成。 Lot Imaging使用类似于共聚焦显微镜的系统,快速扫描组织表面上的聚焦光束(〜8Hz帧速率)。从扫描光束的焦点检测光,并且还在距离光束的焦点增加距离。该散射光更深入地穿过组织,并允许不同深度的特征来区分。一种包括光散射的光子迁移建模的算法将原始数据转换为3D图像。将概述功能光学成像的动机,将描述批次成像的基本原理,并将呈现最新的体内结果。

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