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Extracting the inclination angle of nerve fibers within the human brain with 3D-PLI independent of system properties

机译:用3D-PLI独立于系统性质提取人脑内神经纤维的倾斜角度

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The neuroimaging technique 3D-polarized light imaging (3D-PLI) has opened up new avenues to study the complex nerve fiber architecture of the human brain at sub-millimeter spatial resolution. This polarimetry technique is applicable to histological sections of postmortem brains utilizing the birefringence of nerve fibers caused by the regular arrangement of lipids and proteins in the myelin sheaths surrounding axons. 3D-PLI provides a three-dimensional description of the anatomical wiring scheme defined by the in-section direction angle and the out-of-section inclination angle. To date, 3D-PLI is the only available method that allows bridging the microscopic and the macroscopic description of the fiber architecture of the human brain. Here we introduce a new approach to retrieve the inclination angle of the fibers independently of the properties of the used polarimeters. This is relevant because the image resolution and the signal transmission influence the measured birefringent signal (retardation) significantly. The image resolution was determined using the USAF 1951 testchart applying the Rayleigh criterion. The signal transmission was measured by elliptical polarizers applying the Michelson contrast and histological slices of the optic tract of a postmortem brain. Based on these results, a modified retardation-inclination transfer function was proposed to extract the fiber inclination. The comparison of the actual and the inclination angles calculated with the theoretically proposed and the modified transfer function revealed a significant improvement in the extraction of the fiber inclinations.
机译:神经影像技术3D偏振光成像(3D-PLI)已经开辟了新的途径,以研究亚毫米空间分辨率的人脑的复杂神经纤维架构。这种偏振态技术适用于利用由肌蛋白鞘中的脂质和蛋白质的规则排列引起的神经纤维的双折射来组织学围绕乳头纤维的双折射。 3D-PLI提供由剖位方向角度和截面倾斜角度限定的解剖布线方案的三维描述。迄今为止,3D-PLI是允许桥接人脑的光纤架构的微观和宏观描述的唯一可用方法。在这里,我们介绍一种新的方法来独立于使用二极管的性质来检索纤维的倾斜角度。这是相关的,因为图像分辨率和信号传输显着影响测量的双折射信号(延迟)。使用USAF 1951 TestChart来确定图像分辨率,应用Rayleigh标准。信号传输通过椭圆偏振器来测量,其施用迈克尔森对比度和后期脑的光学道的组织学切片。基于这些结果,提出了一种改进的延迟倾斜转移功能以提取纤维倾斜度。用理论上提出的和改性转移功能计算的实际和倾斜角的比较显示出纤维倾斜的提取的显着改善。

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