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A Jones matrix formalism for simulating three-dimensional polarized light imaging of brain tissue

机译:琼斯矩阵形式主义用于模拟脑组织的三维偏振光成像

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摘要

The neuroimaging technique three-dimensional polarized light imaging (3D-PLI) provides a high-resolution reconstruction of nerve fibres in human post-mortem brains. The orientations of the fibres are derived from birefringence measurements of histological brain sections assuming that the nerve fibres—consisting of an axon and a surrounding myelin sheath—are uniaxial birefringent and that the measured optic axis is oriented in the direction of the nerve fibres (macroscopic model). Although experimental studies support this assumption, the molecular structure of the myelin sheath suggests that the birefringence of a nerve fibre can be described more precisely by multiple optic axes oriented radially around the fibre axis (microscopic model). In this paper, we compare the use of the macroscopic and the microscopic model for simulating 3D-PLI by means of the Jones matrix formalism. The simulations show that the macroscopic model ensures a reliable estimation of the fibre orientations as long as the polarimeter does not resolve structures smaller than the diameter of single fibres. In the case of fibre bundles, polarimeters with even higher resolutions can be used without losing reliability. When taking the myelin density into account, the derived fibre orientations are considerably improved.
机译:神经成像技术三维偏振光成像(3D-PLI)提供了人类验尸大脑中神经纤维的高分辨率重建。纤维的取向是从组织学脑部的双折射测量得出的,假设神经纤维(由轴突和周围的髓鞘组成)是单轴双折射的,并且测得的光轴朝向神经纤维的方向(宏观)模型)。尽管实验研究支持这一假设,但是髓鞘的分子结构表明神经纤维的双折射可以通过围绕纤维轴径向定向的多个光轴来更精确地描述(微观模型)。在本文中,我们比较了通过琼斯矩阵形式主义使用宏观模型和微观模型模拟3D-PLI的方法。仿真表明,只要偏振计不能分辨小于单根纤维直径的结构,宏观模型就能确保对纤维取向的可靠估计。对于光纤束,可以使用分辨率更高的偏振计,而不会损失可靠性。当考虑髓磷脂密度时,得到的纤维取向显着改善。

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