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Three-dimensional assessment of brain tissue morphology

机译:脑组织形态的三维评估

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摘要

The microstructure of brain tissues becomes visible using different types of optical microscopy after the tissue sectioning. This preparation procedure introduces stress and strain in the anisotropic and inhomogeneous soft tissue slices, which are several 10 μm thick. Consequently, the three-dimensional dataset, generated out of the two-dimensional images with lateral sub-micrometer resolution, needs algorithms to correct the deformations, which can be significant for mellow tissue such as brain segments. The spatial resolution perpendicular to the slices is much worse with respect to the lateral sub-micrometer resolution. Therefore, we propose as complementary method the synchrotron-radiation-based micro computed tomography (SRμCT), which avoids any kind of preparation artifacts due to sectioning and histological processing and yields true micrometer resolution in the three orthogonal directions. The visualization of soft matter by the use of SRμCT, however, is often based on elaborate staining protocols, since the tissue exhibits (almost) the same x-ray absorption as the surrounding medium. Therefore, it is unexpected that human tissue from the pons and the medulla oblongata in phosphate buffer show several features such as the blood vessels and the inferior olivary nucleus without staining. The value of these tomograms lies especially in the precise non-rigid registration of the different sets of histological slices. Applications of this method to larger pieces of brain tissue, such as the human thalamus are planned in the context of stereotactic functional neurosurgery.
机译:在组织切片后,使用不同类型的光学显微镜可以看到脑组织的微观结构。此准备过程会在厚度为10μm的各向异性和不均匀的软组织切片中引入应力和应变。因此,从具有横向亚微米分辨率的二维图像中生成的三维数据集需要算法来校正变形,这对于醇厚的组织(如脑段)可能是重要的。相对于横向亚微米分辨率,垂直于切片的空间分辨率要差得多。因此,我们提出了一种基于同步辐射的微型计算机断层扫描(SRμCT)作为补充方法,该技术可避免由于切片和组织学处理而引起的任何制备伪影,并在三个正交方向上产生真实的千分尺分辨率。然而,由于组织表现出(几乎)与周围介质相同的X射线吸收,因此使用SRμCT对软物质进行可视化通常是基于精心设计的染色方案。因此,出乎意料的是,在磷酸盐缓冲液中的来自脑桥和延髓的人组织显示出诸如血管和下橄榄核的若干特征而没有染色。这些断层图的价值尤其在于组织切片的不同集合的精确非刚性配准。在立体定向功能神经外科的背景下,计划将该方法应用于较大的脑组织,例如人丘脑。

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