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首页> 外文期刊>Brain structure & function >Use of computational fluid dynamics for 3D fiber tract visualization on human high-thickness histological slices: histological mesh tractography
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Use of computational fluid dynamics for 3D fiber tract visualization on human high-thickness histological slices: histological mesh tractography

机译:使用计算流体动力学在人类高厚度组织切片上的3D光纤性感化:组织学网格杂图

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摘要

Understanding the intricate three-dimensional relationship between fiber bundles and subcortical nuclei is not a simple task. It is of paramount importance in neurosciences, especially in the field of functional neurosurgery. The current methods for in vivo and post mortem fiber tract visualization have shortcomings and contributions to the field are welcome. Several tracts were chosen to implement a new technique to help visualization of white matter tracts, using high-thickness histology and dark field images. Our study describes the use of computational fluid dynamic simulations for visualization of 3D fiber tracts segmented from dark field microscopy in high-thickness histological slices (histological mesh tractography). A post mortem human brain was MRI scanned prior to skull extraction, histologically processed and serially cut at 430 mu m thickness as previously described by our group. High-resolution dark field images were used to segment the outlines of the structures. These outlines served as basis for the construction of a 3D structured mesh, were a Finite Volume Method (FVM) simulation of water flow was performed to generate streamlines representing the geometry. The simulations were accomplished by an open source computer fluid dynamics software. The resulting simulation rendered a realistic 3D impression of the segmented anterior commissure, the left anterior limb of the internal capsule, the left uncinate fascicle, and the dentato-rubral tracts. The results are in line with clinical findings, diffusion MR imaging and anatomical dissection methods.
机译:了解光纤捆绑和皮下核之间的复杂三维关系不是一个简单的任务。它在神经科学中至关重要,特别是在功能性神经外科领域。目前的体内和后验验纤维的方法可视化具有缺点和对该领域的贡献是受欢迎的。选择几条暗物以实现新技术,以帮助使用高厚度组织学和暗场图像来帮助可视化白质散。我们的研究描述了使用计算流体动态模拟在高厚度组织切片(组织学网格牵引)中从暗场显微镜中分段的3D光纤的可视化。在颅骨萃取之前扫描后验验人脑是MRI扫描,组织学上处理和连续切割,如本组先前描述的430μm厚度。高分辨率暗场图像用于分割结构的轮廓。这些轮廓作为构造3D结构网格的基础,是进行有限体积的方法(FVM)水流模拟,以产生表示几何形状的流线。通过开源计算机流体动力学软件实现模拟。由此产生的模拟使分段的前连子的逼真的3D印象,内部胶囊的左前肢,左侧突发术迷信和牙齿 - 波纹束。结果符合临床发现,扩散MR成像和解剖解剖方法。

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