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基于传播的 X 射线相位对比层析成像术对神经元细胞结构进行对比增强可视化。

Contrast enhancement for visualizing neuronal cytoarchitecture by propagation-based x-ray phase-contrast tomography.

机构信息

Institute for X-Ray Physics, University of Göttingen, Germany; Center for Nanoscopy and Molecular Physiology of the Brain (CNMPB), Germany.

Department of Haematology and Medical Oncology, University Medical Center Göttingen, Germany.

出版信息

Neuroimage. 2019 Oct 1;199:70-80. doi: 10.1016/j.neuroimage.2019.05.043. Epub 2019 May 23.

DOI:10.1016/j.neuroimage.2019.05.043
PMID:31129306
Abstract

Knowledge of the three-dimensional (3d) neuronal cytoarchitecture is an important factor in order to understand the connection between tissue structure and function or to visualize pathological changes in neurodegenerative diseases or tumor development. The gold standard in neuropathology is histology, a technique which provides insights into the cellular organization based on sectioning of the sample. Conventional histology, however, misses the complete 3d information as only individual two-dimensional slices through the object are available. In this work, we use propagation-based phase-contrast x-ray tomography to perform 3d virtual histology on cerebellar tissue from mice. This technique enables us to non-invasively visualize the entire 3d density distribution of the examined samples at isotropic (sub-)cellular resolution. One central challenge, however, of the technique is the fact that contrast for important structural features can be easily lost due to small electron density differences, notably between the cells and surrounding tissue. Here, we evaluate the influence of different embedding media, which are intermediate steps in sample preparation for classical histology, on contrast formation and examine the applicability of the different sample preparations both at a synchrotron-based holotomography setup as well as a laboratory source.

摘要

了解三维(3d)神经元细胞结构是理解组织结构与功能之间的关系或可视化神经退行性疾病或肿瘤发展过程中病理变化的重要因素。神经病理学的金标准是组织学,这是一种基于样本切片来了解细胞组织的技术。然而,传统的组织学方法错过了完整的 3d 信息,因为只能获得物体的单个二维切片。在这项工作中,我们使用基于传播的相衬 X 射线断层扫描技术对来自小鼠的小脑组织进行 3d 虚拟组织学研究。这项技术使我们能够非侵入性地以各向同性(亚)细胞分辨率可视化检查样本的整个 3d 密度分布。然而,该技术的一个核心挑战是,由于细胞和周围组织之间的电子密度差异较小,重要结构特征的对比度很容易丢失。在这里,我们评估了不同包埋介质的影响,这些介质是经典组织学样本制备过程中的中间步骤,研究了不同样本制备在基于同步辐射的全层析成像装置和实验室光源中的应用。

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