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力学加载下神经胶质细胞排列的形态变化:定量研究。

Morphological changes in glial cells arrangement under mechanical loading: A quantitative study.

机构信息

Department of Biomedical Engineering, Amirkabir University of Technology, Tehran, Iran.

Department of Biomedical Engineering, Amirkabir University of Technology, Tehran, Iran.

出版信息

Injury. 2022 Nov;53(11):3617-3623. doi: 10.1016/j.injury.2022.08.062. Epub 2022 Aug 30.

Abstract

The mechanical properties and microstructure of brain tissue, as its two main physical parameters, could be affected by mechanical stimuli. In previous studies, microstructural alterations due to mechanical loading have received less attention than the mechanical properties of the tissue. Therefore, the current study aimed to investigate the effect of ex-vivo mechanical forces on the micro-architecture of brain tissue including axons and glial cells. A three-step loading protocol (i.e., loading-recovery-loading) including eight strain levels from 5% to 40% was applied to bovine brain samples with axons aligned in one preferred direction (each sample experienced only one level of strain). After either the first or secondary loading step, the samples were fixed, cut in planes parallel and perpendicular to the loading direction, and stained for histology. The histological images were analyzed to measure the end-to-end length of axons and glial cell-cell distances. The results showed that after both loading steps, as the strain increased, the changes in the cell nuclei arrangement in the direction parallel to axons were more significant compared to the other two perpendicular directions. Based on this evidence, we hypothesized that the spatial pattern of glial cells is highly affected by the orientation of axonal fibers. Moreover, the results revealed that in both loading steps, the maximum cell-cell distance occurred at 15% strain, and this distance decreased for higher strains. Since 15% strain is close to the previously reported brain injury threshold, this evidence could suggest that at higher strains, the axons start to rupture, causing a reduction in the displacement of glial cells. Accordingly, it was concluded that more attention to glial cells' architecture during mechanical loading may lead to introduce a new biomarker for brain injury.

摘要

脑组织的力学性质和微观结构是其两个主要的物理参数,它们可能会受到力学刺激的影响。在以前的研究中,机械加载引起的微观结构变化比组织的力学性质受到的关注要少。因此,本研究旨在探讨体外机械力对包括轴突和神经胶质细胞在内的脑组织微结构的影响。采用三步加载方案(即加载-恢复-加载),对具有沿一个优选方向排列的轴突的牛脑样本施加 8 个应变水平(从 5%到 40%)。在第一次或第二次加载步骤之后,将样本固定,在与加载方向平行和垂直的平面上切割,并进行组织学染色。分析组织学图像以测量轴突的端到端长度和神经胶质细胞-细胞距离。结果表明,在两次加载步骤之后,随着应变的增加,与其他两个垂直方向相比,平行于轴突的方向上细胞核排列的变化更为显著。基于这一证据,我们假设神经胶质细胞的空间模式受到轴突纤维方向的高度影响。此外,结果表明,在两次加载步骤中,最大细胞-细胞距离发生在 15%应变处,并且应变较高时距离减小。由于 15%应变接近先前报道的脑损伤阈值,这一证据表明,在较高应变下,轴突开始破裂,导致神经胶质细胞的位移减少。因此,可以得出结论,在机械加载过程中更多地关注神经胶质细胞的结构可能会导致引入一种新的脑损伤生物标志物。

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