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Nano-mechanical Compliance of Müller Cells Investigated by Atomic Force Microscopy

机译:原子力显微镜研究缪勒细胞的纳米机械顺应性

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摘要

It has been known that a single Müller cell displays a large variation in the cytoskeletal compositions along its cell body, suggesting different mechanical properties in different segments. Müller cells are thought to be involved in many retinal diseases such as retinoschisis, which can be facilitated by a mechanical stress. Thus, mapping of mechanical properties on localized nano-domains of Müller cells could provide essential information for understanding their structural functions in the retina and roles in their pathological progresses. Using Atomic Force Microscopy (AFM) - based bio-nano-mechanics, we have investigated the local variations of the mechanical properties of Müller cells in vitro. We have a particular interest in identifying elastic moduli in regions closer to three distinctive segments of the cells - process, endfoot, and soma. Using the modified spherical AFM probes, we were able to accurately determine mechanical properties, i.e., elastic moduli from the obtained force-distance curves. We found that the regions closer to soma were mechanically more compliant than regions closer to endfoot and process of Müller cells. We found that this lateral heterogeneity of the mechanical compliance within a single Müller cell is consistent with reports from other cell types. The local variation in mechanical compliances along a single Müller cell may support their diverse mechanical functions in the retina such as a soft mechanical embedding, mechanosensing, and neurotrophic functions for neurons.
机译:已知单个Müller细胞沿其细胞体在细胞骨架组成上显示出很大的变化,这表明在不同的区段中具有不同的机械性能。 Müller细胞被认为与许多视网膜疾病有关,例如视网膜分裂症,可以通过机械应力来促进。因此,将力学性能映射到Müller细胞的局部纳米域上可以为了解其在视网膜中的结构功能及其在病理过程中的作用提供重要信息。使用基于原子力显微镜(AFM)的生物纳米力学,我们研究了Müller细胞体外力学性能的局部变化。我们特别感兴趣的是确定更接近细胞三个不同部分的区域的弹性模量,即过程,端足和躯体。使用改进的球形AFM探针,我们能够从获得的力-距离曲线中准确确定机械性能,即弹性模量。我们发现,离躯干较近的区域比靠近脚掌和Müller细胞过程的区域在机械上更顺应。我们发现单个Müller细胞内机械顺应性的这种横向异质性与其他细胞类型的报告一致。沿着单个Müller细胞的机械顺应性的局部变化可能支持其在视网膜中的多种机械功能,例如对神经元的软机械嵌入,机械感测和神经营养功能。

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