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胶体原子力显微镜探针诱导的机械敏感内皮细胞的形态学和纳米力学变化

Morphological and nanomechanical changes in mechanosensitive endothelial cells induced by colloidal AFM probes.

作者信息

Targosz-Korecka Marta, Malek-Zietek Katarzyna E, Brzezinka Grzegorz D, Jaglarz Magdalena

机构信息

Research Centre for Nanometer-Scale Science and Advanced Materials, NANOSAM, Faculty of Physics, Astronomy and Advanced Computer Science, Jagiellonian University, Kraków, Poland.

出版信息

Scanning. 2016 Nov;38(6):654-664. doi: 10.1002/sca.21313. Epub 2016 Mar 15.

Abstract

Mechanotransduction is one of the main properties of endothelial cells (ECs) phenotype. Hemodynamic forces like flow-generated endothelial shear stress play a fundamental role in ECs cytoskeletal remodeling and activate signaling cascades in ECs. AFM methods are widely used to characterize morphology as well as mechanical properties of cells. In both cases AFM probes directly interact with cell surface exerting mechanical forces on the cellular membrane, which in turn may stimulate mechanosensitive receptors present in EC. This article presents examples of how the colloidal AFM probes influence ECs during multiple scans. The results revealed that multiple scans of the ECs significantly influenced the morphology and elasticity of cells. Moreover, changes in the cell shape and mechanical properties were dependent on the scan direction (across or along the main axis of the cell). Multiple scans with a colloidal probe leaded to reorientation of the cell main axis and this effect was similar to the action of the shear stress induced by flow conditions. Furthermore, the correlation between the tip-induced modification of the cell properties and the remodeling of the cell's glycocalyx was observed. SCANNING 38:654-664, 2016. © 2016 Wiley Periodicals, Inc.

摘要

机械转导是内皮细胞(ECs)表型的主要特性之一。诸如流动产生的内皮剪切应力等血流动力学力在ECs细胞骨架重塑中起基本作用,并激活ECs中的信号级联反应。原子力显微镜(AFM)方法被广泛用于表征细胞的形态以及力学性能。在这两种情况下,AFM探针都直接与细胞表面相互作用,对细胞膜施加机械力,这反过来又可能刺激EC中存在的机械敏感受体。本文展示了胶体AFM探针在多次扫描过程中如何影响ECs的实例。结果表明,对ECs的多次扫描显著影响了细胞的形态和弹性。此外,细胞形状和力学性能的变化取决于扫描方向(横跨或沿着细胞的主轴)。用胶体探针进行多次扫描导致细胞主轴重新定向,这种效应类似于流动条件诱导的剪切应力的作用。此外,还观察到尖端诱导的细胞特性改变与细胞糖萼重塑之间的相关性。《扫描》38:654 - 664,2016年。©2016威利期刊公司。

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