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利用流体力显微镜同时测量单细胞力学和细胞与材料的黏附力。

Simultaneous Measurement of Single-Cell Mechanics and Cell-to-Materials Adhesion Using Fluidic Force Microscopy.

机构信息

School of Engineering, Newcastle University, Newcastle Upon Tyne NE1 7RU, U.K.

Research Center for Intelligent Sensing Systems, Zhijiang Laboratory, Hangzhou 311100, China.

出版信息

Langmuir. 2022 Jan 18;38(2):620-628. doi: 10.1021/acs.langmuir.1c01973. Epub 2022 Jan 4.

Abstract

The connection between cells and their substrate is essential for biological processes such as cell migration. Atomic force microscopy nanoindentation has often been adopted to measure single-cell mechanics. Very recently, fluidic force microscopy has been developed to enable rapid measurements of cell adhesion. However, simultaneous characterization of the cell-to-material adhesion and viscoelastic properties of the same cell is challenging. In this study, we present a new approach to simultaneously determine these properties for single cells, using fluidic force microscopy. For MCF-7 cells grown on tissue-culture-treated polystyrene surfaces, we found that the adhesive force and adhesion energy were correlated for each cell. Well-spread cells tended to have stronger adhesion, which may be due to the greater area of the contact between cellular adhesion receptors and the surface. By contrast, the viscoelastic properties of MCF-7 cells cultured on the same surface appeared to have little dependence on cell shape. This methodology provides an integrated approach to better understand the biophysics of multiple cell types.

摘要

细胞与其基质的连接对于细胞迁移等生物过程至关重要。原子力显微镜纳米压痕技术常用于测量单细胞力学。最近,流体力显微镜已被开发出来,以实现细胞黏附的快速测量。然而,同时表征同一细胞与材料的黏附力以及黏弹性性质具有挑战性。在本研究中,我们提出了一种使用流体力显微镜同时确定这些单细胞性质的新方法。对于在组织培养处理的聚苯乙烯表面上生长的 MCF-7 细胞,我们发现每个细胞的黏附力和黏附能之间存在相关性。铺展良好的细胞往往具有更强的黏附力,这可能是由于细胞黏附受体与表面之间的接触面积更大。相比之下,在相同表面上培养的 MCF-7 细胞的黏弹性性质似乎与细胞形状的依赖性很小。该方法为更好地理解多种细胞类型的生物物理特性提供了一种综合方法。

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