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Atomic Force Microscopy Mechanical Mapping of Micropatterned Cells Shows Adhesion Geometry-Dependent Mechanical Response on Local and Global Scales

机译:微图案化细胞的原子力显微镜机械制图显示局部和全局尺度上的粘附几何依赖的机械响应。

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摘要

In multicellular organisms, cell shape and organization are dictated by cell cell or cell extracellular matrix adhesion interactions. Adhesion complexes crosstalk with the cytoskeleton enabling cells to sense their mechanical environment. Unfortunately, most of cell biology studies, and cell mechanics studies in particular, are conducted on cultured cells adhering to a hard, homogeneous, and unconstrained substrate with nonspecific adhesion sites, thus far from physiological and reproducible conditions. Here, we grew cells on three different fibronectin patterns with identical overall dimensions but different geometries (del, T, and Y), and investigated their topography and mechanics by atomic force microscopy (AFM). The obtained mechanical maps were reproducible for cells grown on patterns of the same geometry, revealing pattern-specific subcellular differences. We found that local Young's moduli variations are related to the cell adhesion geometry. Additionally, we detected local changes of cell mechanical properties induced by cytoskeletal drugs. We thus provide a method to quantitatively and systematically investigate cell mechanics and their variations, and present further evidence for a tight relation between cell adhesion and mechanics.
机译:在多细胞生物中,细胞的形状和组织是由细胞或细胞外基质粘附相互作用决定的。粘附复合物与细胞骨架发生串扰,使细胞能够感知其机械环境。不幸的是,大多数细胞生物学研究,特别是细胞力学研究都是在培养的细胞上进行的,该细胞粘附到具有非特异性粘附位点的坚硬,均匀且不受约束的底物上,因此远离生理和可复制条件。在这里,我们以三种不同的纤连蛋白模式生长了细胞,它们具有相同的总体尺寸但几何形状(del,T和Y)不同,并通过原子力显微镜(AFM)研究了它们的形貌和力学。所获得的机械图对于在相同几何形状的模式下生长的细胞具有可再现性,揭示了模式特异性亚细胞差异。我们发现局部的杨氏模量变化与细胞粘附的几何形状有关。此外,我们检测到细胞骨架药物诱导的细胞力学特性的局部变化。因此,我们提供了一种定量和系统地研究细胞力学及其变化的方法,并提供了细胞粘附与力学之间紧密联系的进一步证据。

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