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Nonlinear Cellular Mechanical Behavior Adaptation to Substrate Mechanics Identified by Atomic Force Microscope

机译:原子力显微镜识别非线性细胞力学行为对基体力学的适应

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摘要

Cell–substrate interaction plays an important role in intracellular behavior and function. Adherent cell mechanics is directly regulated by the substrate mechanics. However, previous studies on the effect of substrate mechanics only focused on the stiffness relation between the substrate and the cells, and how the substrate stiffness affects the time-scale and length-scale of the cell mechanics has not yet been studied. The absence of this information directly limits the in-depth understanding of the cellular mechanotransduction process. In this study, the effect of substrate mechanics on the nonlinear biomechanical behavior of living cells was investigated using indentation-based atomic force microscopy. The mechanical properties and their nonlinearities of the cells cultured on four substrates with distinct mechanical properties were thoroughly investigated. Furthermore, the actin filament (F-actin) cytoskeleton of the cells was fluorescently stained to investigate the adaptation of F-actin cytoskeleton structure to the substrate mechanics. It was found that living cells sense and adapt to substrate mechanics: the cellular Young’s modulus, shear modulus, apparent viscosity, and their nonlinearities (mechanical property vs. measurement depth relation) were adapted to the substrates’ nonlinear mechanics. Moreover, the positive correlation between the cellular poroelasticity and the indentation remained the same regardless of the substrate stiffness nonlinearity, but was indeed more pronounced for the cells seeded on the softer substrates. Comparison of the F-actin cytoskeleton morphology confirmed that the substrate affects the cell mechanics by regulating the intracellular structure.
机译:细胞与底物的相互作用在细胞内的行为和功能中起着重要的作用。粘附细胞的力学直接受基质力学的调节。然而,先前对基板力学影响的研究仅集中于基板与单元之间的刚度关系,并且尚未研究基板刚度如何影响单元力学的时间尺度和长度尺度。该信息的缺乏直接限制了对细胞机械转导过程的深入理解。在这项研究中,使用基于压痕的原子力显微镜研究了基质力学对活细胞非线性生物力学行为的影响。彻底研究了在四种具有不同机械性能的基质上培养的细胞的机械性能及其非线性。此外,对细胞的肌动蛋白丝(F-肌动蛋白)细胞骨架进行了荧光染色,以研究F-肌动蛋白细胞骨架结构对底物力学的适应性。研究发现,活细胞感知并适应基质的力学:细胞的杨氏模量,剪切模量,表观粘度及其非线性(力学性质与测量深度的关系)适应了基质的非线性力学。此外,细胞多孔性和压痕之间的正相关性保持不变,而与基质刚度非线性无关,但对于播种在较软基质上的细胞而言,确实更为明显。 F-肌动蛋白细胞骨架形态的比较证实,底物通过调节细胞内结构影响细胞力学。

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