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Cyclic Stress at mHz Frequencies Aligns Fibroblasts in Direction of Zero Strain

机译:以mHz频率的循环应力使成纤维细胞在零应变方向上排列

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摘要

Recognition of external mechanical signals is vital for mammalian cells. Cyclic stretch, e.g. around blood vessels, is one such signal that induces cell reorientation from parallel to almost perpendicular to the direction of stretch. Here, we present quantitative analyses of both, cell and cytoskeletal reorientation of umbilical cord fibroblasts. Cyclic strain of preset amplitudes was applied at mHz frequencies. Elastomeric chambers were specifically designed and characterized to distinguish between zero strain and minimal stress directions and to allow accurate theoretical modeling. Reorientation was only induced when the applied stretch exceeded a specific amplitude, suggesting a non-linear response. However, on very soft substrates no mechanoresponse occurs even for high strain. For all stretch amplitudes, the angular distributions of reoriented cells are in very good agreement with a theory modeling stretched cells as active force dipoles. Cyclic stretch increases the number of stress fibers and the coupling to adhesions. We show that changes in cell shape follow cytoskeletal reorientation with a significant temporal delay. Our data identify the importance of environmental stiffness for cell reorientation, here in direction of zero strain. These in vitro experiments on cultured cells argue for the necessity of rather stiff environmental conditions to induce cellular reorientation in mammalian tissues.
机译:外部机械信号的识别对于哺乳动物细胞至关重要。循环拉伸在血管周围的信号就是这样一种信号,它引起细胞的方向从平行于拉伸方向几乎垂直地定向到拉伸方向。在这里,我们对脐带成纤维细胞的细胞和细胞骨架重新定向进行定量分析。预设振幅的循环应变以mHz频率施加。弹性腔室经过专门设计和表征,以区分零应变和最小应力方向,并允许进行精确的理论建模。仅当施加的拉伸超过特定幅度时才引起重新定向,这表明存在非线性响应。然而,即使在高应变下,在非常柔软的基板上也不会发生机械响应。对于所有拉伸幅度,重新定向单元的角度分布与将拉伸单元建模为主动力偶极子的理论非常吻合。循环拉伸增加了应力纤维的数量以及与粘附的耦合。我们表明,细胞形状的变化遵循具有明显的时间延迟的细胞骨架重新定向。我们的数据确定了环境刚度对于细胞重新定向的重要性,此处为零应变方向。这些在培养细胞上的体外实验表明,在哺乳动物组织中诱导细胞重新定向的环境必须相当严格。

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