首页> 外文期刊>American Journal of Physiology >Strain waveform dependence of stress fiber reorientation in cyclically stretched osteoblastic cells: effects of viscoelastic compression of stress fibers
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Strain waveform dependence of stress fiber reorientation in cyclically stretched osteoblastic cells: effects of viscoelastic compression of stress fibers

机译:循环拉伸骨细胞中应力纤维重新定位的应变波形依赖性:应力纤维粘弹性压缩的影响

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Actin stress fibers (SFs) of cells cultured on cyclically stretched substrate tend to reorient in the direction in which a normal strain of substrate becomes zero. However, little is known about the mechanism of this reorientation. Here we investigated the effects of cyclic stretch waveform on SF reorientation in osteoblastic cells. Cells adhering to silicone membranes were subjected to cyclic uniaxial stretch, having one of the following waveforms with an amplitude of 8% for 24 h: triangular, trapezoid, bottom hold, or peak hold. SF reorientation of these cells was then analyzed. No preferential orientation was observed for the triangular and the peak-hold waveforms, whereas SFs aligned mostly in the direction with zero normal strain (~55°) with other waveforms, especially the trapezoid waveform, which had a hold time both at loaded and unloaded states. Viscoelastic properties of SFs were estimated in a quasi-in situ stress relaxation test using intact and SF-disrupted cells that maintained their shape on the substrate. The dynamics of tension F_(sfs) acting on SFs during cyclic stretching were simulated using these properties. The simulation demonstrated that F_(sfs) decreased gradually during cyclic stretching and exhibited a compressive value (F_(sfs) < 0). The magnitude and duration time of the compressive forces were relatively larger in the group with a trapezoid waveform. The frequency of SF orientation had a significant negative correlation with the applied compressive forces integrated with time in a strain cycle, and the integrated value was largest with the trapezoid waveform. These results may indicate that the applied compressive forces on SFs have a significant effect on the stretch-induced reorientation of SFs, and that SFs realigned to avoid their compression. Stress relaxation of SFs might be facilitated during the holding period in the trapezoid waveform, and depolymer-ization and reorientation of SFs were significantly accelerated by their viscoelastic compression.
机译:在循环拉伸基板上培养的细胞的肌动蛋白应激纤维(SFS)倾向于在正常衬底变为零的方向上重新定位。然而,关于这种重新定位的机制知之甚少。在这里,我们研究了循环拉伸波形对骨细胞中SF重新定向的影响。将粘附在硅氧烷膜上的细胞进行环状单轴拉伸,其具有下列波形中的一种,振幅为8%,持续24小时:三角形,梯形,底部保持或峰值保持。然后分析了这些细胞的SF重新定位。对于三角形和峰值保持波形没有观察到优先取向,而SF在具有零正常应变(〜55°)的方向上的SF与其他波形,尤其是梯形波形,其在加载和卸载时具有保持时间的梯形波形。状态。使用完整的和SF破坏的细胞在准原位应力松弛测试中估计SFS的粘弹性性能,其在基板上保持它们的形状。使用这些性质模拟了在循环拉伸期间作用于SFS的张力F_(SFS)的动态。模拟证明,在循环拉伸期间F_(SFS)逐渐降低,并且表现出压缩值(F_(SFS)<0)。在具有梯形波形的组中,压缩力的幅度和持续时间相对较大。 SF取向的频率与在应变循环中的时间集成的施加的压缩力具有显着的负相关性,并且集成值与梯形波形最大。这些结果可能表明,SFS上的施加的压缩力对SFS的拉伸引起的重新定向具有显着影响,并且SFS重新调整以避免其压缩。在梯形波形的保持时段期间,可以促进SFS的应力松弛,并且通过其粘弹性压缩显着加速解聚和SF的解聚和Reorientation。

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