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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Active microrheology with optical tweezers: a versatile tool to investigate anisotropies in intermediate filament networks
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Active microrheology with optical tweezers: a versatile tool to investigate anisotropies in intermediate filament networks

机译:带有光镊的主动微流变学:研究中间灯丝网络中各向异性的多功能工具

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Mechanical properties of cells are determined by the cytoskeleton and especially by intermediate filaments (IFs). To measure the contribution of IFs to the mechanics of the cytoskeleton, we determine the shear moduli of in vitro assembled IF networks consisting of keratin 8/18 and MgCl2, serving as a crosslinker. In this study we want to present a new method, a combination of active and passive microrheology, to characterize these networks. We also show the applicability of the new method and discuss new findings on the organization and force transmission in keratin networks gained by the new method. We trap and move embedded polystyrene particles with an optical tweezers setup in an oscillatory manner. The amplitude response of the trapped particle is measured and evaluated with a lock-in approach in order to suppress random motions. With this technique we determine the degree of isotropy of the assembled network and sense preferred directions due to inhomogeneities of the network. Furthermore, we show that we can deliberately create anisotropic networks by adjusting the assembly process and chamber geometry. To determine whether there are local network anisotropies in a globally isotropic network, we altered the evaluation method and included the motion of embedded particles in the vicinity of the trapped one. The correlations of the observed motions enable us to map local network anisotropies. Finally, we compare mechanical properties determined from passive with ones from active microrheology. We find the networks measured with the active technique to be approximately 20% more compliant than the ones from passive measurements.
机译:细胞的机械特性取决于细胞骨架,尤其是中间丝(IF)。为了测量IFs对细胞骨架力学的贡献,我们确定了由角蛋白8/18和MgCl2组成的体外组装IF网络的剪切模量,该网络用作交联剂。在这项研究中,我们想提出一种新方法,将主动和被动微流变技术结合起来,以表征这些网络。我们还展示了该新方法的适用性,并讨论了新方法在角蛋白网络中组织和力传递方面的新发现。我们使用光学镊子以振荡的方式捕获并移动嵌入的聚苯乙烯颗粒。为了抑制随机运动,使用锁定方法测量和评估捕获粒子的幅度响应。使用这种技术,我们可以确定组装网络的各向同性程度,并感测由于网络的不均匀性而产生的首选方向。此外,我们表明可以通过调整装配过程和腔室几何形状来故意创建各向异性网络。为了确定全局各向同性网络中是否存在局部网络各向异性,我们更改了评估方法,并包括了被困粒子附近嵌入粒子的运动。观察到的运动的相关性使我们能够映射局部网络各向异性。最后,我们比较了由被动和主动微流变学确定的机械性能。我们发现,采用主动技术测得的网络比被动测得的网络更合规20%。

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