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Probing the Cell Membrane by Magnetic Particle Actuation and Euler Angle Tracking

机译:通过磁性粒子驱动和欧拉角跟踪探测细胞膜

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摘要

The mechanical properties of the cell membrane and the subjacent actin cortex are determinants of a variety of processes in immunity and cell division. The lipid bilayer itself and its connection to the actin cortex are anisotropic. An accurate description of the mechanical structure of the cell membrane and the involved dynamics therefore necessitates a measurement technique that can capture the inherent anisotropy of the system. Here, we combine magnetic particle actuation with rotational and translational particle tracking to simultaneously measure the mechanical stiffness of monocytic cells in three rotational and two translational directions. When using particles that bind via integrins to the cell membrane and the subjacent cortex, we measured an isotropic stiffness and a characteristic power-law dependence of the shear modulus on the applied frequency. When using particles functionalized with immunoglobulin G, we measured an anisotropic stiffness with a 10-fold-reduced value in one dimension. We suggest that the observed reduced stiffness in the plane of the cell membrane is caused by a local detachment of the lipid bilayer from the subjacent cytoskeletal cortex. We expect that our technique will enable new insights into the mechanical properties of the cell membrane that will help us to better understand membrane processes such as phagocytosis and blebbing.
机译:细胞膜和肌动蛋白皮层下层的机械性质是免疫和细胞分裂过程中各种决定因素。脂质双层本身及其与肌动蛋白皮质的连接是各向异性的。因此,要准确描述细胞膜的机械结构和所涉及的动力学,就需要一种能够捕获系统固有各向异性的测量技术。在这里,我们将磁性粒子驱动与旋转和平移粒子跟踪相结合,以同时测量单核细胞在三个旋转方向和两个平移方向上的机械刚度。当使用通过整合素结合到细胞膜和下层皮层的颗粒时,我们测量了各向同性刚度以及剪切模量对施加频率的特征幂律依赖性。当使用经免疫球蛋白G功能化的颗粒时,我们测量的各向异性刚度在一维中降低了10倍。我们建议观察到的降低的细胞膜平面内的硬度是由脂质双层从下面的细胞骨架皮质的局部脱离引起的。我们希望我们的技术将使人们对细胞膜的机械性能有新的认识,这将有助于我们更好地理解诸如吞噬和起泡之类的膜过程。

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