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活哺乳动物细胞质的各向异性力学和动力学。

Anisotropic mechanics and dynamics of a living mammalian cytoplasm.

机构信息

Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Soft Matter. 2019 Jan 2;15(2):190-199. doi: 10.1039/c8sm01708e.

Abstract

During physiological processes, cells can undergo morphological changes that can result in a significant redistribution of the cytoskeleton causing anisotropic behavior. Evidence of anisotropy in cells under mechanical stimuli exists; however, the role of cytoskeletal restructuring resulting from changes in cell shape in mechanical anisotropy and its effects remain unclear. In the present study, we examine the role of cell morphology in inducing anisotropy in both intracellular mechanics and dynamics. We change the aspect ratio of cells by confining the cell width and measuring the mechanical properties of the cytoplasm using optical tweezers in both the longitudinal and transverse directions to quantify the degree of mechanical anisotropy. These active microrheology measurements are then combined with intracellular movement to calculate the intracellular force spectrum using force spectrum microscopy (FSM), from which the degree of anisotropy in dynamics and force can be quantified. We find that unrestricted cells with aspect ratio (AR) ∼1 are isotropic; however, when cells break symmetry, they exhibit significant anisotropy in cytoplasmic mechanics and dynamics.

摘要

在生理过程中,细胞可以发生形态变化,导致细胞骨架的显著重分布,从而产生各向异性行为。在机械刺激下的细胞存在各向异性的证据;然而,由于细胞形状的变化导致细胞骨架重构在机械各向异性及其影响中的作用尚不清楚。在本研究中,我们研究了细胞形态在诱导细胞内力学和动力学各向异性中的作用。我们通过限制细胞的宽度来改变细胞的纵横比,并使用光镊在纵向和横向方向上测量细胞质的力学性质,以量化力学各向异性的程度。然后,将这些主动微流变学测量与细胞内运动相结合,使用力谱显微镜(FSM)计算细胞内力谱,从而量化动力学和力的各向异性程度。我们发现,纵横比(AR)约为 1 的无约束细胞是各向同性的;然而,当细胞打破对称性时,它们在细胞质力学和动力学方面表现出显著的各向异性。

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