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细胞膜与细胞骨架力学测试的模拟

A Simulation of the Mechanical Testing of the Cell Membrane and Cytoskeleton.

作者信息

Du Yue, Cheng Dai, Yang Zhanli, Liu Yaowei, Zhao Qili, Sun Mingzhu, Li Haifeng, Zhao Xin

机构信息

The School of Computer and Information Science, Qinghai University of Science and Technology, Xining 810016, China.

The Department of Computer Technology and Application, Qinghai University, Xining 810016, China.

出版信息

Micromachines (Basel). 2024 Mar 23;15(4):431. doi: 10.3390/mi15040431.

Abstract

Cell models play a crucial role in analyzing the mechanical response of cells and quantifying cellular damage incurred during micromanipulation. While traditional models can capture the overall mechanical behavior of cells, they often lack the ability to discern among distinct cellular components. Consequently, by employing dissipative particle dynamics, this study constructed a triangular network-like representation of the cell membrane along with cross-linked cytoskeletal chains. The mechanical properties of both the membrane and cytoskeleton were then analyzed through a series of simulated mechanical tests, validated against real-world experiments. The investigation utilized particle-tracking rheology to monitor changes in the mean square displacements of membrane particles over time, facilitating the analysis of the membrane's storage and loss moduli. Additionally, the cytoskeletal network's storage and loss moduli were examined via a double-plate oscillatory shear experiment. The simulation results revealed that both the membrane and cytoskeleton exhibit viscoelastic behavior, as evidenced by the power-law dependency of their storage and loss moduli on frequency. Furthermore, indentation and microinjection simulations were conducted to examine the overall mechanical properties of cells. In the indentation experiments, an increase in the shear modulus of the membrane's WLCs correlated with a higher Young's modulus for the entire cell. Regarding the microinjection experiment, augmenting the microinjection speed resulted in reduced deformation of the cell at the point of membrane rupture and a lower percentage of high strain.

摘要

细胞模型在分析细胞的力学响应以及量化微操作过程中产生的细胞损伤方面发挥着关键作用。虽然传统模型能够捕捉细胞的整体力学行为,但它们往往缺乏区分不同细胞成分的能力。因此,本研究通过耗散粒子动力学构建了细胞膜的三角网络状表示以及交联的细胞骨架链。然后通过一系列模拟力学测试分析了膜和细胞骨架的力学性能,并与实际实验进行了验证。该研究利用粒子追踪流变学来监测膜粒子的均方位移随时间的变化,便于分析膜的储能模量和损耗模量。此外,通过双板振荡剪切实验研究了细胞骨架网络的储能模量和损耗模量。模拟结果表明,膜和细胞骨架均表现出粘弹性行为,其储能模量和损耗模量对频率的幂律依赖性证明了这一点。此外,还进行了压痕和显微注射模拟以研究细胞的整体力学性能。在压痕实验中,膜的蠕虫状链的剪切模量增加与整个细胞的杨氏模量升高相关。关于显微注射实验,提高显微注射速度会导致细胞膜破裂点处细胞的变形减小以及高应变百分比降低。

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