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一种在活细胞上产生动态压缩剪切耦合应力加载的方法。

A method for generating dynamic compression shear coupled stress loading on living cells.

作者信息

Xu Dasen, Zhang Nu, Wang Sijie, Zhang Pan, Li Yulong, Yang Hui

机构信息

School of Aeronautics, Northwestern Polytechnical University, Xi'an, China.

Center of Special Environmental Biomechanics; Biomedical Engineering, Northwestern Polytechnical University, Xi'an, China.

出版信息

Front Bioeng Biotechnol. 2022 Sep 21;10:1002661. doi: 10.3389/fbioe.2022.1002661. eCollection 2022.

Abstract

Changes in the mechanical properties of single cells are related to the physiological state and fate of cells. The construction of cell constitutive equations is essential for understanding the material characteristics of single cells. With the help of atomic force microscopy, bio-image processing algorithms, and other technologies, research investigating the mechanical properties of cells during static/quasi-static processes has developed rapidly. A series of equivalent models, such as viscoelastic models, have been proposed to describe the constitutive behaviors of cells. The stress-strain relations under dynamic processes are essential to completing the constitutive equations of living cells. To explore the dynamic mechanical properties of cells, we propose a novel method to generate a controllable dynamical compression shear coupling stress on living cells. A CFD model was established to visualize this method and display the theories, as well as assess the scope of the application. As the requirements or limitations are met, researchers can adjust the details of this model according to their lab environment or experimental demands. This micro-flow channel-based method is a new tool for approaching the dynamic mechanical properties of cells.

摘要

单细胞力学特性的变化与细胞的生理状态和命运相关。构建细胞本构方程对于理解单细胞的材料特性至关重要。借助原子力显微镜、生物图像处理算法等技术,研究细胞在静态/准静态过程中的力学特性取得了迅速发展。已经提出了一系列等效模型,如粘弹性模型,来描述细胞的本构行为。动态过程下的应力应变关系对于完善活细胞的本构方程至关重要。为了探索细胞的动态力学特性,我们提出了一种在活细胞上产生可控动态压缩剪切耦合应力的新方法。建立了一个计算流体动力学(CFD)模型来可视化这种方法并展示其原理,同时评估其应用范围。当满足要求或限制条件时,研究人员可以根据实验室环境或实验需求调整该模型的细节。这种基于微流通道的方法是研究细胞动态力学特性的一种新工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af2b/9532543/d579c51833ba/fbioe-10-1002661-g001.jpg

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