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显微注射中生物细胞的力学建模

Mechanical modeling of biological cells in microinjection.

作者信息

Tan Youhua, Sun Dong, Huang Wenhao, Cheng Shuk Han

机构信息

Control and Mechatronics Group, Suzhou Research Institute of City University of Hong Kong, Hong Kong.

出版信息

IEEE Trans Nanobioscience. 2008 Dec;7(4):257-66. doi: 10.1109/TNB.2008.2011852.

Abstract

Microinjection is an effective technique to introduce foreign materials into a biological cell. Although some semi-automatic and fully-automatic microinjection systems have been developed, a full understanding of the mechanical response of biological cells to injection operation remains deficient. In this paper, a new mechanical model based on membrane theory is proposed. This model establishes a relationship between the injection force and the deformation of biological cells with the quasi-static equilibrium equations, which are solved by the Runge-Kutta numerical method. Based on this model, other mechanical responses can also be inferred, such as the effect of the injector radius, the membrane stress and tension distribution, internal cell pressure, and the deformed cell shape. To verify the proposed model, experiments are performed on microinjection of zebrafish embryos at different developmental stages and medaka embryos at the blastula stage. It is demonstrated that the modeling results agree well with the experimental data, which shows that the proposed model can be used to estimate the mechanical properties of cell biomembranes. (In this paper, biomembrane refers to the membrane-like structures enveloping cells.)

摘要

显微注射是一种将外来物质引入生物细胞的有效技术。尽管已经开发出了一些半自动和全自动显微注射系统,但对于生物细胞对注射操作的力学响应仍缺乏全面的了解。本文提出了一种基于膜理论的新力学模型。该模型通过准静态平衡方程建立了注射力与生物细胞变形之间的关系,并采用龙格 - 库塔数值方法求解这些方程。基于此模型,还可以推断出其他力学响应,如注射器半径的影响、膜应力和张力分布、细胞内压力以及变形后的细胞形状。为了验证所提出的模型,对不同发育阶段的斑马鱼胚胎和囊胚期的青鳉胚胎进行了显微注射实验。结果表明,建模结果与实验数据吻合良好,这表明所提出的模型可用于估计细胞生物膜的力学性能。(在本文中,生物膜指包裹细胞的膜状结构。)

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