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Mechanical behavior of cells in microinjection: A minimum potential energy study

机译:显微注射中细胞的机械行为:最小势能研究

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Microinjection is a widely used technique to deliver foreign materials into biological cells. We propose a mathematical model to study the mechanical behavior of a cell in microinjection. Firstly, a cell is modeled by a hyperelastic membrane and interior cytoplasm. Then, based on the fact that the equilibrium configuration of a cell would minimize the potential energy, the energy function during microinjection is analyzed. With Lagrange multiplier and Rayleigh-Ritz technique, we successfully minimize the potential energy and obtain the equilibrium configuration. Upon this model, the injection force, the injection distance, the radius of the microinjector and the membrane stress are studied. The analysis demonstrates that the microinjector radius has a significant influence on the cell mechanical behavior: (1) the larger radius generates larger injection force and larger interior pressure at the same injection distance; (2) the radius determines the place where the membrane is most likely to rupture by governing the membrane stress distribution. For a fine microinjector with radius less than 20% of the cell radius, the most likely rupture point located at the edge of the contact area between the microinjector and the membrane; however, it may move to the middle of the equilibrium configuration as the radius increases. To verify our model, some experiments were conducted on zebrafish egg cells. The results show that the computational analysis agrees with the experimental data, which supports the findings from the theoretical model.
机译:显微注射是将异物输送到生物细胞中的一种广泛使用的技术。我们提出了一种数学模型来研究显微注射中细胞的机械行为。首先,通过超弹性膜和内部细胞质对细胞进行建模。然后,基于细胞的平衡构型将使势能最小化的事实,分析了显微注射过程中的能量函数。利用拉格朗日乘数和瑞利-里兹技术,我们成功地最小化了势能并获得了平衡构型。在该模型上,研究了注射力,注射距离,微型注射器的半径和膜应力。分析表明,微注入器半径对电池的机械性能有重大影响:(1)较大的半径在相同的注入距离下会产生较大的注入力和较大的内部压力; (2)半径通过控制膜应力分布来确定膜最可能破裂的位置。对于半径小于细胞半径的20%的精细显微注射器,最可能的破裂点位于显微注射器和膜之间接触区域的边缘。但是,随着半径的增加,它可能会移动到平衡构型的中间。为了验证我们的模型,对斑马鱼卵细胞进行了一些实验。结果表明,计算分析与实验数据吻合,支持了理论模型的发现。

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