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Computational Analysis of Fluid Flow Within a Device for Applying Biaxial Strain to Cultured Cells

机译:将双轴应变应用于培养细胞的装置内流体流动的计算分析

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摘要

In vitro systems for applying mechanical strain to cultured cells are commonly used to investigate cellular mechanotransduction pathways in a variety of cell types. These systems often apply mechanical forces to a flexible membrane on which cells are cultured. A consequence of the motion of the membrane in these systems is the generation of flow and the unintended application of shear stress to the cells. We recently described a flexible system for applying mechanical strain to cultured cells, which uses a linear motor to drive a piston array to create biaxial strain within multiwell culture plates. To better understand the fluidic stresses generated by this system and other systems of this type, we created a computational fluid dynamics model to simulate the flow during the mechanical loading cycle. Alterations in the frequency or maximal strain magnitude led to a linear increase in the average fluid velocity within the well and a nonlinear increase in the shear stress at the culture surface over the ranges tested (0.5–2.0 Hz and 1–10% maximal strain). For all cases, the applied shear stresses were relatively low and on the order of millipascal with a dynamic waveform having a primary and secondary peak in the shear stress over a single mechanical strain cycle. These findings should be considered when interpreting experimental results using these devices, particularly in the case when the cell type used is sensitive to low magnitude, oscillatory shear stresses.
机译:将机械应变施加到培养细胞的体外系统通常用于研究多种细胞类型中的细胞机械转导途径。这些系统通常将机械力施加到培养细胞的柔性膜上。在这些系统中,膜运动的结果是流动的产生以及剪切应力意外施加到细胞上。我们最近描述了一种用于向培养细胞施加机械应变的灵活系统,该系统使用线性马达驱动活塞阵列以在多孔培养板内产生双轴应变。为了更好地了解此系统和其他此类系统产生的流体应力,我们创建了一个计算流体动力学模型来模拟机械加载周期中的流动。频率或最大应变幅度的变化导致孔内平均流体速度线性增加,并且在所测试的范围内(0.5–2.0 andHz和1–10%最大应变),培养表面的剪切应力非线性增加。 。对于所有情况,所施加的剪切应力都相对较低,约为毫帕斯卡,其动态波形在单个机械应变循环中具有剪切应力的主峰和副峰。在解释使用这些设备的实验结果时,应考虑这些发现,尤其是在所用电池类型对低强度,振荡剪切应力敏感的情况下。

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