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Direct numerical simulation of micro-scale interaction between ice and biological cells

机译:冰与生物细胞之间微尺度相互作用的直接数值模拟

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The freezing of biological material, such as cells and tissue, during cryopreservation involves the interaction of ice in the extracellular medium with living cells. This cell-ice interaction critically determines the success of the cryopreservation protocol, as measured by cell survival and viability after the freeze-thaw process. This paper presents numerical simulations of the response of a cell to freezing. The phase change of the aqueous salt solution outside the cell is computed using a sharp-interface technique. The cell is modeled as a salt solution enclosed by a semi-permeable membrane. We compute the concentration and temperature fields around a single cell in the presence of extracellular ice formation. Parametric variations in the factors affecting the cell-ice interaction are performed to describe the physics of thermo-solutal transport of the interaction. Cell water loss is quantified. The external ice front is computed for both stable and unstable (cellular/dendritic) growth modes. The results show that water egress from the cell is dependent on several controlling parameters in complex ways.
机译:冷冻保存过程中诸如细胞和组织之类的生物材料的冻结涉及细胞外培养基中冰与活细胞的相互作用。这种细胞与冰的相互作用决定性地决定了冷冻保存规程的成功,这是通过冻融过程后的细胞存活率和生存力来衡量的。本文提出了细胞对冻结反应的数值模拟。使用夏普-界面技术计算细胞外部盐水溶液的相变。将该池建模为被半透膜包围的盐溶液。我们计算存在细胞外冰形成的单个细胞周围的浓度和温度场。进行影响细胞-冰相互作用的因素的参数变化,以描述相互作用的热-固相传输的物理过程。定量细胞失水。计算稳定和不稳定(细胞/树突状)生长模式的外部冰锋。结果表明,从池中流出的水以复杂的方式取决于多个控制参数。

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