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Dissipative particle dynamics simulations of deformation and aggregation of healthy and diseased red blood cells in a tube flow

机译:耗散粒子动力学模拟管中流动的健康和患病红细胞的变形和聚集

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In this paper, we report simulation results assessing the deformation and aggregation of mixed healthy and malaria-infected red blood cells (RBCs) in a tube flow. A three dimensional particle model based on Dissipative Particle Dynamics (DPD) is developed to predict the tube flow containing interacting cells. The cells are also modelled by DPD, with a Morse potential to characterize the cell-cell interaction. As validation tests, a single RBC in a tube flow and two RBCs in a static flow are simulated to examine the cell deformation and intercellular interaction, respectively. The study of two cells, one healthy and the other malaria-infected RBCs in a tube flow demonstrates that the malaria-infected RBC (in the leading position along flow direction) has different effects on the healthy RBC (in the trailing position) at the different stage of parasite development or at the different capillary number. With parasitic development, the malaria-infected RBC gradually loses its deformability, and in turn the corresponding trailing healthy RBC also deforms less due to the intercellular interaction. With increasing capillary number, both the healthy and malaria-infected RBCs are likely to undergo an axisymmetric motion. The minimum intercellular distance becomes small enough so that rouleaux is easily formed, i.e., the healthy and malaria-infected RBCs are difficultly disaggregated. (C) 2014 AIP Publishing LLC.
机译:在本文中,我们报告了模拟结果,该结果评估了混合健康和疟疾感染的红细胞(RBC)在管流中的变形和聚集。建立了基于耗散粒子动力学(DPD)的三维粒子模型,以预测包含相互作用细胞的管流动。细胞也通过DPD建模,具有莫尔斯电势来表征细胞-细胞相互作用。作为验证测试​​,分别模拟管流中的单个RBC和静态流中的两个RBC,以分别检查细胞变形和细胞间相互作用。对两种细胞(一种健康的和另一种疟疾感染的RBC)在管流中的研究表明,疟疾感染的RBC(沿流动方向位于领先位置)对健康的RBC(处于尾随位置)具有不同的影响。寄生虫发育的不同阶段或毛细血管数目不同。随着寄生虫的发展,疟疾感染的红细胞逐渐失去其可变形性,而相应的尾随健康红细胞由于细胞间的相互作用而变形也较少。随着毛细血管数目的增加,健康的和感染疟疾的红细胞都可能发生轴对称运动。最小细胞间距离变得足够小,使得容易形成肉卷,即,难以分解健康的和感染疟疾的RBC。 (C)2014 AIP Publishing LLC。

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