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红细胞在具有连续分叉的微血管网络中的分布。

Red blood cell distribution in a microvascular network with successive bifurcations.

机构信息

Department of Computational Mathematics, School of Mathematics, Jilin University, Qianjin Ave. #2699, Changchun, 130012, China.

出版信息

Biomech Model Mechanobiol. 2019 Dec;18(6):1821-1835. doi: 10.1007/s10237-019-01179-5. Epub 2019 Jun 3.

Abstract

Nonproportional RBC distribution is an important characteristic in microvascular networks, which can result in heterogeneity of oxygen supply that may cause ischemic death in severe cases. In this paper, we perform three-dimensional numerical simulations of a large number of RBCs in a microvascular network, by using a hybrid method of smoothed dissipative particle dynamic and immersed boundary method. The distribution of multiple RBCs in a T-bifurcation is first simulated as a validation study, and a reasonable agreement is observed both qualitatively and quantitatively on the RBC flux between our results and the previously published numerical and empirical results. Next, the distribution of a large number of RBCs in a microvascular network is investigated, including the effects of cell deformability, aggregation and tube hematocrit. The simulation results indicate that decreased deformability and increased aggregation strength have a similar effect on the RBC distribution: the large RBC flux becomes larger, but the small becomes smaller. A high hematocrit also causes a similar phenomenon that the RBCs are more apt to flow into a high RBC-flux branch, because they are arranged compactly into a rouleaux and difficultly broken up at a high hematocrit. These results imply that lower cell deformability, stronger aggregation or higher tube hematocrit would be conducive to the phase separation of hematocrit and plasma skimming processes in microcirculation.

摘要

非比例红细胞分布是微血管网络中的一个重要特征,它会导致氧供应的异质性,在严重的情况下可能导致缺血性死亡。在本文中,我们通过使用平滑耗散粒子动力学和浸入边界方法的混合方法,对微血管网络中的大量 RBC 进行了三维数值模拟。首先模拟了 T 形分叉处的多个 RBC 分布,作为验证研究,我们的结果在 RBC 通量方面定性和定量上都与先前发表的数值和经验结果有很好的一致性。接下来,研究了大量 RBC 在微血管网络中的分布,包括细胞变形性、聚集和管内红细胞压积的影响。模拟结果表明,降低变形性和增加聚集强度对 RBC 分布有相似的影响:大 RBC 通量变大,但小 RBC 通量变小。高红细胞压积也会导致类似的现象,即 RBC 更倾向于流入 RBC 通量较高的分支,因为它们在高红细胞压积下紧密排列成红细胞缗线状,难以破裂。这些结果表明,较低的细胞变形性、较强的聚集或较高的管内红细胞压积有利于微循环中红细胞压积的相分离和血浆撇取过程。

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