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两个红细胞变形性差异对其聚集的影响。

Effect of deformability difference between two erythrocytes on their aggregation.

机构信息

Department of Bioengineering, National University of Singapore, 9 Engineering Drive 1, Singapore 117576, Singapore.

出版信息

Phys Biol. 2013 Jun;10(3):036001. doi: 10.1088/1478-3975/10/3/036001. Epub 2013 Apr 10.

Abstract

In this study, we investigated the rheology of a doublet that is an aggregate of two red blood cells (RBCs). According to previous studies, most aggregates in blood flow consist of RBC doublet-pairs and thus the understanding of doublet dynamics has scientific importance in describing its hemodynamics. The RBC aggregation tendency can be significantly affected by the cell's deformability which can vary under both physiological and pathological conditions. Hence, we conducted a two-dimensional simulation of doublet dynamics under a simple shear flow condition with different deformability between RBCs. To study the dissociation process of the doublet, we employed the aggregation model described by the Morse-type potential function, which is based on the depletion theory. In addition, we developed a new method of updating fluid property to consider viscosity difference between RBC cytoplasm and plasma. Our results showed that deformability difference between the two RBCs could significantly reduce their aggregating tendency under a shear condition of 50 s(-1), resulting in disaggregation. Since even under physiological conditions, the cell deformability may be significantly different, consideration of the difference in deformability amongst RBCs in blood flow would be needed for the hemodynamic studies based on a numerical approach.

摘要

在这项研究中,我们研究了双红细胞(RBC)聚集物的流变性。根据先前的研究,血流中的大多数聚集物由 RBC 双联体对组成,因此了解双联体动力学在描述其血液动力学方面具有科学重要性。RBC 的聚集倾向可以受到细胞变形性的显著影响,而细胞变形性在生理和病理条件下会发生变化。因此,我们在不同 RBC 变形性的简单剪切流条件下对双联体动力学进行了二维模拟。为了研究双联体的解离过程,我们采用了基于消耗理论的 Morse 型势能函数描述的聚集模型。此外,我们开发了一种更新流体特性的新方法来考虑 RBC 细胞质和血浆之间的粘度差异。我们的结果表明,在 50 s(-1)的剪切条件下,两个 RBC 之间的变形性差异会显著降低它们的聚集倾向,导致解聚集。由于即使在生理条件下,细胞的变形性也可能有很大的不同,因此在基于数值方法的血液动力学研究中,需要考虑血流中 RBC 变形性的差异。

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