Red blood cell partitioning and segregation through vascular bifurcations in a model of sickle cell disease.

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL
Soft Matter Pub Date : 2025-06-26 DOI:10.1039/d4sm01519c
Xiaopo Cheng, Christina Caruso, Wilbur A Lam, Michael D Graham
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Abstract

The impacts of cell segregation and margination in blood disorders on microcirculatory hemodynamics within bifurcated vessels are physiologically significant, yet poorly understood. This study presents a comprehensive computational investigation of red blood cell (RBC) suspension dynamics, with a focus on a model of sickle cell disease (SCD) as an example of a disorder associated with subpopulations of aberrant RBCs. The findings reveal how cell margination influences cellular partitioning and distributions as well as vessel wall shear stress (WSS) at vascular bifurcations. Normal RBCs, which migrate toward the channel center, exhibit the Zweifach-Fung effect, preferentially entering high-flow-rate branches. In contrast, sickle cells, which marginate near the vessel wall, demonstrate an anti-Zweifach-Fung effect, favoring lower-flow-rate branches due to their position within the cell-free layer (CFL). The upstream segregation of cells remains downstream through the bifurcation, where sickle cells accumulate along the outer branch walls. This accumulation of sickle cells increases the frequency of high WSS events via direct physical interactions, particularly on the outer side of high-velocity branches, potentially contributing to the vascular damage and endothelial disruption observed in many disorders that affect RBCs. In geometrically asymmetric bifurcations, cells preferentially enter branches with larger radii, underscoring the influence of geometric complexity on microcirculatory blood flow. These findings provide insights into microvascular hemodynamics in SCD and other blood disorders.

镰状细胞病模型中通过血管分叉的红细胞分裂和分离。
血液疾病中细胞分离和边缘对分岔血管内微循环血流动力学的影响在生理学上是显著的,但知之甚少。本研究对红细胞(RBC)悬浮动力学进行了全面的计算研究,重点关注镰状细胞病(SCD)模型,作为与异常红细胞亚群相关的疾病的一个例子。这些发现揭示了细胞分裂如何影响细胞的分配和分布,以及血管分叉处的血管壁剪切应力(WSS)。正常红细胞向通道中心迁移,表现出茨威法赫-冯氏效应,优先进入高流速分支。相反,边缘靠近血管壁的镰状细胞表现出抗茨威法赫-冯氏效应,由于其位于无细胞层(CFL)内,有利于低流速分支。细胞的上游分离通过分叉保持在下游,镰状细胞沿着外分支壁积聚。镰状细胞的积累通过直接的物理相互作用增加了高WSS事件的频率,特别是在高速分支的外侧,潜在地促进了在许多影响红细胞的疾病中观察到的血管损伤和内皮破坏。在几何不对称分叉中,细胞优先进入半径较大的分支,强调几何复杂性对微循环血流的影响。这些发现为SCD和其他血液疾病的微血管血流动力学提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Soft Matter
Soft Matter 工程技术-材料科学:综合
CiteScore
6.00
自引率
5.90%
发文量
891
审稿时长
1.9 months
期刊介绍: Soft Matter is an international journal published by the Royal Society of Chemistry using Engineering-Materials Science: A Synthesis as its research focus. It publishes original research articles, review articles, and synthesis articles related to this field, reporting the latest discoveries in the relevant theoretical, practical, and applied disciplines in a timely manner, and aims to promote the rapid exchange of scientific information in this subject area. The journal is an open access journal. The journal is an open access journal and has not been placed on the alert list in the last three years.
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