论文标题

血管壁几何形状对壁诱导的红细胞迁移的影响

Influence of the vessel wall geometry on the wall-induced migration of red blood cells

论文作者

Zhang, Ying, Fai, Thomas G.

论文摘要

血管壁的几何形状在红细胞运动(RBC)的运动中起着调节作用。容器壁的整体地形取决于许多特征,其中内皮表面层(ESL)的内皮衬里是重要的。容器壁的内皮衬里为在血液和组织之间交换材料的表面积很大。 ESL在调节血管通透性,阻碍白细胞粘附以及抑制炎症过程中的凝结方面起着至关重要的作用。据信ESL结构的变化会导致败血症期间引起血管过敏性和捕获免疫细胞,这可能会显着改变血管壁的几何形状,并干扰RBC和血管壁之间的相互作用,包括壁诱导的RBC迁移以及无细胞层的增厚。为了研究血管壁几何形状在各种病理条件下(例如败血症)对RBC运动的影响,我们开发了两种模型,以二维的浸入边界方法来表示ESL。特别是,我们使用模拟研究了血管壁附近的RBC上的升力和拖动力如何随着壁厚,空间变化以及与容器壁几何形状变化相关的渗透性而变化。我们发现,壁的空间变化对高渗透性的壁诱导的迁移具有显着影响,并且随着血管直径的增加,壁诱导的迁移受到了显着抑制。

The geometry of the blood vessel wall plays a regulatory role on the motion of red blood cells (RBCs). The overall topography of the vessel wall depends on many features, among which the endothelial lining of the endothelial surface layer (ESL) is an important one. The endothelial lining of vessel walls presents a large surface area for exchanging materials between blood and tissues. The ESL plays a critical role in regulating vascular permeability, hindering leukocyte adhesion as well as inhibiting coagulation during inflammation. Changes in the ESL structure are believed to cause vascular hyperpermeability and entrap immune cells during sepsis, which could significantly alter the vessel wall geometry and disturb interactions between RBCs and the vessel wall, including the wall-induced migration of RBCs and the thickening of a cell-free layer. To investigate the influence of the vessel wall geometry particularly changed by the ESL under various pathological conditions, such as sepsis, on the motion of RBCs, we developed two models to represent the ESL using the immersed boundary method in two dimensions. In particular, we used simulations to study how the lift force and drag force on a RBC near the vessel wall vary with different wall thickness, spatial variation, and permeability associated with changes in the vessel wall geometry. We find that the spatial variation of the wall has a significant effect on the wall-induced migration of the RBC for a high permeability, and that the wall-induced migration is significantly inhibited as the vessel diameter is increased.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源