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首页> 外文期刊>Annals of Biomedical Engineering >Simulated Two-dimensional Red Blood Cell Motion, Deformation, and Partitioning in Microvessel Bifurcations
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Simulated Two-dimensional Red Blood Cell Motion, Deformation, and Partitioning in Microvessel Bifurcations

机译:模拟的二维红细胞运动,变形和微血管分叉中的分区

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摘要

Movement, deformation, and partitioning of mammalian red blood cells (RBCs) in diverging microvessel bifurcations are simulated using a two-dimensional, flexible-particle model. A set of viscoelastic elements represents the RBC membrane and the cytoplasm. Motion of isolated cells is considered, neglecting cell-to-cell interactions. Center-of-mass trajectories deviate from background flow streamlines due to migration of flexible cells towards the mother vessel centerline upstream of the bifurcation and due to flow perturbations caused by cell obstruction in the neighborhood of the bifurcation. RBC partitioning in the bifurcation is predicted by determining the RBC fraction entering each branch, for a given partition of total flow and for a given upstream distribution of RBCs. Typically, RBCs preferentially enter the higher-flow branch, leading to unequal discharge hematocrits in the downstream branches. This effect is increased by migration toward the centerline but decreased by the effects of obstruction. It is stronger for flexible cells than for rigid circular particles of corresponding size, and decreases with increasing parent vessel diameter. For unequally sized daughter vessels, partitioning is asymmetric, with RBCs tending to enter the smaller vessel. Partitioning is not significantly affected by branching angles. Model predictions are consistent with previous experimental results.
机译:使用二维的柔性粒子模型,对发散的微血管分支中的哺乳动物红细胞(RBC)的运动,变形和分配进行了模拟。一组粘弹性元件代表RBC膜和细胞质。考虑了分离细胞的运动,忽略了细胞间相互作用。由于挠性细胞向分叉上游的母血管中心线迁移,以及由于分叉附近的细胞阻塞引起的流量扰动,所以质心轨迹偏离了背景流线。对于给定的总流量分配和给定的RBC上游分配,通过确定进入每个分支的RBC分数来预测分叉中的RBC分配。通常,RBC优先进入流量较高的分支,导致下游分支中排出血细胞比容不均。向中心线的迁移会增加这种影响,但阻塞的影响会降低这种影响。对于柔性泡孔,它比相应大小的刚性圆形颗粒要强,并且随着母血管直径的增加而减小。对于大小不等的子血管,分配是不对称的,RBC倾向于进入较小的血管。分区不受分支角度的明显影响。模型预测与先前的实验结果一致。

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