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A particle-based model for endothelial cell migration under flow conditions

机译:流动条件下的内皮细胞迁移基于颗粒模型

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Endothelial cells (ECs) play a major role in the healing process following angioplasty to inhibit excessive neointima. This makes the process of EC healing after injury, in particular EC migration in a stented vessel, important for recovery of normal vessel function. In that context, we present a novel particle-based model of EC migration and validate it against in vitro experimental data. We have developed a particle-based model of EC migration under flow conditions in an in vitro vessel with obstacles. Cell movement in the model is a combination of random walks and directed movement along the local flow velocity vector. For model calibration, a set of experimental data for cell migration in a similarly shaped channel has been used. We have calibrated the model for a baseline case of a channel with no obstacles and then applied it to the case of a channel with ridges on the bottom surface, representative of stent strut geometry. We were able to closely reproduce the cell migration speed and angular distribution of their movement relative to the flow direction reported in vitro. The model also reproduces qualitative aspects of EC migration, such as entrapment of cells downstream from the flow-disturbing ridge. The model has the potential, after more extensive in vitro validation, to study the effect of variation in strut spacing and shape, through modification of the local flow, on EC migration. The results of this study support the hypothesis that EC migration is strongly affected by the direction and magnitude of local wall shear stress.
机译:内皮细胞(ECS)在血管成形术后抑制过量的内部宫颈愈合过程中起主要作用。这使得损伤后EC愈合的过程,特别是叉血管中的EC迁移,对于恢复正常血管功能很重要。在这种情况下,我们提出了一种基于粒子的EC迁移模型,并针对体外实验数据验证。我们开发了一种基于粒子的EC迁移模型,其在体外血管中的流动条件下具有障碍物。模型中的细胞运动是沿局部流速向量的随机行走和定向运动的组合。对于模型校准,已经使用了一组用于类似形式通道中的细胞迁移的一组实验数据。我们已经校准了没有障碍物的通道的基线情况的模型,然后将其施加到底表面上的脊的沟道的情况下,代表支架支柱几何形状。我们能够与体外报道的流动方向相对于流动方向密切地再现它们运动的细胞迁移速度和角度分布。该模型还再现EC迁移的定性方面,例如从流动扰动脊下的下游的细胞夹住。该模型具有潜力,经过更广泛的体外验证,研究通过改变局部流动,在EC迁移中研究支柱间距和形状变化的影响。本研究的结果支持EC迁移受到局​​部墙面剪切应力的方向和幅度强烈影响的假设。

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