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Computational Evaluation of Platelet Activation Induced by a Bioprosthetic Heart Valve

机译:生物人工心脏瓣膜诱导的血小板活化的计算评估

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It is known that bioprosthetic heart valves (BHVs) have better hemodynamics and lower thromboembolic events compared with their mechanical counterparts; however, patients implanted with BHVs still face the potential of such complications. The risk of a clinical thromboembolism is on average 0.7% per year in patients with tissue valves in sinus rhythm. In this study, we developed a computational fluid dynamic (CFD) model of a BHV implanted in an aortic root and investigated the BHV-induced platelet activation using a damage accumulation model previously applied to mechanical valves. The CFD model was validated against published experimental data, including the flow velocity profile across the valve and the transvalvular pressure drop, and close matches were obtained. Hemodynamic performance measures such as flow velocity, turbulent kinetic energy, and wall shear stress were explored. Lagrangian particle tracking was used to calculate the extent of platelet activation for central bulk flow and flow in the vicinity of the leaflets. A peak flow of 2.22?m/s was observed at 40 msec after peak systole in the vicinity of a fold at the base of the leaflets. With the platelet activation expressed as 0–100% of activation threshold levels, mean damage on one pass was 2.489?×?10?7% and maximum damage on one pass was 8.778?×?10?4%. Our results suggested that the potential for BHV-induced platelet activation was low and that the leaflet's fully open geometry might play a role in the extent of blood element damage.
机译:众所周知,与机械瓣膜相比,生物瓣膜瓣膜具有更好的血液动力学和较低的血栓栓塞事件。但是,植入BHV的患者仍然面临此类并发症的可能性。具有窦性心律组织瓣膜的患者每年平均发生血栓栓塞的风险为0.7%。在这项研究中,我们开发了一种在主动脉根部植入的BHV的计算流体动力学(CFD)模型,并使用先前应用于机械瓣膜的损伤累积模型研究了BHV诱导的血小板活化。针对已发布的实验数据验证了CFD模型,该数据包括跨阀的流速曲线和跨瓣压降,并获得了紧密匹配。探索了诸如流动速度,湍动能和壁切应力等血液动力学性能指标。拉格朗日粒子跟踪用于计算中心总体血流和小叶附近血流的血小板活化程度。在小叶基部褶皱附近的收缩期峰值后40毫秒观察到2.22?m / s的峰值流量。血小板活化表示为活化阈值水平的0-100%,一次通过的平均损害为2.489?×?10 ?7 %,一次通过的最大损害为8.778?×?10 ?4 %。我们的结果表明,BHV诱导的血小板活化的可能性很低,并且小叶的完全开放的几何形状可能在血元素损害程度中起作用。

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