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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Effect of hypertension on the closing dynamics and lagrangian blood damage index measure of the B-datum regurgitant jet in a bileaflet mechanical heart valve
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Effect of hypertension on the closing dynamics and lagrangian blood damage index measure of the B-datum regurgitant jet in a bileaflet mechanical heart valve

机译:高血压对双叶机械性心脏瓣膜B超反流射流关闭动力学和拉格朗日血液损伤指数的影响

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We hypothesize that the formation of the closing vortex and subsequent b-datum regurgitation jet in bileaflet mechanical heart valves is governed by the magnitude of the driving mean aortic pressure (MAP), and that this sensitivity does impact the blood damage index (BDI) corresponding to platelet activation and lysis. High spatial resolution time resolved (1 kHz) as well as phase locked particle image velocimetry techniques captured the dynamic leaflet closure and regurgitation jet of a model 25 mm St. Jude Medical BMHV. Cell trajectories were estimated using Lagrangian particle tracking analysis while the leaflet kinematics was quantified by tracking the leaflet tip-position throughout closure. The non-principal as well as principal shear stress loading histories along each cell trajectory revealed BDI for platelet activation and lysis as a function of cell initial position, release time-point, and blood pressure. Results show that the leaflet closing time reduces by roughly 10 ms, in response to an increase in MAP by 40 mmHg. We report that higher MAP leads to a stronger b-datum vortex and jet formation. Platelet activation BDI lowers with a higher MAP due to reduction in exposure times despite an increase in principal shear stress experienced. Platelet lysis BDI however increases with higher MAP. Maximum BDI may occur for cells initially in the b-datum zone during the onset of leaflet closure. Our results provide a better understanding of BDI of the regurgitant b-datum jet and sheds light on the potential importance of blood damage testing under hypertensive conditions.
机译:我们假设在双叶机械心脏瓣膜中闭合涡旋的形成和随后的b基准反流喷射受驱动平均主动脉压(MAP)的大小控制,并且这种敏感性确实会影响相应的血液损伤指数(BDI)血小板活化和裂解。高空间分辨率时间分辨(1 kHz)以及锁相颗粒图像测速技术捕获了25 mm St. Jude Medical BMHV模型的动态瓣叶闭合和反流射流。使用拉格朗日粒子跟踪分析估计细胞轨迹,同时通过跟踪整个闭合过程中的小叶尖端位置来量化小叶运动学。沿每个细胞轨迹的非主要和主要剪切应力加载历史显示,BDI激活和裂解血小板的功能是细胞初始位置,释放时间点和血压的函数。结果表明,由于MAP增加40 mmHg,小叶关闭时间减少了大约10 ms。我们报道较高的MAP导致更强的b基准涡和射流形成。尽管暴露的主切应力增加,但由于暴露时间减少,血小板活化BDI随MAP升高而降低。然而,随着MAP的升高,血小板溶解BDI增加。在小叶关闭开始期间,最初位于b数据区的细胞可能发生最大BDI。我们的结果提供了对反流性b基准射流的BDI的更好理解,并阐明了高血压条件下血液损伤测试的潜在重要性。

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