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首页> 外文期刊>ASAIO journal >Combined In Silico and In Vitro Approach Predicts Low Wall Shear Stress Regions in a Hemofilter that Correlate with Thrombus Formation In Vivo
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Combined In Silico and In Vitro Approach Predicts Low Wall Shear Stress Regions in a Hemofilter that Correlate with Thrombus Formation In Vivo

机译:在硅和体外方法中结合在体内与血栓形成相关的血液过滤器中的低壁剪切应力区域

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摘要

A major challenge in developing blood-contacting medical devices is mitigating thrombogenicity of an intravascular device. Thrombi may interfere with device function or embolize from the device to occlude distant vascular beds with catastrophic consequences. Chemical interactions between plasma proteins and bioengineered surface occur at the nanometer scale; however, continuum models of blood predict local shear stresses that lead to platelet activation or aggregation and thrombosis. Here, an iterative approach to blood flow path design incorporating in silico, in vitro, and in vivo experiments predicted the occurrence and location of thrombi in an implantable hemofilter. Low wall shear stress (WSS) regions identified by computational fluid dynamics (CFD) predicted clot formation in vivo. Revised designs based on CFD demonstrated superior performance, illustrating the importance of a multipronged approach for a successful design process.
机译:开发血液接触医疗装置的主要挑战是减轻血管内装置的血栓形成性。 血栓可能会干扰装置功能或从装置栓塞,以呼吸远处的血管床具有灾难性的后果。 血浆蛋白质和生物工程表面之间的化学相互作用在纳米尺度上发生; 然而,连续血液模型预测局部剪切应力,导致血小板活化或聚集和血栓形成。 这里,血流路径设计的迭代方法掺入硅,体内和体内实验中的血液流动路径设计,预测了血栓在植入血液过滤器中的发生和位置。 通过计算流体动力学(CFD)预测凝块形成的低壁剪切应力(WSS)区域。 根据CFD的修订设计展示了卓越的性能,说明了多重方法为成功设计过程的重要性。

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