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High Frequency Components of Hemodynamic Shear Stress Profiles are a Major Determinant of Shear-Mediated Platelet Activation in Therapeutic Blood Recirculating Devices

机译:血液动力剪切应力分布的高频成分是治疗性血液循环装置中剪切介导的血小板活化的主要决定因素。

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摘要

We systematically analyzed the relative contributions of frequency component elements of hemodynamic shear stress waveforms encountered in cardiovascular blood recirculating devices as to overall platelet activation over time. We demonstrated that high frequency oscillations are the major determinants for priming, triggering and yielding activated "prothrombotic behavior" for stimulated platelets, even if the imparted shear stress has low magnitude and brief exposure time. Conversely, the low frequency components of the stress signal, with limited oscillations over time, did not induce significant activation, despite being of high magnitude and/or exposure time. In vitro data were compared with numerical predictions computed according to a recently proposed numerical model of shear-mediated platelet activation. The numerical model effectively resolved the correlation between platelet activation and the various frequency components examined. However, numerical predictions exhibited a different activation trend compared to experimental results for different time points of a stress activation sequence. With this study we provide a more fundamental understanding for the mechanobiological responsiveness of circulating platelets to the hemodynamic environment of cardiovascular devices, and the importance of these environments in mediating life-threatening thromboembolic complications associated with shear-mediated platelet activation. Experimental data will guide further optimization of the thromboresistance of cardiovascular implantable therapeutic devices.
机译:我们系统分析了随着时间的流逝,心血管血液循环设备中遇到的血液动力切应力波形的频率成分的相对贡献。我们证明了高频振荡是引发血小板的引发,触发和产生激活的“血栓形成行为”的主要决定因素,即使所施加的剪切应力具有低幅度和短暂的暴露时间。相反,应力信号的低频分量随时间的推移具有有限的振荡,尽管幅度和/或曝光时间较长,但并未引起明显的激活。将体外数据与根据最近提出的剪切介导的血小板活化数值模型计算的数值预测进行比较。该数值模型有效地解决了血小板活化与所检查的各种频率成分之间的相关性。但是,与针对应力激活序列的不同时间点的实验结果相比,数值预测显示出不同的激活趋势。通过这项研究,我们对循环血小板对心血管装置的血液动力学环境的机械生物学响应能力以及这些环境在介导与剪切介导的血小板活化相关的威胁生命的血栓栓塞性并发症的重要性方面提供了更基本的了解。实验数据将指导进一步优化心血管可植入治疗设备的血栓抵抗性。

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