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高剪切应力下血小板边缘化现象的研究。

Investigation of platelet margination phenomena at elevated shear stress.

作者信息

Zhao Rui, Kameneva Marina V, Antaki James F

机构信息

Department of Biomedical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA.

出版信息

Biorheology. 2007;44(3):161-77.

Abstract

Thrombosis is a common complication following the surgical implantation of blood contacting artificial organs. Platelet transport, which is an important process of thrombosis and strongly modulated by flow dynamics, has not been investigated under the shear stress level associated with these devices, which may range from tens to several hundred Pascal.The current research investigated platelet transport within blood under supra-physiological shear stress conditions through a micro flow visualization approach. Images of platelet-sized fluorescent particles in the blood flow were recorded within microchannels (2 cm x 100 microm x 100 microm). The results successfully demonstrated the occurrence of platelet-sized particle margination under shear stresses up to 193 Pa, revealing a platelet near-wall excess up to 8.7 near the wall (within 15 microm) at the highest shear stress. The concentration of red blood cells was found to influence the stream-wise development of platelet margination which was clearly observed in the 20% Ht sample but not the 40% Ht sample. Shear stress had a less dramatic effect on the margination phenomenon than did hematocrit. The results imply that cell-cell collision is an important factor for platelet transport under supra-physiologic shear stress conditions. It is anticipated that these results will contribute to the future design and optimization of artificial organs.

摘要

血栓形成是血液接触型人工器官外科植入术后常见的并发症。血小板运输是血栓形成的一个重要过程,且受到流动动力学的强烈调节,但尚未在与这些装置相关的剪切应力水平(范围可能从几十到几百帕斯卡)下进行研究。当前的研究通过微流动可视化方法,研究了超生理剪切应力条件下血液中的血小板运输。在微通道(2厘米×100微米×100微米)内记录了血流中血小板大小的荧光颗粒的图像。结果成功证明了在高达193帕斯卡的剪切应力下,血小板大小的颗粒会出现边缘化现象,在最高剪切应力下,靠近壁面(15微米范围内)的血小板近壁过量高达8.7。发现红细胞浓度会影响血小板边缘化的流向发展,这在20%血细胞比容的样本中清晰可见,但在40%血细胞比容的样本中未观察到。与血细胞比容相比,剪切应力对边缘化现象的影响较小。结果表明,细胞间碰撞是超生理剪切应力条件下血小板运输的一个重要因素。预计这些结果将有助于未来人工器官的设计和优化。

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