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首页> 外文期刊>Microvascular Research: An International Journal >Extracorporeal bypass model of blood circulation for the study of microvascularhemodynamics
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Extracorporeal bypass model of blood circulation for the study of microvascularhemodynamics

机译:用于微血管血流动力学研究的体外血液循环旁路模型

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Many studies have been performed to better understand the hemodynamics in microvessels, such as arterioles and venules. However, due to the heterogeneous features of size, shape, blood-flow velocity, and pulsatility of microvessels, conducting a systematic study on these factors has been almost impossible. Although in vitro studies have been performed for this purpose, the usefulness of in vitro data is limited by the fact that the rheological properties of blood are changed as blood is exposed to in vitro environments. The purpose of the present study is to investigate the feasibility of a rat extracorporeal bypass model that combines in vivo and in vitro models. An arteriovenous shunt loop with a sub-bypass loop of fluorinated ethylene propylene (FEP) microtube was constructed between the jugular vein and femoral arteryof a rat. Three pinch valves were installed in the main loop. Microscopic images of the blood flow in the FEP tube were sequentially captured with a high-speed camera, and the whole velocity field information was obtained using a micro-particle image velocimetry technique. Experimental results reveal that the velocity fields of the blood flow inside the microtube are well measured because the FEP tube is transparent and has nearly the same refractive index as water. The flow velocity and the pulsatility index of the blood flow in the microtube can be controlled by adjusting the three pinch valves installed upstream, midstream, and downstream of the bypass loop. This hybrid model that combines in vivo and in vitro models can be useful in studying microvascular hemodynamics.
机译:为了更好地了解微血管(如小动脉和小静脉)的血液动力学,已经进行了许多研究。然而,由于微血管的大小,形状,血流速度和脉动性的异质性,对这些因素进行系统的研究几乎是不可能的。尽管已经为此目的进行了体外研究,但是由于血液的流变特性随着血液暴露于体外环境而改变,因而限制了体外数据的实用性。本研究的目的是研究结合体内和体外模型的大鼠体外旁路模型的可行性。在大鼠的颈静脉和股动脉之间构造了一个动静脉分流回路,该回路带有一个氟化乙丙烯(FEP)微管的子旁路回路。在主回路中安装了三个夹管阀。 FEP管中血流的显微图像用高速相机顺序捕获,并使用微粒图像测速技术获得整个速度场信息。实验结果表明,由于FEP管是透明的并且具有与水几乎相同的折射率,因此可以很好地测量微管内部的血流速度场。微管中血流的流速和脉动指数可通过调节安装在旁路回路上游,中游和下游的三个夹管阀来控制。结合了体内和体外模型的这种混合模型可用于研究微血管血流动力学。

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