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In vivo measurement of blood flow in a micro-scale stenosis model generated by laser photothermal blood coagulation

机译:激光光热血液凝固产生的微型狭窄模型中的血流体内测量

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摘要

Blood flow in a stenosed vessel is one of the most important issues, because it is closely related to the outbreak of circulatory diseases. To overcome the technological limitations encountered in the haemodynamic studies using in vitro stenosis models, the authors induced a stenosed flow model in the extraembryonic vessels of a chicken embryo. Blood was coagulated by laser irradiation to artificially form a stenosis on the designated spot in a straight blood vessel. Owing to photothermal coagulation of red blood cells (RBCs), the blood is denatured and a stable blood coagulum is induced in the vessel. The blood coagulum adheres firmly and stably on the vessel wall without any size variation. It disturbs the on-coming blood flow significantly. To investigate the haemodynamic characteristics of the blood flow in the stenosed vessel, a micro particle image velocimetry technique was employed using RBCs as tracers to measure the spatial distributions of velocity vectors, streamlines and shear rate. The present simple modelling of in vivo stenosis would be useful for investigating the basic haemodynamic mechanisms underlying circulatory vascular diseases.
机译:狭窄的血管中的血流是最重要的问题之一,因为它与循环系统疾病的爆发密切相关。为了克服使用体外狭窄模型进行血液动力学研究中遇到的技术限制,作者在鸡胚的胚外血管中引入了狭窄的流动模型。通过激光照射使血液凝结,在笔直血管的指定部位上人为地形成狭窄。由于红细胞(RBC)的光热凝结,血液变性,并在血管中诱导出稳定的血液凝结。凝血块牢固而稳定地粘附在血管壁上,没有任何尺寸变化。它显着干扰即将来临的血液流动。为了研究狭窄血管中血流的血液动力学特性,采用了一种以RBC为示踪剂的微颗粒图像测速技术,以测量速度矢量,流线和剪切速率的空间分布。目前体内狭窄的简单模型对于研究循环血管疾病的基本血液动力学机制将是有用的。

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  • 来源
    《Systems Biology, IET》 |2013年第2期|1-6|共6页
  • 作者

    Lee S.J.; Ha H.J.;

  • 作者单位

    Pohang University of Science and Technology, Korea|c|;

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  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 13:11:22

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