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In vivo visualization method by absolute blood flow velocity based on speckle and fringe pattern using two-beam multipoint laser Doppler velocimetry

机译:基于双光束多点激光多普勒测速的基于斑点和条纹图案的绝对血流速度的体内可视化方法

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摘要

Two-beam multipoint laser Doppler velocimetry (two-beam MLDV) is a non-invasive imaging technique able to provide an image of two-dimensional blood flow and has potential for observing cancer as previously demonstrated in a mouse model. In two-beam MLDV, the blood flow velocity can be estimated from red blood cells passing through a fringe pattern generated in the skin. The fringe pattern is created at the intersection of two beams in conventional LDV and two-beam MLDV. Being able to choose the depth position is an advantage of two-beam MLDV, and the position of a blood vessel can be identified in a three-dimensional space using this technique. Initially, we observed the fringe pattern in the skin, and the undeveloped or developed speckle pattern generated in a deeper position of the skin. The validity of the absolute velocity value detected by two-beam MLDV was verified while changing the number of layers of skin around a transparent flow channel. The absolute velocity value independent of direction was detected using the developed speckle pattern, which is created by the skin construct and two beams in the flow channel. Finally, we showed the relationship between the signal intensity and the fringe pattern, undeveloped speckle, or developed speckle pattern based on the skin depth. The Doppler signals were not detected at deeper positions in the skin, which qualitatively indicates the depth limit for two-beam MLDV.
机译:两光束多点激光多普勒测速仪(两光束MLDV)是一种非侵入性成像技术,能够提供二维血流图像,并且具有观察癌症的潜力,如先前在小鼠模型中证明的那样。在两束MLDV中,可以通过穿过皮肤中产生的条纹图案的红细胞来估计血流速度。条纹图案是在常规LDV和两光束MLDV的两个光束的交点处创建的。能够选择深度位置是两光束MLDV的优势,并且可以使用此技术在三维空间中识别血管位置。最初,我们观察到了皮肤上的条纹图案,并且在皮肤的更深处产生了未显影或发达的斑点图案。在更改透明流动通道周围的皮肤层数的同时,验证了两束MLDV检测到的绝对速度值的有效性。使用所形成的斑点图案来检测与速度无关的绝对速度值,该斑点图案是由皮肤构造和流道中的两束光束形成的。最后,我们根据皮肤深度显示了信号强度与条纹图案,未显影的斑点或已显影的斑点图案之间的关系。在皮肤较深的位置未检测到多普勒信号,定性地表明了两束MLDV的深度极限。

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  • 来源
    《Journal of Applied Physics》 |2016年第8期|084701.1-084701.8|共8页
  • 作者单位

    National Institute of Technology, Toyama College, 1-2 Ebie-Neriya, Imizu, Toyama 933-0293, Japan;

    National Institute of Technology, Toyama College, 1-2 Ebie-Neriya, Imizu, Toyama 933-0293, Japan;

    National Institute of Technology, Toyama College, 1-2 Ebie-Neriya, Imizu, Toyama 933-0293, Japan;

    Department of Applied Physics, Faculty of Science, Okayama University of Science, 1-1 Ridai-cho, Okayama 700-0005, Japan;

    Graduate School of Medicine and Pharmaceutical Sciences, University of Toyama, 2630 Sugitani, Toyama 930-0194, Japan;

    Graduate School of Engineering, Osaka City University, 3-3-138 Sugimoto, Sumiyoshi, Osaka 558-8585, Japan;

    National Institute of Technology, Toyama College, 1-2 Ebie-Neriya, Imizu, Toyama 933-0293, Japan;

    National Institute of Technology, Toyama College, 1-2 Ebie-Neriya, Imizu, Toyama 933-0293, Japan;

    National Institute of Technology, Toyama College, 1-2 Ebie-Neriya, Imizu, Toyama 933-0293, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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