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In Vivo Wall Shear Measurements within the Developing Zebrafish Heart

机译:发育中的斑马鱼心脏内的体内壁剪切测量

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摘要

Physical forces can influence the embryonic development of many tissues. Within the cardiovascular system shear forces resulting from blood flow are known to be one of the regulatory signals that shape the developing heart. A key challenge in investigating the role of shear forces in cardiac development is the ability to obtain shear force measurements in vivo. Utilising the zebrafish model system we have developed a methodology that allows the shear force within the developing embryonic heart to be determined. Accurate wall shear measurement requires two essential pieces of information; high-resolution velocity measurements near the heart wall and the location and orientation of the heart wall itself. We have applied high-speed brightfield imaging to capture time-lapse series of blood flow within the beating heart between 3 and 6 days post-fertilization. Cardiac-phase filtering is applied to these time-lapse images to remove the heart wall and other slow moving structures leaving only the red blood cell movement. Using particle image velocimetry to calculate the velocity of red blood cells in different regions within the heart, and using the signal-to-noise ratio of the cardiac-phase filtered images to determine the boundary of blood flow, and therefore the position of the heart wall, we have been able to generate the necessary information to measure wall shear in vivo. We describe the methodology required to measure shear in vivo and the application of this technique to the developing zebrafish heart. We identify a reduction in shear at the ventricular-bulbar valve between 3 and 6 days post-fertilization and demonstrate that the shear environment of the ventricle during systole is constantly developing towards a more uniform level.
机译:物理力会影响许多组织的胚胎发育。在心血管系统内,由血流产生的剪切力是形成心脏发育的调节信号之一。调查剪切力在心脏发育中的作用的关键挑战是获得体内剪切力测量值的能力。利用斑马鱼模型系统,我们开发了一种方法,可以确定正在发育的胚胎心脏内的剪切力。准确的墙剪测量需要两个基本信息:心脏壁附近的高分辨率速度测量以及心脏壁本身的位置和方向。我们已应用高速明场成像来捕获受精后3到6天之间跳动的心脏内的血流的延时序列。对这些延时图像进行心脏相位滤波,以去除心脏壁和其他缓慢移动的结构,仅留下红血球运动。使用粒子图像测速仪计算心脏内不同区域的红细胞速度,并使用心相滤波图像的信噪比确定血流边界,从而确定心脏位置墙,我们已经能够生成必要的信息来测量体内壁的剪切力。我们描述了在体内测量剪切所需的方法,以及该技术在斑马鱼心脏发育中的应用。我们确定在受精后3至6天之间,在心室球瓣处剪切的减少,并证明在收缩期心室的剪切环境不断向着更均匀的水平发展。

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