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Validation and application of an automated rheoscope for measuring red blood cell deformability distributions in different species

机译:自动流变仪在不同物种中测量红细胞变形能力分布的验证和应用

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Background. The deformability of red blood cells (RBCs) is of great importance for the conservation of oxygen delivery in the microcirculation. Even a small fraction of rigid cells is considered to harm the exchange of respiratory gases. Techniques that measure RBC deformability often provide an indication of the mean deformability. It may not be possible, however, to assess whether this mean value is reduced by the presence of a small rigid cell fraction or by a slight overall reduction in RBC deformability. A technique that provides a deformability distribution would be of great value to study diseases that are marked by subpopulations with a reduced deformability. Methods. This paper describes a rheoscope system that uses advanced image analysis techniques to quickly quantify the deformability of many individual cells in shear flow, in order to find the RBC-deformability distribution. Since variations in the shear stress are responsible for variations in cell elongation, and hence introduce an additional spread in the cell deformability distribution, we first determined the spread caused by instrumental error. We then utilized the technique to investigate the relation between cell deformability and cell size of single blood samples of different species (human, pig, rat and rabbit). Results. The spread caused by instrumental error was small compared to the actual RBC-deformability spread in blood samples. The deformability distribution of human and pig cells are alike although their cell sizes are different. Rat and rabbit cells show comparable deformability and size distributions. With this technique no correlation was found between cell deformability and cell size in animal RBCs. In the human sample a minor correlation was found between cell deformability and cell size. Conclusions. The automated rheoscope enables us to study the mechanical properties of RBCs more thoroughly by their deformability distribution. These deformability distributions are hardly influenced by the technique or by cell size.
机译:背景。红细胞(RBC)的可变形性对于保持微循环中的氧气输送非常重要。即使是一小部分的刚性细胞也被认为会损害呼吸气体的交换。测量RBC变形能力的技术通常提供平均变形能力的指示。但是,可能无法评估是由于刚性细胞分数较小还是RBC变形能力总体略有降低而降低了该平均值。提供可变形性分布的技术对研究以可变形性降低的亚人群为特征的疾病具有重要的价值。方法。本文介绍了一种流变仪系统,该系统使用先进的图像分析技术来快速量化剪切流中许多单个单元的变形能力,从而找到RBC变形能力分布。由于剪切应力的变化是造成细胞伸长率变化的原因,因此在细胞变形能力分布中引入了额外的扩展,因此我们首先确定了由仪器误差引起的扩展。然后,我们利用该技术来研究细胞变形能力与不同物种(人,猪,大鼠和兔子)的单个血样的细胞大小之间的关系。结果。与实际的血液样本中RBC变形能力的扩散相比,由仪器误差引起的扩散很小。人和猪细胞的变形能力分布相似,尽管它们的细胞大小不同。大鼠和兔细胞显示出可比的可变形性和大小分布。用这种技术,在动物红细胞的细胞可变形性和细胞大小之间未发现相关性。在人类样品中,发现细胞变形能力与细胞大小之间存在较小的相关性。结论。自动流变仪使我们能够通过其变形能力分布更彻底地研究RBC的机械性能。这些变形性分布几乎不受技术或单元尺寸的影响。

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