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Microfluidic device for rapid investigation of the deformability of leukocytes in whole blood samples

机译:微流体装置,用于快速调查全血样品中白细胞变形性

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The mechanical properties of cells, such as leukocytes, in a diseased state differ from those of healthy cells, typically due to their microstructure. The deformability of the cells through a constrictive area is analyzed by the applied stress to the cell. This study investigates the relationship between the sample flow speed and distribution of captured leukocytes based on the cell deformability using a microfluidic device. The device comprises of microfilters that serve as the filtration mechanism. The microfilter gap size gradually decreases from 15 to 3 m to facilitate the deformability-based separation. Leukocytes have various sizes; hence, they can be separated by microfilters directly from whole blood samples without any cell clogging, and they do not require sample pre-processing such as centrifugation or red blood cell lysis. The distribution of leukocytes captured by the microfilters with respect to the sample flow speed can be analyzed; at higher sample flow speeds of 6 L/min, small leukocytes with a size of 7 m could not be captured and they passed through the smallest microfilter gap size of 3 m. For smaller leukocytes, such as lymphocytes, the distributions are mainly at gap sizes of 4 m to 8 m, with most of the lymphocytes captured at the 6 m microfilter gap size. We conclude that the distribution of the cells captured during the filtration varies depending on the microfilter gap sizes, applied sample flow speed, cell sizes, and the ability of the cells to deform. The deformability imaging profiles of the sample could be developed from the images of the cell distribution, which might be useful for preliminary screening in the clinical applications. This work presents the development of a simple device for the study of cell deformability as the results provide a biophysical marker in high throughput and bulk sample analyses.
机译:患病状态的细胞(例如白细胞)的机械性质与健康细胞的电池,通常是由于它们的微观结构。通过施加的应力对细胞分析细胞通过收缩区域的可变形性。本研究研究了使用微流体装置的细胞变形性基于细胞变形性的捕获白细胞的样品流速和分布之间的关系。该装置包括用作过滤机构的微型滤波器。微型过滤间隙尺寸逐渐减小15至3μm以促进基于可变形的分离。白细胞有各种尺寸;因此,它们可以通过微过滤器直接从整个血液样品分离,没有任何细胞堵塞,并且它们不需要样品预处理,例如离心或红细胞裂解。可以分析由微型过滤器相对于样品流速捕获的白细胞的分布;在6 L / min的更高样品流速下,不能捕获尺寸为7米的小白细胞,并且它们通过最小的微型微型间隙尺寸为3米。对于较小的白细胞,例如淋巴细胞,分布主要处于4米至8米的间隙尺寸,大部分淋巴细胞在6米的微型间隙尺寸下捕获。我们得出结论,在过滤期间捕获的细胞的分布根据微型晶体间隙尺寸,施加的样品流速,细胞尺寸和细胞变形的能力而变化。可以从细胞分布的图像开发样品的可变形成像轮廓,这可能对临床应用中的初步筛选有用。这项工作介绍了一种简单的装置,用于研究细胞变形性,因为结果提供了高通量和散装样品分析中的生物物理标记。

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