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Passive microfluidic devices for plasma extraction from whole human blood

机译:用于从全血中提取血浆的被动微流体装置

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Our goal is to analyze and compare different continuous microfluidic principles dedicated to plasm, extraction from hardly diluted human blood for lab-on-chip applications. First, the strengths and weak nesses of various emerging passive microfluidic methods (microfiltration- and centrifugation-basec methods) were analyzed. Various devices were designed, microfabricated and tested with beads or blood Filtration may be efficient, but with a high sample dilution, low flow rate and optimized geometry. Due to fast cell clogging, this remains a short-term solution. Separation effects resulting from centrifugai acceleration in curved channel flows are hindered by Dean vortices and anyhow are not pronounced with blood. An innovative device is then proposed and investigated experimentally. This is based on the lateral migration of red cells and the resulting cell-free layer, which is used to supply geometric singularities (an ear-cavity or a corner-edge) and locally enhance the clear plasma region. A maximum extraction of 10.7% is obtained for 1/20 diluted blood, injected at 100μL/min in the corner-edge design.
机译:我们的目标是分析和比较专门用于血浆的不同连续微流控原理,这些原理是从几乎没有稀释的人血中提取出来的,以用于芯片实验室。首先,分析了各种新兴的被动微流体方法(基于微滤和离心的方法)的优缺点。各种设备的设计,微细加工和珠子或血液测试都可以进行过滤。虽然过滤效率高,但样品稀释度高,流速低且几何形状最优化。由于细胞快速堵塞,这仍然是短期解决方案。 Dean涡流阻碍了弯曲通道流中离心加速所产生的分离效果,而且无论如何血液都不会明显。然后提出了一种创新的设备,并进行了实验研究。这是基于红细胞的横向迁移和所得的无细胞层,该层用于提供几何奇异性(耳腔或角边缘)并局部增强透明的血浆区域。在拐角边缘设计中,以100μL/ min进样的1/20稀释血液最大提取率为10.7%。

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