首页> 外文期刊>Journal of Micromechanics and Microengineering >Plasma extraction rate enhancement scheme for a real-time and continuous blood plasma separation device using a sheathless cell concentrator
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Plasma extraction rate enhancement scheme for a real-time and continuous blood plasma separation device using a sheathless cell concentrator

机译:使用护套电池浓缩器的实时和连续血浆分离装置的等离子体提取率增强方案

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摘要

Microfluidic devices for plasma extraction are popular because they offer the advantage of smaller reagent consumption compared to conventional centrifugations. The plasma yield (volume percentage of plasma that can be extracted) is an important factor for diagnoses in microdevices with small reagent consumptions. However, recently designed microfluidic devices tend to have a low plasma yield because they have been optimized to improve the purity of extracted plasma. Thus, these devices require large amounts of reagents, and this complexity has eliminated the advantage of microfluidic devices that can operate with only small amounts of reagents. We therefore propose a continuous, real-time, blood plasma separation device, for plasma extraction rate enhancements. Moreover, a blood plasma separation device was designed to achieve improved plasma yields with high-purity efficiency. To obtain a high plasma yield, microstructures were placed on the bottom side of the channel to increase the concentration of blood cells. Plasma separation was then accomplished via microfluidic networks based on the Zweifach-Fung effect. The proposed device was fabricated based on the polydimethylsiloxane molding process using the SU-8 microfluidic channel for the fabrication of the mold and bottom structures. Human blood diluted in a phosphate buffered saline solution (25% hematocrit) was injected into the inlet of the device. The purity efficiencies were approximately equal to 96% with a maximum of 96.75% at a flow rate of 2 mu l min(-1), while the plasma yield was approximately 59% with a maximum of 59.92% at a flow rate of 4 mu l min(-1). Compared to results obtained using other devices, our proposed device could obtain comparable or higher plasma purity and a high plasma yield.
机译:用于等离子体提取的微流体装置很受欢迎,因为与常规离心相比,它们提供了较小的试剂消耗的优点。等离子体产率(可以提取的血浆的体积百分比)是诊断具有小试剂消耗的微生物的重要因素。然而,最近设计的微流体装置往往具有低的血浆产量,因为它们已被优化以改善提取的血浆的纯度。因此,这些装置需要大量的试剂,并且这种复杂性消除了可以仅用少量试剂进行操作的微流体装置的优点。因此,我们提出了一种连续,实时,血浆分离装置,用于等离子体提取率增强。此外,设计血浆分离装置以实现具有高纯度效率的改善的等离子体产量。为了获得高血浆产率,将微观结构置于通道的底部以增加血细胞的浓度。然后通过基于Zweifach-Fung效应通过微流体网络进行等离子体分离。基于使用SU-8微流体通道的聚二甲基硅氧烷模塑方法制造所提出的装置,用于制造模具和底部结构。将在磷酸盐缓冲盐水溶液(25%血细胞比容)中稀释的人血液注入装置的入口中。纯度效率大约等于96%,最大为96.75%,流速为2μlmin(-1),而等离子体产率约为59%,最多59.92%,流速为4亩l min(-1)。与使用其他器件获得的结果相比,我们所提出的装置可以获得可比或更高的等离子体纯度和高血浆产量。

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