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用于全封闭PCR模块减压的微流控蒸汽扩散屏障

Microfluidic vapor-diffusion barrier for pressure reduction in fully closed PCR modules.

作者信息

Czilwik G, Schwarz I, Keller M, Wadle S, Zehnle S, von Stetten F, Mark D, Zengerle R, Paust N

机构信息

HSG-IMIT - Institut für Mikro- und Informationstechnik, Georges-Koehler-Allee 103, 79110 Freiburg, Germany.

出版信息

Lab Chip. 2015 Feb 21;15(4):1084-91. doi: 10.1039/c4lc01115e.

DOI:10.1039/c4lc01115e
PMID:25524461
Abstract

Microfluidic systems for polymerase chain reaction (PCR) should be fully closed to avoid vapor loss and to exclude the risk of contaminating the laboratory environment. In closed systems however, the high temperatures of up to 95 °C associated with PCR cause high overpressures up to 100 kPa, dominated by the increase of vapor partial pressure upon evaporation. Such high overpressures pose challenges to the mechanical stability of microfluidic chips as well as to the liquid handling in integrated sample-to-answer systems. In this work, we drastically reduce the pressure increase in fully closed PCR systems by integrating a microchannel that serves as a vapor-diffusion barrier (VDB), separating the liquid-filled PCR chamber from an auxiliary air chamber. In such configurations, propagation of vapor from the PCR chamber into the auxiliary air chamber and as a consequence the increase of pressure is limited by the slow diffusion process of vapor through the VDB. At temperature increase from 23 °C to 95 °C, we demonstrate the reduction of overpressure from more than 80 kPa without the VDB to only 35 kPa with the VDB. We further demonstrate proper function of VDB and its easy integration with downstream processes for PCR based nucleic acid amplification within centrifugal microfluidics. Without integration of the VDB, malfunction due to pressure-induced delamination of the microfluidic chip occurred.

摘要

用于聚合酶链反应(PCR)的微流控系统应完全封闭,以避免蒸汽损失并排除污染实验室环境的风险。然而,在封闭系统中,与PCR相关的高达95°C的高温会导致高达100 kPa的高过压,这主要是由于蒸发时蒸汽分压的增加所致。如此高的过压对微流控芯片的机械稳定性以及集成式样品到答案系统中的液体处理都构成了挑战。在这项工作中,我们通过集成一个用作蒸汽扩散屏障(VDB)的微通道,将充满液体的PCR腔室与辅助空气腔室隔开,从而大幅降低了完全封闭的PCR系统中的压力增加。在这种配置下,蒸汽从PCR腔室传播到辅助空气腔室,因此压力的增加受到蒸汽通过VDB的缓慢扩散过程的限制。在温度从23°C升高到95°C时,我们证明了过压从没有VDB时的超过80 kPa降低到有VDB时的仅35 kPa。我们进一步证明了VDB的正常功能及其与离心微流控中基于PCR的核酸扩增下游过程的轻松集成。如果不集成VDB,会发生由于压力引起的微流控芯片分层导致的故障。

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