首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Integration of continuous-flow sampling with microchip electrophoresis using poly(dimethylsiloxane)-based valves in a sealed device reversibly sealed device
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Integration of continuous-flow sampling with microchip electrophoresis using poly(dimethylsiloxane)-based valves in a sealed device reversibly sealed device

机译:使用基于聚(二甲基硅氧烷)的阀将连续流采样与微芯片电泳集成在可逆密封设备中

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摘要

Here we describe a reversibly sealed microchip device that incorporates poly(dimethylsfoxane) (PDMS)-based valves for the rapid injection of analytes from a continuously flowing stream into a channel network for analysis with microchip electrophoresis. The microchip was reversibly sealed to a PDMS-coated glass substrate and microbore tubing was used for the introduction of gas and fluids to the microchip device. Two pneumatic valves were incorporated into the design and actuated on the order of hundreds of milliseconds, allowing analyte from a continuously flowing sampling stream to be injected into an electrophoresis separation channel. The device was characterized in terms of the valve actuation time and pushback voltage. It was also found that the addition of sodium dodecyl sulfate (SDS) to the buffer system greatly increased the reproducibility of the injection scheme and enabled the analysis of amino acids derivatized with naphthalene-2,3-dicarboxaldehyde/cyanide. Results from continuous injections of a 0.39 nL fluorescein plug into the optimized system showed that the injection process was reproducible (RSD of 0.7%, n=10). Studies also showed that the device was capable of monitoring off-chip changes in concentration with a device lag time of 90 s. Finally, the ability of the device to rapidly monitor on-chip concentration changes was demonstrated by continually sampling from an analyte plug that was derivatized upstream from the electrophoresis /continuous flow interface. A reversibly sealed device of this type will be useful for the continuous monitoring and analysis of processes that occur either off-chip (such as microdialysis sampling) or on-chip from other integrated functions.
机译:在这里,我们描述了一种可逆密封的微芯片设备,该设备结合了基于聚二甲基二氧六环(PDMS)的阀门,用于将分析物从连续流动的流中快速注入通道网络中,以进行微芯片电泳分析。将微芯片可逆地密封到涂有PDMS的玻璃基板上,并使用微孔管将气体和流体引入微芯片设备。设计中并入了两个气动阀,并在几百毫秒的数量级上进行了驱动,从而允许将连续流动的采样流中的分析物注入到电泳分离通道中。该设备通过阀门驱动时间和后推电压来表征。还发现向缓冲液体系中添加十二烷基硫酸钠(SDS)大大提高了进样方案的重现性,并使分析由萘-2,3-二二甲醛/氰化物衍生的氨基酸成为可能。将0.39 nL荧光素塞连续注射到优化系统中的结果表明,注射过程可重现(RSD为0.7%,n = 10)。研究还表明,该器件能够以90 s的器件滞后时间监测片外浓度变化。最后,通过连续从电泳/连续流界面上游衍生的分析物塞子中采样,证明了该设备快速监测芯片上浓度变化的能力。这种类型的可逆密封装置对于连续监测和分析芯片外(例如微透析采样)或其他集成功能在芯片上发生的过程非常有用。

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