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Enhanced Microchip Electrophoresis Separations Combined with Electrochemical Detection Utilizing a Capillary Embedded in Polystyrene

机译:增强的微芯片电泳分离与电化学检测相结合利用嵌入聚苯乙烯中的毛细管

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摘要

The ability to use microchip-based electrophoresis for fast, high-throughput separations provides researchers with a tool for close-to real time analysis of biological systems. While PDMS-based electrophoresis devices are popular, the separation efficiency is often an issue due to the hydrophobic nature of PDMS. In this study, a hybrid microfluidic capillary device was fabricated to utilize the positive features of PDMS along with the electrophoretic performance of fused silica. A capillary loop was embedded in a polystyrene base that can be coupled with PDMS microchannels at minimal dead volume interconnects. A method for cleaning out the capillaries after a wet-polishing step was devised through the use of 3D printed syringe attachment. By comparing the separation efficiency of fluorescein and CBI-glycine with both a PDMS-based serpentine device and the embedded capillary loop device, it was shown that the embedded capillary loop device maintained higher theoretical plates for both analytes. A Pd decoupler with a carbon or Pt detection electrode were embedded along with the loop allowing integration of the electrophoretic separation with electrochemical detection. A series of catecholamines were separated to show the ability to resolve similar analytes and detect redox active species. The release of dopamine and norepinephrine from PC 12 cells was also analyzed showing the compatibility of these improved microchip separations with high ionic cell buffers associated with cell culture.
机译:使用基于微芯片的电泳技术进行快速,高通量分离的能力为研究人员提供了一种对生物系统进行近实时分析的工具。尽管基于PDMS的电泳装置很流行,但是由于PDMS的疏水性,分离效率通常是一个问题。在这项研究中,制造出一种混合微流控毛细管设备,以利用PDMS的积极特性以及熔融石英的电泳性能。将毛细管环嵌入聚苯乙烯基体中,该基体可以在最小死体积互连处与PDMS微通道耦合。通过使用3D打印的注射器附件,设计了一种在湿抛光步骤之后清洁毛细血管的方法。通过将荧光素和CBI-甘氨酸与基于PDMS的蛇形管装置和嵌入式毛细管环管装置的分离效率进行比较,表明嵌入式毛细管环管装置对两种分析物的理论塔板数均较高。带有碳或Pt检测电极的Pd解耦器与环路一起嵌入,可将电泳分离与电化学检测整合在一起。分离出一系列儿茶酚胺,以显示分辨相似分析物和检测氧化还原活性物质的能力。还分析了PC 12细胞中多巴胺和去甲肾上腺素的释放情况,显示出这些改进的微芯片分离与与细胞培养相关的高离子细胞缓冲液的相容性。

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  • 年(卷),期 -1(10),1
  • 年度 -1
  • 页码 37–45
  • 总页数 17
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