Tulock Joseph J, Shannon Mark A, Bohn Paul W, Sweedler Jonathan V
Department of Chemistry, University of Illinois at Urbana-Champaign, 600 South Mathews Avenue, Urbana, Illinois 61801, USA.
Anal Chem. 2004 Nov 1;76(21):6419-25. doi: 10.1021/ac049601p.
Integrating multiple analytical processes into microfluidic devices is an important research area required for a variety of microchip-based analyses. A microfluidic system is described that achieves preparative separations by intelligent fraction collection of attomole quantities of sample. The device consists of a main microfluidic channel used to perform electrophoresis, which is interconnected at 90 degrees to two vertically displaced channels via a nanocapillary array membrane. The membrane interconnect contains nanometer-diameter pores that provide fluidic communication between the channels. Sample injection and analyte collection are controlled by application of an electrical bias between the microfluidic channels across the nanocapillary array. After the separation, the automated transfer of the FITC-labeled Arg, Gln, and Gly bands occurs; a fluorescence detector located at the separation/collection channel interconnect is used to generate a triggering signal that initiates suitable voltages to allow near-quantitative transfer of analyte from the separation channel to the second fluidic layer. The ability to achieve such sample manipulations from mass-limited samples enables a variety of postseparation processing events.
将多个分析过程集成到微流控设备中是各种基于微芯片的分析所需的一个重要研究领域。本文描述了一种微流控系统,该系统通过对阿托摩尔量的样品进行智能馏分收集来实现制备分离。该设备由一个用于进行电泳的主微流控通道组成,该通道通过纳米毛细管阵列膜与两个垂直错位的通道成90度互连。膜互连包含纳米直径的孔,这些孔提供通道之间的流体连通。样品注入和分析物收集通过在纳米毛细管阵列上的微流控通道之间施加电偏压来控制。分离后,会自动转移异硫氰酸荧光素标记的精氨酸、谷氨酰胺和甘氨酸条带;位于分离/收集通道互连处的荧光检测器用于生成触发信号,该信号启动合适的电压,以允许分析物从分离通道近乎定量地转移到第二流体层。从质量受限的样品中实现这种样品操作的能力使得能够进行各种分离后处理事件。