Herzog Christin, Beckert Erik, Nagl Stefan
Institut für Analytische Chemie, Universität Leipzig , Linnéstrasse 3, 04103 Leipzig, Germany.
Anal Chem. 2014 Oct 7;86(19):9533-9. doi: 10.1021/ac501783r. Epub 2014 Sep 23.
Herein, the fabrication, characterization, calibration, and application of integrated microfluidic platforms for fast isoelectric point (pI) determinations via free-flow electrophoresis with integrated inkjet-printed fluorescent pH sensor microstructures are presented. These devices allow one to determine the pI of a biomolecule from a sample mixture with moderately good precision and without addition of markers in typically less than 10 s total separation and analysis time. Polyhydroxyethyl methacrylate (pHEMA) hydrogels were covalently coupled with fluorescein and hydroxypyrene trisulfonic acid (HPTS)-based pH probes. These were piezoelectrically jet-dispensed onto acrylate-modified glass as pH sensor microarrays with a diameter of 300-600 μm and thicknesses of 0.4-2.4 μm with high spatial accuracy. Microchip fabrication and integration of these pH sensor arrays was realized by multistep liquid-phase photolithography from oligoethylene glycol precursors resulting in glass-based microfluidic free-flow isoelectric focusing (μFFIEF) chips with integrated pH observation capabilities. The microchips were characterized with regard to pH sensitivity, response times, photo-, and flow stability. Depending on the sensor matrix, they allowed IEF within a pH range of roughly 5.5-10.5 with good sensitivity and fast response times. These microchips were used for FFIEF of small molecule markers and several protein mixtures with simultaneous monitoring of local pH. This allowed the determination of their pI via multispectral imaging of protein and pH sensor fluorescence without addition of external markers. Obtained pI's were generally in good agreement with known data, demonstrating the applicability of the method for pI determination in micropreparative procedures within a time frame of a few seconds only.
本文介绍了集成微流控平台的制造、表征、校准及应用,该平台通过具有集成喷墨打印荧光pH传感器微结构的自由流动电泳实现快速等电点(pI)测定。这些设备能够以适度良好的精度从样品混合物中测定生物分子的pI,且无需添加标记物,通常在总分离和分析时间不到10秒的情况下即可完成。聚甲基丙烯酸羟乙酯(pHEMA)水凝胶与基于荧光素和羟基芘三磺酸(HPTS)的pH探针共价偶联。这些探针通过压电喷射分配到丙烯酸酯改性玻璃上,形成直径为300 - 600μm、厚度为0.4 - 2.4μm的pH传感器微阵列,具有很高的空间精度。通过多步液相光刻技术,由低聚乙二醇前体实现了这些pH传感器阵列的微芯片制造和集成,从而得到具有集成pH观测能力的基于玻璃的微流控自由流动等电聚焦(μFFIEF)芯片。对微芯片的pH敏感性、响应时间、光稳定性和流动稳定性进行了表征。根据传感器基质的不同,它们能够在大约5.5 - 10.5的pH范围内进行等电聚焦,具有良好的灵敏度和快速响应时间。这些微芯片用于小分子标记物和几种蛋白质混合物的自由流动等电聚焦,并同时监测局部pH值。这使得在不添加外部标记物的情况下,通过蛋白质和pH传感器荧光的多光谱成像来测定它们的pI。所获得的pI通常与已知数据高度一致,证明了该方法在仅几秒钟的时间框架内用于微制备程序中pI测定的适用性。