Hu Xianqiao, Dong Yuanyuan, He Qiaohong, Chen Hengwu, Zhu Zhiwei
China National Rice Research Institute, Hangzhou 310006, China; Institute of Microanalytical Systems, Department of Chemistry, Zhejiang University, Zijin'gang Campus, Hangzhou 310058, China; Laboratory of Quality & Safety Risk Assessment for Rice (Hangzhou), Ministry of Agriculture, Hangzhou, China.
Institute of Microanalytical Systems, Department of Chemistry, Zhejiang University, Zijin'gang Campus, Hangzhou 310058, China.
J Chromatogr B Analyt Technol Biomed Life Sci. 2015 May 15;990:96-103. doi: 10.1016/j.jchromb.2015.03.013. Epub 2015 Mar 28.
A highly integrated polystyrene (PS) microfluidic chip coupled to electrospray ionization mass spectrometry for on-chip protein digestion and online analysis was developed. The immobilized enzymatic microreactor for on-chip protein digestion was integrated onto microchip via the novel method of region-selective UV-modification combined with glutaraldehyde-based immobilization. The micro film electric contact for applying high voltage was prepared on chips by using UV-directed electroless plating technique. A micro-tip was machined at the end of main channel, serving as the interface between microchip and mass spectrometric detector. On-chip digestion and online detection of protein was carried out by coupling the microchip with mass spectrometry (MS). The influences of methanol flow rate in side channel on the stability of spray and intensity of signals were investigated systematically. Also the influence of sample flow rate on the performance of immobilized enzymatic reactor were investigated. Stable spray was obtained at the spray voltage of 2.8-3.0kV and the methanol flow rate of 500-700nLmin(-1) with the relative standard deviation (RSD) of total ion current (TIC) less than 10%. The influence of sample flow rate on the performance of immobilized enzymatic reactor was also studied. The sequence coverage of protein identification decreased with the increase of flow rate of the sample solution. A sequence coverage of 96% was obtained with immobilized enzymatic reactor at the sample flow rate of 100nLmin(-1) with the reaction time of 8.4min. It could detect cytochrome c as low as 10μgmL(-1) with the developed system. No obvious decrease in protein digestion efficiency was observed after the chip continuously performed for 4h and stored for 15d.
开发了一种高度集成的聚苯乙烯(PS)微流控芯片,该芯片与电喷雾电离质谱联用,用于芯片上的蛋白质消化和在线分析。通过区域选择性紫外改性结合戊二醛固定化的新方法,将用于芯片上蛋白质消化的固定化酶微反应器集成到微芯片上。利用紫外导向化学镀技术在芯片上制备了用于施加高压的微膜电接触。在主通道末端加工了一个微尖端,作为微芯片与质谱检测器之间的接口。通过将微芯片与质谱(MS)联用,实现了芯片上蛋白质的消化和在线检测。系统研究了侧通道中甲醇流速对喷雾稳定性和信号强度的影响。还研究了样品流速对固定化酶反应器性能的影响。在喷雾电压为2.8 - 3.0kV、甲醇流速为500 - 700nLmin(-1)时获得了稳定的喷雾,总离子流(TIC)的相对标准偏差(RSD)小于10%。还研究了样品流速对固定化酶反应器性能的影响。蛋白质鉴定的序列覆盖率随样品溶液流速的增加而降低。在样品流速为100nLmin(-1)、反应时间为8.4min时,固定化酶反应器的序列覆盖率达到96%。所开发的系统能够检测低至10μgmL(-1)的细胞色素c。芯片连续运行4h并储存15d后,未观察到蛋白质消化效率明显下降。