Department of Molecular and Cellular Oncology, The University of Texas M. D. Anderson Cancer Center, Houston, Texas, USA.
Lab Chip. 2010 Jul 21;10(14):1793-8. doi: 10.1039/c002937h. Epub 2010 May 24.
The understanding of protein interaction dynamics is important for signal transduction research but current available techniques prove difficult in addressing this issue. Thus, using the microfluidic approach, we developed a digital protein analytical platform and methodology named MAPS (Microfluidic system Analyzing Protein in Single complex) that can measure the amount of target proteins and protein complexes at the digitally single molecule resolution. By counting protein events individually, this system can provide rough protein interaction ratios which will be critical for understanding signal transduction dynamics. In addition, this system only requires less than an hour to characterize the target protein sample, which is much quicker than conventional approaches. As a proof of concept, we have determined the interaction ratios of oncogenic signaling protein complexes EGFR/Src and EGFR/STAT3 before and after EGF ligand stimulation. To the best of our knowledge, this is the first time that the interaction ratio between EGFR and its downstream proteins has been characterized. The information from MAPS will be critical for the study of protein signal transduction quantitation and dynamics.
蛋白质相互作用动力学的理解对于信号转导研究很重要,但目前可用的技术在解决这个问题时证明很困难。因此,我们使用微流控方法开发了一种数字蛋白质分析平台和方法,称为 MAPS(单个复合物中分析蛋白质的微流控系统),它可以以数字单分子分辨率测量靶蛋白和蛋白质复合物的数量。通过单独计数蛋白质事件,该系统可以提供粗略的蛋白质相互作用比,这对于理解信号转导动力学至关重要。此外,该系统仅需不到一个小时即可对目标蛋白样品进行特征描述,这比传统方法快得多。作为概念验证,我们已经确定了 EGF 配体刺激前后致癌信号蛋白复合物 EGFR/Src 和 EGFR/STAT3 的相互作用比。据我们所知,这是首次对 EGFR 与其下游蛋白之间的相互作用比进行了表征。MAPS 的信息对于蛋白质信号转导定量和动力学的研究至关重要。