National Nano Device Laboratories, National Applied Research Laboratories, Tainan, Taiwan, ROC.
Sci Rep. 2013;3:2365. doi: 10.1038/srep02365.
This study reports a novel microfluidic platform for rapid and long-ranged concentration of rare-pathogen from human blood for subsequent on-chip surface-enhanced Raman spectroscopy (SERS) identification/discrimination of bacteria based on their detected fingerprints. Using a hybrid electrokinetic mechanism, bacteria can be concentrated at the stagnation area on the SERS-active roughened electrode, while blood cells were excluded away from this region at the center of concentric circular electrodes. This electrokinetic approach performs isolation and concentration of bacteria in about three minutes; the density factor is increased approximately a thousand fold in a local area of ~5000 μm(2) from a low bacteria concentration of 5 × 10(3) CFU/ml. Besides, three genera of bacteria, S. aureus, E. coli, and P. aeruginosa that are found in most of the isolated infections in bacteremia were successfully identified in less than one minute on-chip without the use of any antibody/chemical immobilization and reaction processes.
本研究报告了一种新颖的微流控平台,用于从人体血液中快速、长距离浓缩稀有病原体,随后在芯片上基于其检测到的指纹进行表面增强拉曼光谱(SERS)识别/区分细菌。该平台使用混合电泳机制,可将细菌浓缩在 SERS 活性粗糙电极的停滞区,而血细胞则被排斥在同心圆形电极中心的该区域之外。这种电泳方法可在大约三分钟内实现细菌的分离和浓缩;在约 5000μm(2)的局部区域内,细菌浓度从 5×10(3)CFU/ml 增加约一千倍。此外,无需使用任何抗体/化学固定化和反应过程,本平台还能在不到一分钟的时间内在芯片上成功识别出金黄色葡萄球菌、大肠杆菌和铜绿假单胞菌这三种在菌血症中最常见的分离感染的细菌。