Liu Robin Hui, Nguyen Tai, Schwarzkopf Kevin, Fuji H Sho, Petrova Alla, Siuda Tony, Peyvan Kia, Bizak Michael, Danley David, McShea Andy
CombiMatrix Corporation, 6500 Harbor Heights Parkway, Mukilteo, Washington 98275, USA.
Anal Chem. 2006 Mar 15;78(6):1980-6. doi: 10.1021/ac0518553.
A DNA microarray with 12,000 features was integrated with a microfluidic cartridge to automate the fluidic handling steps required to carry out a gene expression study of the human leukemia cell line (K562). The fully integrated microfluidic device consists of microfluidic pumps/mixers, fluid channels, reagent chambers, and a DNA microarray silicon chip. Microarray hybridization and subsequent fluidic handling and reactions (including a number of washing and labeling steps) were performed in this fully automated and miniature device before fluorescent image scanning of the microarray chip. Electrochemical micropumps were integrated into the cartridge to provide pumping of liquid solutions. The device was completely self-contained: no external pressure sources, fluid storage, mechanical pumps, mixers, or valves were necessary for fluid manipulation, thus eliminating possible sample contamination and simplifying device operation. Fluidic experiments were performed to study the on-chip washing efficiency and uniformity. A single-color transcriptional analysis of K562 cells with a series of calibration controls (spiked-in controls) to characterize this new platform with regard to sensitivity, specificity, and dynamic range was performed. The device detected sample RNAs with a concentration as low as 0.375 pM. Experiment also showed that the performance of the integrated microfluidic device is comparable with the conventional hybridization chambers with manual operations, indicating that the on-chip fluidic handling (washing and reaction) is highly efficient and can be automated with no loss of performance. The device provides a cost-effective solution to eliminate labor-intensive and time-consuming fluidic handling steps in genomic analysis.
一个具有12000个特征点的DNA微阵列与一个微流控芯片盒集成在一起,以自动化进行人类白血病细胞系(K562)基因表达研究所需的流体处理步骤。完全集成的微流控装置由微流控泵/混合器、流体通道、试剂腔和DNA微阵列硅芯片组成。在对微阵列芯片进行荧光图像扫描之前,在这个完全自动化的微型装置中进行微阵列杂交以及后续的流体处理和反应(包括多个洗涤和标记步骤)。电化学微型泵被集成到芯片盒中以提供液体溶液的泵送。该装置是完全独立的:流体操作无需外部压力源、流体储存器、机械泵、混合器或阀门,从而消除了可能的样品污染并简化了装置操作。进行了流体实验以研究芯片上的洗涤效率和均匀性。使用一系列校准对照(加标对照)对K562细胞进行单色转录分析,以在灵敏度、特异性和动态范围方面表征这个新平台。该装置能检测到低至0.375 pM浓度的样品RNA。实验还表明,集成微流控装置的性能与手动操作的传统杂交室相当,这表明芯片上的流体处理(洗涤和反应)效率很高,并且可以自动化而不损失性能。该装置为消除基因组分析中劳动强度大且耗时的流体处理步骤提供了一种经济高效的解决方案。