Zhong Runtao, Pan Xiaoyan, Jiang Lei, Dai Zhongpeng, Qin Jianhua, Lin Bingcheng
Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, PR China.
Electrophoresis. 2009 Apr;30(8):1297-305. doi: 10.1002/elps.200800491.
A novel fabrication process was presented to construct a monolithic integrated PCR-CE microfluidic DNA analysis system as a step toward building a total genetic analysis microsystem. Microfabricated Titanium/Platinum (Ti/Pt) heaters and resistance temperature detectors (RTDs) were integrated on the backside of a bonded glass chip to provide good thermal transfer and precise temperature detection for the drilled PCR-wells. This heater/RTD integration procedure was simple and reliable, and the resulting metal layer can be easily renewed when the Ti/Pt layer was damaged in later use or novel heater/RTD design was desired. A straightforward "RTD-calibration" method was employed to optimize the chip-based thermal cycling conditions. This method was convenient and rapid, comparing with a conventional RTD-calibration/temperature adjustment method. The highest ramping rates of 14 degrees C/s for heating and 5 degrees C/s for cooling in a 3-microL reaction volume allow 30 complete PCR cycles in about 33 min. After effectively passivating the PCR-well surface, successful lambda-phage DNA amplifications were achieved using a two- or three-temperature cycling protocol. The functionality and performance of the integrated microsystem were demonstrated by successful amplification and subsequent on-line separation/sizing of lambda-phage DNA. A rapid assay for Hepatitis B virus, one of the major human pathogens, was performed in less than 45 min, demonstrating that the developed PCR-CE microsystem was capable of performing automatic and high-speed genetic analysis.
本文介绍了一种新颖的制造工艺,用于构建整体集成的PCR-CE微流控DNA分析系统,这是迈向构建全基因分析微系统的重要一步。微加工的钛/铂(Ti/Pt)加热器和电阻温度探测器(RTD)集成在键合玻璃芯片的背面,为钻出的PCR孔提供良好的热传递和精确的温度检测。这种加热器/RTD集成工艺简单可靠,当Ti/Pt层在后续使用中受损或需要新颖的加热器/RTD设计时,所得金属层可以轻松更新。采用一种直接的“RTD校准”方法来优化基于芯片的热循环条件。与传统的RTD校准/温度调节方法相比,该方法方便快捷。在3微升反应体积中,加热的最高升温速率为14℃/秒,冷却的最高降温速率为5℃/秒,可在约33分钟内完成30个完整的PCR循环。在对PCR孔表面进行有效钝化后,使用双温或三温循环方案成功实现了λ噬菌体DNA的扩增。通过成功扩增并随后对λ噬菌体DNA进行在线分离/大小分析,证明了集成微系统的功能和性能。在不到45分钟的时间内对主要人类病原体之一的乙型肝炎病毒进行了快速检测,表明所开发的PCR-CE微系统能够进行自动、高速的基因分析。