Frey Olivier, Bonneick Sonja, Hierlemann Andreas, Lichtenberg Jan
Sensors, Actuators and Microsystems Laboratory, Institute of Microtechnology, University of Neuchâtel, Rue Jaquet-Droz 1, 2000, Neuchâtel, Switzerland.
Biomed Microdevices. 2007 Oct;9(5):711-8. doi: 10.1007/s10544-007-9080-4.
We report on a novel, polymer-based, multi-channel device for polymerase chain reaction that combines, for the first time, rapid sample processing in less than 5 min with high throughput at low costs. This is achieved by sample shuttling, during which submicroliter sample plugs (approximately 100 nl) are oscillated rapidly over three constant-temperature zones by pneumatic actuation with integrated system. The accuracy and the speed of the liquid handling have been significantly increased, while the design of the device can be kept very simple and allows for mass production using conventional low-cost polymer fabrication processes. Massive parallelization can lead to a throughput up to 100 samples in 10 min including the preparation time. The amplification can be optically monitored by means of online fluorescence detection. Successful real-time PCR and the determination of the threshold cycle, Ct, using the developed device were demonstrated with plasmid DNA in a fluorescent real-time format.
我们报道了一种新型的基于聚合物的多通道聚合酶链反应(PCR)装置,该装置首次将不到5分钟的快速样品处理与低成本的高通量相结合。这是通过样品穿梭实现的,在此过程中,亚微升样品塞(约100 nl)通过集成系统的气动驱动在三个恒温区快速振荡。液体处理的准确性和速度显著提高,同时该装置的设计可以保持非常简单,并允许使用传统的低成本聚合物制造工艺进行大规模生产。大规模并行化可在10分钟内实现高达100个样品的通量,包括制备时间。扩增可通过在线荧光检测进行光学监测。使用开发的装置,以荧光实时格式对质粒DNA进行了成功的实时PCR和阈值循环(Ct)的测定。