Institute for Micromanufacturing, Louisiana Tech University, Ruston, LA, USA.
Biomed Microdevices. 2010 Apr;12(2):333-43. doi: 10.1007/s10544-009-9389-2.
In this article, low cost microfluidic devices have been used for simultaneous amplification and analysis of DNA. Temperature gradient flow PCR was performed, during which the unique fluorescence signature of the amplifying product was determined. The devices were fabricated using xurography, a fast and highly flexible prototype manufacturing method. Each complete iterative design cycle, from concept to prototype, was completed in less than 1 h. The resulting devices were of a 96% glass composition, thereby possessing a high thermal stability during continuous-flow PCR. Volumetric flow rates up to 4 microl/min induced no measurable change in the temperature distribution within the microchannel. By incorporating a preliminary channel passivation protocol, even the first microliters through the system exhibited a high amplification efficiency, thereby demonstrating the biocompatibility of this fabrication technique for DNA amplification microfluidics. The serpentine microchannel induced 23 temperature gradient cycles in 15 min at a 2 microl/min flow rate. Fluorescent images of the device were acquired while and/or after the PCR mixture filled the microchannel. Because of the relatively high initial concentration of the phage DNA template (PhiX174), images taken after 10 min (less than 15 PCR cycles) could be used to positively identify the PCR product. A single fluorescent image of a full device provided the amplification curve for the entire reaction as well as multiple high resolution melting curves of the amplifying sample. In addition, the signal-to-noise ratio associated with the spatial fluorescence was characterized as a function of spatial redundancy and acquisition time.
本文使用低成本微流控装置实现了 DNA 的同步扩增和分析。进行了温度梯度流 PCR,在此过程中确定了扩增产物的独特荧光特征。该设备采用 xurography 制造,这是一种快速且高度灵活的原型制造方法。从概念到原型,每个完整的迭代设计周期都在不到 1 小时内完成。最终的器件玻璃成分达到 96%,因此在连续流 PCR 过程中具有很高的热稳定性。流速高达 4 μl/min 不会引起微通道内温度分布的可测量变化。通过引入初步的通道钝化方案,即使是系统的前几个微升也表现出了很高的扩增效率,从而证明了这种 DNA 扩增微流控制造技术的生物相容性。在 2 μl/min 的流速下,蛇形微通道在 15 分钟内产生了 23 个温度梯度循环。在 PCR 混合物填充微通道时和/或之后获取设备的荧光图像。由于噬菌体 DNA 模板(PhiX174)的初始浓度相对较高,因此在 10 分钟(少于 15 个 PCR 循环)后拍摄的图像可用于阳性鉴定 PCR 产物。整个设备的单个荧光图像提供了整个反应的扩增曲线以及扩增样本的多个高分辨率熔解曲线。此外,还根据空间冗余度和采集时间对与空间荧光相关的信噪比进行了表征。