Chen Xing, Cui Da Fu, Liu Chang Chun
State Key Laboratory of Transducer Technology, Institute of Electronics, Chinese Academy of Sciences, Beijing, P. R. China.
Electrophoresis. 2008 May;29(9):1844-51. doi: 10.1002/elps.200700551.
Integrating cell lysis and DNA purification process into a micrototal analytical system (microTAS) is one critical step for the analysis of nucleic acids. On-chip cell lysis based on a chemical method is realized by sufficient blend of blood sample and the lyzing reagent. In this paper two mixing models, T-type mixing model and sandwich-type mixing model, are proposed and simulation of those models is conducted. Result of simulation shows that the sandwich-type mixing model with coiled channel performs best and this model is further used to construct the microfluidic biochip for on-line cell lysis and DNA extraction. The result of simulation is further verified by experiments. It asserts that more than 80% mixing of blood sample and lyzing reagent which guarantees that completed cell lysis can be achieved near the inlet location when the cell/buffer velocity ratio is less than 1:5. After cell lysis, DNA extraction by means of a solid-phase method is implemented by using porous silicon matrix which is integrated in the biochip. During continuous flow process in the microchip, rapid cell lysis and PCR-amplifiable genomic DNA purification can be achieved within 20 min. The potential of this microfluidic biochip is illustrated by pretreating a whole blood sample, which shows the possibility of integration of sample preparation, PCR, and separation on a single device to work as portable point-of-care medical diagnostic system.
将细胞裂解和DNA纯化过程集成到微全分析系统(microTAS)中是核酸分析的关键步骤之一。基于化学方法的芯片上细胞裂解通过血液样本与裂解试剂的充分混合来实现。本文提出了两种混合模型,即T型混合模型和三明治型混合模型,并对这些模型进行了模拟。模拟结果表明,带有螺旋通道的三明治型混合模型性能最佳,该模型进一步用于构建用于在线细胞裂解和DNA提取的微流控生物芯片。模拟结果通过实验进一步验证。结果表明,当细胞/缓冲液流速比小于1:5时,血液样本与裂解试剂的混合率超过80%,这保证了在入口位置附近能够实现完全的细胞裂解。细胞裂解后,通过使用集成在生物芯片中的多孔硅基质,采用固相方法进行DNA提取。在微芯片中的连续流动过程中,能够在20分钟内实现快速细胞裂解和可用于PCR扩增的基因组DNA纯化。通过对全血样本进行预处理展示了这种微流控生物芯片的潜力,这表明了在单个设备上集成样品制备、PCR和分离以作为便携式即时医疗诊断系统的可能性。