MIcroSystems Engineering Centre (MISEC), School of Engineering & Physical Sciences, Heriot-Watt University, Earl Mountbatten Building, Edinburgh, United Kingdom.
Lab Chip. 2010 Jun 21;10(12):1587-95. doi: 10.1039/b926834k. Epub 2010 Mar 31.
A microfluidic system was developed for blood plasma separation at high flow rate. This system uses only hydrodynamic forces to separate plasma from whole blood. The microfluidic network features a series of constrictions and bifurcations to enhance the product yield and purity. A maximum purity efficiency of 100% is obtained on blood with entrance hematocrit level up to 30% with a flow rate of 2 mL h(-1). Flow cytometry was performed on the extracted plasma to evaluate the separation efficiency and to assess cell damage. A core target of this study was the detection of cell-free DNA from the on-chip extracted plasma. To this effect, PCR was successfully carried out off-chip on the cell-free DNA present in the plasma extracted on-chip. A house-keeping gene sequence (GAPDH) was amplified without the need for a purification after the separation, thereby showing the high quality of the plasma sample. The resulting data suggests that the system can be used as a preliminary module of a total analysis system for cell-free DNA detection in human plasma.
开发了一种用于高速率血液血浆分离的微流控系统。该系统仅使用流体动力来分离全血中的血浆。微流控网络具有一系列收缩和分叉,以提高产物的产率和纯度。在入口红细胞压积水平高达 30%、流速为 2 毫升/小时的情况下,获得了 100%的最大纯度效率。对提取的血浆进行流式细胞术分析,以评估分离效率和评估细胞损伤。本研究的一个核心目标是检测芯片提取的血浆中的无细胞 DNA。为此,成功地在芯片提取的血浆中的无细胞 DNA 上进行了离片 PCR。在分离后无需纯化即可扩增管家基因序列(GAPDH),从而显示出血浆样品的高质量。所得数据表明,该系统可用作人血浆中无细胞 DNA 检测的总分析系统的初步模块。