Instituto de Química de São Carlos, Universidade de São Paulo, Grupo de Bioanalítica, Microfabricação e Separações, Brazil.
Analyst. 2012 Jun 7;137(11):2692-8. doi: 10.1039/c2an16220b. Epub 2012 Apr 30.
Microchip electrophoresis has become a powerful tool for DNA separation, offering all of the advantages typically associated with miniaturized techniques: high speed, high resolution, ease of automation, and great versatility for both routine and research applications. Various substrate materials have been used to produce microchips for DNA separations, including conventional (glass, silicon, and quartz) and alternative (polymers) platforms. In this study, we perform DNA separation in a simple and low-cost polyester-toner (PeT)-based electrophoresis microchip. PeT devices were fabricated by a direct-printing process using a 600 dpi-resolution laser printer. DNA separations were performed on PeT chip with channels filled with polymer solutions (0.5% m/v hydroxyethylcellulose or hydroxypropylcellulose) at electric fields ranging from 100 to 300 V cm(-1). Separation of DNA fragments between 100 and 1000 bp, with good correlation of the size of DNA fragments and mobility, was achieved in this system. Although the mobility increased with increasing electric field, separations showed the same profile regardless of the electric field. The system provided good separation efficiency (215,000 plates per m for the 500 bp fragment) and the separation was completed in 4 min for 1000 bp fragment ladder. The cost of a given chip is approximately $0.15 and it takes less than 10 minutes to prepare a single device.
微芯片电泳已成为 DNA 分离的有力工具,具有与小型化技术相关的所有优势:速度快、分辨率高、易于自动化,并且非常适合常规和研究应用。各种基质材料已被用于生产用于 DNA 分离的微芯片,包括传统(玻璃、硅和石英)和替代(聚合物)平台。在这项研究中,我们在简单且低成本的聚酯粉(PeT)基电泳微芯片中进行 DNA 分离。PeT 器件通过使用 600dpi 分辨率的激光打印机的直接打印工艺制造。在电场强度为 100 至 300V/cm 的情况下,在充满聚合物溶液(0.5%m/v 羟乙基纤维素或羟丙基纤维素)的 PeT 芯片上进行 DNA 分离。在此系统中,可实现 100 至 1000bp 的 DNA 片段的分离,并且 DNA 片段的大小与迁移率具有良好的相关性。尽管迁移率随电场强度的增加而增加,但无论电场强度如何,分离均呈现相同的图谱。该系统提供了良好的分离效率(500bp 片段为 215,000 板/m),1000bp 片段梯的分离在 4 分钟内完成。每个芯片的成本约为 0.15 美元,并且制备单个器件不到 10 分钟。