Diaz-Quijada Gerardo A, Peytavi Régis, Nantel André, Roy Emmanuel, Bergeron Michel G, Dumoulin Michel M, Veres Teodor
Industrial Materials Institute, National Research Council of Canada, 75 de Mortagne, Boucherville, QC, Canada.
Lab Chip. 2007 Jul;7(7):856-62. doi: 10.1039/b700322f. Epub 2007 May 2.
Microarrays have become one of the most convenient tools for high throughput screening, supporting major advances in genomics and proteomics. Other important applications can be found in medical diagnostics, detection of biothreats, drug discovery, etc. Integration of microarrays with microfluidic devices can be highly advantageous in terms of portability, shorter analysis time and lower consumption of expensive biological analytes. Since fabrication of microfluidic devices using traditional materials such as glass is rather expensive, there is great interest in employing polymeric materials as a low cost alternative that is suitable for mass production. A number of commercially available plastic materials were reviewed for this purpose and poly(methylmethacrylate) Zeonor 1060R and Zeonex E48R were identified as promising candidates, for which methods for surface modification and covalent immobilization of DNA oligonucleotides were developed. In addition, we present proof-of-concept plastic-based microarrays with and without integration with microfluidics.
微阵列已成为高通量筛选最便捷的工具之一,推动了基因组学和蛋白质组学的重大进展。在医学诊断、生物威胁检测、药物发现等领域也有其他重要应用。微阵列与微流控设备的集成在便携性、缩短分析时间以及降低昂贵生物分析物的消耗方面具有很大优势。由于使用玻璃等传统材料制造微流控设备成本相当高,因此人们对采用聚合物材料作为适合大规模生产的低成本替代品非常感兴趣。为此对多种市售塑料材料进行了评估,聚甲基丙烯酸甲酯Zeonor 1060R和Zeonex E48R被确定为有前景的候选材料,并开发了对其进行表面改性和DNA寡核苷酸共价固定的方法。此外,我们展示了基于塑料的微阵列的概念验证,包括与微流控集成和未集成微流控的情况。