Liu Wen-Tso, Zhu Liang
Department of Civil Engineering, National University of Singapore, 117576, Singapore.
Trends Biotechnol. 2005 Apr;23(4):174-9. doi: 10.1016/j.tibtech.2005.02.004.
Rapid advances in microfabrication, DNA and protein microarray and microfluidic technologies have enabled the development of fully-integrated, miniaturized systems. These so called 'laboratory-on-a-chip' (LOC) devices perform sample preparation (i.e. concentration, separation and purification) together with biochemical reactions and detection steps in a simple and automated manner. We believe LOC technology for environmental microbiology studies will have immediate impacts on microbial monitoring by achieving detection and identification within minutes at the single-cell level, and on microbial ecology by deepening the understanding of microbial community structure and diversity and correlating these with niche-specific functions within a micro space. In the long run, significant impacts are anticipated on environmental metagenomics and proteomics.
微加工、DNA和蛋白质微阵列以及微流控技术的快速发展,推动了完全集成的小型化系统的开发。这些所谓的“芯片实验室”(LOC)设备能够以简单且自动化的方式执行样品制备(即浓缩、分离和纯化)以及生化反应和检测步骤。我们认为,用于环境微生物学研究的LOC技术将通过在几分钟内实现单细胞水平的检测和鉴定,对微生物监测产生直接影响,并通过加深对微生物群落结构和多样性的理解以及将这些与微空间内特定生态位功能相关联,对微生物生态学产生影响。从长远来看,预计对环境宏基因组学和蛋白质组学将产生重大影响。