Kan Cheuk-Wai, Fredlake Christopher P, Doherty Erin A S, Barron Annelise E
Department of Chemical and Biological Engineering, Northwestern University, Evanston, IL 60208, USA.
Electrophoresis. 2004 Nov;25(21-22):3564-88. doi: 10.1002/elps.200406161.
Advances in microchannel electrophoretic separation systems for DNA analyses have had important impacts on biological and biomedical sciences, as exemplified by the successes of the Human Genome Project (HGP). As we enter a new era in genomic science, further technological innovations promise to provide other far-reaching benefits, many of which will require continual increases in sequencing and genotyping efficiency and throughput, as well as major decreases in the cost per analysis. Since the high-resolution size- and/or conformation-based electrophoretic separation of DNA is the most critical step in many genetic analyses, continual advances in the development of materials and methods for microchannel electrophoretic separations will be needed to meet the massive demand for high-quality, low-cost genomic data. In particular, the development (and commercialization) of miniaturized genotyping platforms is needed to support and enable the future breakthroughs of biomedical science. In this review, we briefly discuss the major sequencing and genotyping techniques in which high-throughput and high-resolution electrophoretic separations of DNA play a significant role. We review recent advances in the development of technology for capillary electrophoresis (CE), including capillary array electrophoresis (CAE) systems. Most of these CE/CAE innovations are equally applicable to implementation on microfabricated electrophoresis chips. Major effort is devoted to discussing various key elements needed for the development of integrated and practical microfluidic sequencing and genotyping platforms, including chip substrate selection, microchannel design and fabrication, microchannel surface modification, sample preparation, analyte detection, DNA sieving matrices, and device integration. Finally, we identify some of the remaining challenges, and some of the possible routes to further advances in high-throughput DNA sequencing and genotyping technologies.
用于DNA分析的微通道电泳分离系统的进展对生物学和生物医学科学产生了重要影响,人类基因组计划(HGP)的成功就是例证。随着我们进入基因组科学的新时代,进一步的技术创新有望带来其他深远的益处,其中许多将需要测序和基因分型效率及通量的持续提高,以及每次分析成本的大幅降低。由于基于高分辨率大小和/或构象的DNA电泳分离是许多基因分析中最关键的步骤,因此需要微通道电泳分离材料和方法的持续发展,以满足对高质量、低成本基因组数据的大量需求。特别是,需要开发(并实现商业化)小型化基因分型平台,以支持并推动生物医学科学未来的突破。在本综述中,我们简要讨论了主要的测序和基因分型技术,其中DNA的高通量和高分辨率电泳分离发挥着重要作用。我们回顾了毛细管电泳(CE)技术发展的最新进展,包括毛细管阵列电泳(CAE)系统。这些CE/CAE创新大多同样适用于在微制造电泳芯片上实现。主要致力于讨论开发集成实用的微流控测序和基因分型平台所需的各种关键要素,包括芯片基板选择、微通道设计与制造、微通道表面修饰、样品制备、分析物检测、DNA筛分基质以及设备集成。最后,我们确定了一些尚存的挑战,以及高通量DNA测序和基因分型技术进一步发展的一些可能途径。