Vreeland Wyatt N, Williams Stephen J, Barron Annelise E, Sassi Alexander P
ACLARA BioSciences, Inc., Mountain View, California 94043, USA.
Anal Chem. 2003 Jul 1;75(13):3059-65. doi: 10.1021/ac0259921.
Electrophoresis in microfluidic devices is becoming a useful analytical platform for a variety of biological assays. In this report, we present a method that allows for an increased sensitivity of detection of fluorescent molecules in microfluidic electrophoresis devices. This capability is provided by the implementation of a particular buffer system that is designed to initially function in an isotachophoretic (ITP) mode and, then after a controlled amount of electric current has been applied to the system, to transition to a zone electrophoretic mode. In the initial ITP mode, analytes dissolved in a large volume of injected sample are concentrated into a single narrow zone. After application of a sufficient and adjustable amount of electric current, the system switches into a zone electrophoretic mode, where the concentrated analytes are separated according to their electrophoretic mobilities. Application of this tandem ITP-zone electrophoretic strategy to the concentration, separation, and detection of fluorescent reporter molecules in a standard microfluidic device results in an approximately 50-fold increase in detection sensitivity relative to equivalent separations that are obtained with zone electrophoresis alone. Even with very long initial sample plugs (up to 3000 microm), this strategy produces electrophoretic separations with high resolutions and peak efficiencies. This strategy can be implemented to increase detection sensitivity in any standard microfluidic electrophoresis platform and does not require any specialized hardware or microchannel configurations.
微流控装置中的电泳正成为用于各种生物分析的有用分析平台。在本报告中,我们提出了一种方法,该方法能够提高微流控电泳装置中荧光分子的检测灵敏度。这种能力是通过实施一种特定的缓冲系统来实现的,该缓冲系统设计为最初以等速电泳(ITP)模式运行,然后在向系统施加一定量的电流后,转变为区带电泳模式。在初始的ITP模式下,溶解在大量注入样品中的分析物被浓缩到一个狭窄的区域。在施加足够且可调节的电流后,系统切换到区带电泳模式,在该模式下,浓缩的分析物根据其电泳迁移率进行分离。将这种串联ITP-区带电泳策略应用于标准微流控装置中荧光报告分子的浓缩、分离和检测,相对于仅使用区带电泳获得的等效分离,检测灵敏度提高了约50倍。即使初始样品塞非常长(长达3000微米),该策略也能产生具有高分辨率和峰效率的电泳分离。该策略可用于提高任何标准微流控电泳平台的检测灵敏度,并且不需要任何专门的硬件或微通道配置。