Balss Karin M, Vreeland Wyatt N, Phinney Karen W, Ross David
National Institute of Standards and Technology, Gaithersburg, Maryland 20899, USA.
Anal Chem. 2004 Dec 15;76(24):7243-9. doi: 10.1021/ac049046r.
A new technique is demonstrated for the simultaneous concentration and high-resolution separation of chiral compounds. With temperature gradient focusing, a combination of a temperature gradient, an applied electric field, and a buffer with a temperature-dependent ionic strength is used to cause analytes to move to equilibrium, zero-velocity points along a microchannel or capillary. Different analytes are thus separated spatially and concentrated in a manner that resembles isoelectric focusing but that is applicable to a greater variety of analytes including small chiral drug molecules. Chiral separations are accomplished by the addition of a chiral selector, which causes the different enantiomers of an analyte to focus at different positions along a microchannel or capillary. This new technique is demonstrated to provide high performance in a number of areas desirable for chiral separations including rapid separation optimization and method development, facile reversal of peak order (desirable for analysis of trace enantiomeric impurities), and high resolving power (comparable to capillary electrophoresis) in combination with greater than 1000-fold concentration enhancement enabling improved detection limits. In addition, chiral temperature gradient focusing allows for real-time monitoring of the interaction of chiral analyte molecules with chiral selectors that could potentially be applied to the study of other molecular interactions. Finally, unlike CE, which requires long channels or capillaries for high-resolution separations, separations of equivalent resolution can be performed with TGF in very short microchannels (mm); thus, TGF is inherently much more suited to miniaturization and integration into lab-on-a-chip-devices.
展示了一种用于手性化合物同时浓缩和高分辨率分离的新技术。通过温度梯度聚焦,利用温度梯度、外加电场和具有温度依赖性离子强度的缓冲液的组合,使分析物沿微通道或毛细管移动至平衡的零速度点。不同的分析物因此在空间上分离并浓缩,其方式类似于等电聚焦,但适用于更多种类的分析物,包括小型手性药物分子。通过添加手性选择剂实现手性分离,这会使分析物的不同对映体在微通道或毛细管的不同位置聚焦。该新技术在多个手性分离所需领域展现出高性能,包括快速分离优化和方法开发、峰序的轻松反转(对于痕量对映体杂质分析很理想)以及高分辨率(与毛细管电泳相当),同时浓度增强超过1000倍,从而降低检测限。此外,手性温度梯度聚焦允许实时监测手性分析物分子与手性选择剂的相互作用,这可能潜在地应用于其他分子相互作用的研究。最后,与需要长通道或毛细管进行高分辨率分离的毛细管电泳不同,等效分辨率的分离可以在非常短的微通道(毫米)中用温度梯度聚焦进行;因此,温度梯度聚焦本质上更适合小型化并集成到芯片实验室设备中。