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毛细管电泳中的场放大分离:一种毛细管电泳模式。

Field amplified separation in capillary electrophoresis: a capillary electrophoresis mode.

作者信息

Erny Guillaume L, Cifuentes Alejandro

机构信息

Institute of Industrial Fermentations (CSIC), Juan de la Cierva 3, 28006 Madrid, Spain.

出版信息

Anal Chem. 2006 Nov 1;78(21):7557-62. doi: 10.1021/ac061328z.

Abstract

In field-amplified injection in capillary electrophoresis (CE), the capillary is filled with two buffering zones of different ionic strength; this induces an amplified electrical field in the low ionic strength zone and a lower field in the high ionic strength zone, making sample stacking feasible. The electroosmotic flow (eof) usually observed in CE, however, displaces the low field zone and induces an extra band broadening preventing any CE separation in the field-amplified zone. These limitations have originated the restricted use of field amplification in CE only for stacking purposes. For the first time, in this work it is theoretically shown and experimentally corroborated that CE separation speed and efficiency can simultaneously be increased if the whole separation is performed in the field-amplified zone, using what we have called field amplified separation in capillary electrophoresis (FAsCE). The possibilities of this new CE mode are investigated using a new and simple coating able to provide near-zero eof at the selected separation pH. Using FAsCE, improvements of 20% for separation speed and 40% for efficiency are achieved. Moreover, a modified FAsCE approach is investigated filling the capillary with the high ionic strength buffer up to the interior of the detection window. Under these conditions, an additional 3-fold increase in sensitivity is also observed. The most interesting results were obtained combining the short-end injection mode and this modified FAsCE approach. Under these conditions, a part of a 3-fold improvement in efficiency and sensitivity, the total analysis time was drastically reduced to 40 s, giving rise to a time reduction of more than 7-fold compared to normal CE. This speed enhancement brings about one of the fastest CE separations achieved using capillaries, demonstrating the great possibilities of FAsCE as a new, sensitive, efficient, and fast CE separation mode.

摘要

在毛细管电泳(CE)的场放大进样中,毛细管填充有两个不同离子强度的缓冲区域;这会在低离子强度区域诱导出放大的电场,而在高离子强度区域产生较低的电场,从而使样品堆积成为可能。然而,CE中通常观察到的电渗流(EOF)会使低场区域发生位移,并导致额外的谱带展宽,从而阻止了在场放大区域进行任何CE分离。这些限制导致场放大在CE中仅被限制用于堆积目的。在这项工作中,首次从理论上证明并通过实验证实,如果在整个分离过程中都在场放大区域进行操作,即使用我们所称的毛细管电泳场放大分离(FAsCE),则可以同时提高CE的分离速度和效率。使用一种新型且简单的涂层,该涂层能够在选定的分离pH值下提供接近零的EOF,从而研究了这种新的CE模式的可能性。使用FAsCE,分离速度提高了20%,效率提高了40%。此外,还研究了一种改进的FAsCE方法,即将毛细管填充高离子强度缓冲液直至检测窗口内部。在这些条件下,还观察到灵敏度额外提高了3倍。将短端进样模式与这种改进的FAsCE方法相结合,获得了最有趣的结果。在这些条件下,除了效率和灵敏度提高了3倍外,总分析时间大幅缩短至40秒,与正常CE相比,时间减少了7倍多。这种速度的提高带来了使用毛细管实现的最快的CE分离之一,证明了FAsCE作为一种新的、灵敏的、高效的和快速的CE分离模式具有巨大的潜力。

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