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Capillary and Microfluidic Gradient Elution Isotachophoresis Coupled to Capillary Zone Electrophoresis for Femtomolar Amino Acid Detection Limits

机译:毛细管和微流控梯度洗脱等速电泳与毛细管区带电泳联用于飞摩尔氨基酸检测限

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In this work, gradient elution isotachophoresis was combined with capillary zone electrophoresis (GEITP-CZE) in a single microcolumn. The multistage approach addresses the issues of analyte resolution difficulties in GEITP, as well as poor concentration sensitivity in CZE. GEITP employs rapid electrophoretic focusing at a discontinuous ionic interface within a sample well generated through combined electroosmotic and hydrodynamic flows. The interface and enriched analytes are then pulled into a capillary or microchannel as the counter-flow is reduced for on-column detection. To transform GEITP-focused samples to CZE-based separation, the sample solution is replaced with CZE buffer solution while maintaining hydrodynamic flow to ensure migration toward the detector. The single solution switch and lack of polarity inversion allows for reproducible separations (typically <6percent relative standard deviation in peak heights and <0.5percent in migration times). Low-pressure hydrodynamic flow during CZE allowed for flexible resolution adjustment, with a linear increase versus the square root of migration time, without altering the separation column, field strength, or electrolyte system. As a first demonstration of the applicability of GEITP-CZE, a series of amino acids to be assayed for in future Mars exploration missions as indicators of biological life were studied. Separation of six amino acids, with limits of detection as low as 200 fM, were achieved using a capillary format with a total analysis time of 11 min. A glass-based microfluidic implementation is also demonstrated that can perform GEITP-CZE in 1 cm effective lengths.
机译:在这项工作中,将梯度洗脱等速电泳与毛细管区带电泳(GEITP-CZE)组合在一个微柱中。多阶段方法解决了GEITP中分析物解析困难以及CZE中浓度灵敏度差的问题。 GEITP在通过电渗流和流体动力流共同产生的样品井中的不连续离子界面处进行快速电泳聚焦。然后,随着减少逆流以进行柱上检测,将界面和富集的分析物拉入毛细管或微通道。为了将专注于GEITP的样品转变为基于CZE的分离,在保持流体力学流动以确保向检测器迁移的同时,将样品溶液替换为CZE缓冲溶液。单一的溶液开关和没有极性反转的色谱柱可实现可重复的分离(通常峰高的相对标准偏差<6%,迁移时间的<0.5%)。 CZE期间的低压流体动力流允许灵活地调整分辨率,并且相对于迁移时间的平方根呈线性增加,而无需改变分离柱,场强或电解质系统。为了证明GEITP-CZE的适用性,研究了一系列氨基酸,这些氨基酸将在未来的火星探索任务中进行测定,以作为生物生命的指标。使用毛细管形式实现了六个氨基酸的分离,检测限低至200 fM,总分析时间为11分钟。还证明了一种基于玻璃的微流体装置,可以以1 cm有效长度执行GEITP-CZE。

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