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Utilizing Microchip Capillary Electrophoresis Electrospray Ionization for Hydrogen Exchange Mass Spectrometry

机译:利用微芯片毛细管电泳电喷雾电离进行氢交换质谱

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Hydrogen exchange (HX) mass spectrometry (MS) of complex mixtures requires a fast, reproducible, and high peak capacity separation prior to MS detection. The current paradigm relies on liquid chromatography (LC) with fast gradients performed at low temperatures to minimize back exchange. Unfortunately, under these conditions, the efficiency of LC is limited due to resistance to mass transfer, reducing the capability to analyze complex samples. Capillary electrophoresis (CE), on the other hand, is not limited by resistance to mass transfer, enabling very rapid separations that are not adversely affected by low temperature. Previously, we have demonstrated an integrated microfluidic device coupling CE with electrospray ionization (ESI) capable of very rapid and high efficiency separations. In this work, we demonstrate the utility of this microchip CE-ESI device for HX MS. High speed CE-ESI of a bovine hemoglobin pepsin digestion was performed in 1 mm with a peak capacity of 62 versus a similar LC separation performed in 7 min with peak capacity of 31. A room temperature CE method performed in 1.25 min provided similar deuterium retention as an 8.5 mm LC method conducted at 0 C. Separation of a complex mixture with CE was done with considerably better speed and nearly triple the peak capacity than the equivalent separation by LC. Overall, the results indicate the potential utility of microchip CE-ESI for HX MS.
机译:复杂混合物的氢交换(HX)质谱(MS)需要在MS检测之前进行快速,可重现和高峰容量的分离。当前的范例依赖于在低温下进行快速梯度洗脱的液相色谱(LC),以最大程度地减少反向交换。不幸的是,在这些条件下,由于抗传质性限制了液相色谱的效率,降低了分析复杂样品的能力。另一方面,毛细管电泳(CE)不受传质的限制,可实现非常快速的分离,而不受低温的不利影响。以前,我们已经展示了一种集成的微流控设备,该设备将CE与电喷雾电离(ESI)耦合,能够非常快速高效地进行分离。在这项工作中,我们演示了此微芯片CE-ESI设备对HX MS的实用性。牛血红蛋白胃蛋白酶消化的高速CE-ESI在1 mm内进行,峰容量为62,而在7 min内进行类似的LC分离,峰容量为31。在1.25 min内进行的室温CE方法提供了相似的氘保留作为在0 C下进行的8.5 mm LC方法的分离。与LC进行的等效分离相比,使用CE分离复杂混合物的速度要快得多,峰容量几乎提高了三倍。总体而言,结果表明微芯片CE-ESI在HX MS中具有潜在的实用性。

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