Roca Liana S, Gargano Andrea F G, Schoenmakers Peter J
van 't Hoff Institute for Molecular Science, University of Amsterdam, Amsterdam, the Netherlands; Centre for Analytical Sciences Amsterdam, Amsterdam, the Netherlands.
van 't Hoff Institute for Molecular Science, University of Amsterdam, Amsterdam, the Netherlands; Centre for Analytical Sciences Amsterdam, Amsterdam, the Netherlands.
Anal Chim Acta. 2021 Apr 29;1156:338349. doi: 10.1016/j.aca.2021.338349. Epub 2021 Feb 24.
Bottom-up proteomics provides often small amounts of highly complex samples that cannot be analysed by direct mass spectrometry (MS). To gain a better insight in the sample composition, liquid chromatography (LC) and (comprehensive) two-dimensional liquid chromatography (2D-LC or LC × LC) can be coupled to the MS. Low-flow separations are attractive for HRMS analysis, but they tend to be lengthy. In this work, a low-flow, online, actively modulated LC × LC system, based on hydrophilic-interaction liquid chromatography (HILIC) in the first dimension and reversed-phase liquid chromatography (RPLC) in the second dimension, was developed to separate complex mixtures of peptides. Miniaturization permitted the analysis of small sample amounts (1-5 μg) and direct coupling with micro-ESI MS (1 μL min). All components were focused and automatically transferred from HILIC to RPLC using stationary-phase-assisted active modulation (C18 traps) to deal with solvent-incompatibility or dilution issues. Optimization of the setup was performed for the HILIC columns and the RPLC columns to provide a more efficient separation and higher identification rates than obtained using one-dimensional (1D) LC. A 60% increase in peak capacity was obtained with the 2D setup compared to a 1D-RPLC separation and a 17-34% increase in the number of proteins identified was achieved for the samples analysed (2D-yeast-8280 peptides and 2D-kidney tissue-8843 peptides), without increasing the analysis time (2 h).
自下而上的蛋白质组学常常提供少量高度复杂的样品,这些样品无法通过直接质谱(MS)进行分析。为了更好地了解样品组成,可以将液相色谱(LC)和(全二维)二维液相色谱(2D-LC或LC×LC)与质谱联用。低流量分离对于高分辨率质谱(HRMS)分析具有吸引力,但往往耗时较长。在这项工作中,开发了一种低流量、在线、主动调制的LC×LC系统,该系统在第一维基于亲水相互作用液相色谱(HILIC),在第二维基于反相液相色谱(RPLC),用于分离复杂的肽混合物。小型化使得能够分析少量样品(1-5μg)并直接与微电喷雾质谱(1μL/min)联用。使用固定相辅助主动调制(C18捕集柱)将所有组分聚焦并自动从HILIC转移至RPLC,以解决溶剂不相容或稀释问题。对HILIC柱和RPLC柱进行了设置优化,以提供比一维(1D)LC更高效的分离和更高的鉴定率。与1D-RPLC分离相比,二维设置的峰容量提高了60%,对于所分析的样品(二维酵母-8280个肽和二维肾脏组织-8843个肽),鉴定出的蛋白质数量增加了17-34%,且不增加分析时间(2小时)。