Dai Guoxin, Li Lan, Meng Xianshuang, Jiang Ting, Xu Wei
School of Medical Technology, Beijing Institute of Technology, Beijing 100081, China.
Analysis & Testing Center, Beijing Institute of Technology, Beijing 100081, China.
Anal Chem. 2024 Aug 13;96(32):13025-13032. doi: 10.1021/acs.analchem.4c01078. Epub 2024 Jul 31.
Liquid-phase ion trapping (LPIT) was proposed recently for ion manipulations in liquid channels. When coupled with mass spectrometry, LPIT exhibits considerable potential in applications such as target enrichment and bottom-up proteomics. However, further evolution of LPIT techniques requires flexible field designs including electric and fluid fields. In this study, LPIT was constructed and implemented on microfluidic chips. Utilizing conductive polymers, nonlinear potential distribution was achieved in the liquid channel, enabling the focusing of ions at distinct locations based on their effective charges and hydrodynamic radii. The integration of an electrospray ionization source facilitated coupling of the LPIT chip with a mass spectrometer. The working mechanism and parameter optimizations were explored through a combination of theoretical analysis and numerical simulations. Experiments showcased the LIPT chip's proficiency in enrichment and separation capabilities. The detection sensitivity of the following mass spectrometer could be improved by ∼10-fold. A good linearity ( > 0.99) was obtained for reserpine in the range of 1-100 ng/mL. The separation capability was demonstrated using a mixture of 11 amino acids.
液相离子捕获(LPIT)是最近提出的用于在液体通道中进行离子操纵的方法。当与质谱联用 时,LPIT在诸如目标富集和自下而上的蛋白质组学等应用中展现出巨大潜力。然而,LPIT技术的进一步发展需要灵活的场设计,包括电场和流场。在本研究中,在微流控芯片上构建并实现了LPIT。利用导电聚合物,在液体通道中实现了非线性电势分布,从而能够根据离子的有效电荷和流体动力学半径将离子聚焦在不同位置。电喷雾电离源的集成促进了LPIT芯片与质谱仪的联用。通过理论分析和数值模拟相结合的方式探索了其工作机制和参数优化。实验展示了LIPT芯片在富集和分离能力方面的优势。后续质谱仪的检测灵敏度可提高约10倍。在1-100 ng/mL范围内,利血平获得了良好的线性(>0.99)。使用11种氨基酸的混合物展示了其分离能力。