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采用极性反转高压策略增强纳喷雾电离的信号强度。

Boosting the Signal Intensity of Nanoelectrospray Ionization by Using a Polarity-Reversing High-Voltage Strategy.

机构信息

National institute of Metrology , 100013 Beijing, China.

Henan Institute of Metrology , 450008 Zhengzhou, Henan Province, China.

出版信息

Anal Chem. 2017 Jul 5;89(13):7009-7016. doi: 10.1021/acs.analchem.7b00555. Epub 2017 Jun 12.

Abstract

Continuous efforts have been made to further improve the performance of nano-ESI. In this work, we made use of a polarity-reversing high-voltage strategy for the generation of nano-ESI (PR-nESI). Typically, a negative high voltage of -3.0 kV was first applied to the electrode and maintained for 6 s. Then the polarity was reversed, and a positive high voltage of +1.75 kV was applied for the generation of electrospray. Compared with conventional nano-ESI, PR-nESI significantly enhanced the signal intensity of protonated protein ions. The signal-to-noise ratio (S/N) of protonated protein ions was increased by 1-2 orders of magnitude. The increase of S/N was even more remarkable at lower concentrations. Furthermore, PR-nESI also had a desalting effect. Metal ion adducts of proteins were effectively removed. No metal ion adducts were identified from the spectra, even if the concentration of salt was increased to the millimolar level. The performance of PR-nESI was confirmed in the detection of different molecules including proteins, peptides, amino acids, and other small-molecule compounds. The intact folded structure of proteins was preserved during PR-nESI. No unfolding was observed in the spectra. PR-nESI was further applied to the analysis of noncovalent protein-ligand complexes and protein digest. At last, investigations into the mechanism of PR-nESI were carried out. The enhancement of signal intensity and desalting effect were related to the electromigration of the solutes in solution. With all the advantages above, PR-nESI would be a promising method in the future analytical and bioanalytical applications.

摘要

已经做出持续努力以进一步提高纳喷雾电喷雾的性能。在这项工作中,我们利用极性反转高压策略来产生纳喷雾电喷雾(PR-nESI)。通常,先施加-3.0 kV 的负高压到电极并保持 6 s,然后反转极性,施加+1.75 kV 的正高压来产生电喷雾。与常规纳喷雾电喷雾相比,PR-nESI 显著增强了质子化蛋白离子的信号强度。质子化蛋白离子的信噪比(S/N)提高了 1-2 个数量级。在较低浓度下,S/N 的增加更为显著。此外,PR-nESI 还有脱盐作用。蛋白质的金属离子加合物被有效去除。即使盐的浓度增加到毫摩尔水平,也没有从谱图中鉴定出金属离子加合物。PR-nESI 的性能在检测不同分子(包括蛋白质、肽、氨基酸和其他小分子化合物)中得到了证实。在 PR-nESI 过程中,蛋白质的完整折叠结构得以保留。在谱图中未观察到展开。PR-nESI 进一步应用于非共价蛋白质-配体复合物和蛋白质消化物的分析。最后,对 PR-nESI 的机制进行了研究。信号强度的增强和脱盐效果与溶液中溶质的电泳迁移有关。由于具有所有这些优点,PR-nESI 将成为未来分析和生物分析应用中很有前途的方法。

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