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纳流率的细微变化会改变扫描电喷雾电离质谱的电离响应。

A Subtle Change in Nanoflow Rate Alters the Ionization Response As Revealed by Scanning Voltage ESI-MS.

机构信息

Faculty of Engineering, University of Yamanashi, 4-3-11, Takeda, Kofu, Yamanashi 400-8511, Japan.

出版信息

Anal Chem. 2022 Nov 22;94(46):16015-16022. doi: 10.1021/acs.analchem.2c02997. Epub 2022 Nov 9.

Abstract

The small charged droplet generated from the nanoelectrospray ionization (nanoESI) source at nL/min flow rate gives its unique feature of high-performance ionization. A continuous scan of the flow rate in this regime can trace the effect of droplet size in greater detail for a better understanding of the ionization process. To date, such practical implementation is hindered by the lack of a suitable liquid pump and the reproducibility of microcapillaries-based systems. Here, offline nanoESI mass spectrometry with a continuously varying flow rate in a dynamic range of several hundred pL/min to ∼100 nL/min was performed by the precision scanning of ESI high voltage (HV). The principle is based on the new paradigm of generating nanoelectrospray from a large Taylor cone with a known spray current-flow rate relationship. The instantaneous flow rate controlled by the HV was determined by simultaneous measurement of the spray current. The system is successfully applied to reveal the role of nanoflow rate on the average charge state of proteins, analysis of analyte mixture, and desalting effect. With the use of a buffer solution with high electric conductivity, a highly controllable oxidative modification was also observed by tuning the flow rate below a threshold of ∼5 nL/min, a finding that has potential application to on-demand oxygen labeling.

摘要

从纳升/分钟流速的纳喷雾电离(nanoESI)源产生的小带电荷液滴具有高性能电离的独特特性。在该范围内连续扫描流速可以更详细地追踪液滴尺寸的影响,从而更好地理解电离过程。迄今为止,这种实际的实施受到缺乏合适的液体泵和基于微毛细管系统的可重复性的限制。在这里,通过 ESI 高压(HV)的精密扫描,在几百皮升至约 10 纳升/分钟的动态范围内进行了具有连续变化流速的离线纳喷雾质谱法。其原理基于从具有已知喷雾电流-流速关系的大泰勒锥中产生纳喷雾的新范例。通过同时测量喷雾电流来确定由 HV 控制的瞬时流速。该系统成功地应用于揭示纳流速对蛋白质平均电荷状态的作用、分析分析物混合物和脱盐效果。通过使用具有高导电性的缓冲溶液,还可以通过将流速调低于约 5 纳升/分钟的阈值来观察到高度可控的氧化修饰,这一发现有可能应用于按需氧标记。

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