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纳米电喷雾离子源位置对肽和蛋白质离子非故意源内激活的影响。

Effects of Nano-Electrospray Ionization Emitter Position on Unintentional In-Source Activation of Peptide and Protein Ions.

机构信息

Department of Chemistry and Biochemistry, University of Oregon, Eugene, Oregon 97403-1253, United States.

Agilent Technologies, 5301 Stevens Creek Blvd, Santa Clara, California 95051, United States.

出版信息

J Am Soc Mass Spectrom. 2024 Mar 6;35(3):498-507. doi: 10.1021/jasms.3c00371. Epub 2024 Feb 19.

DOI:10.1021/jasms.3c00371
PMID:38374644
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11315166/
Abstract

Native ion mobility-mass spectrometry (IM-MS) typically introduces protein ions into the gas phase through nano-electrospray ionization (nESI). Many nESI setups have mobile stages for tuning the ion signal and extent of co-solute and salt adduction. However, tuning the position of the emitter capillary in nESI can have unintended downstream consequences for collision-induced unfolding or collision-induced dissociation (CIU/D) experiments. Here, we show that relatively small variations in the nESI emitter position can shift the midpoint (commonly called the "CID50" or "CIU50") potential of CID breakdown curves and CIU transitions by as much as 8 V on commercial instruments. A spatial "map" of the shift in CID50 for the loss of heme from holomyoglobin onto the emitter position on a Waters Synapt G2-S mass spectrometer shows that emitter positions closer to the instrument inlet can result in significantly greater in-source activation, whereas different effects are found on an Agilent 6545XT instrument for the ions studied. A similar effect is observed for CID of the singly protonated leucine enkephalin peptide and Shiga toxin 1 subunit B homopentamer on the Waters Synapt G2-S instrument. In-source activation effects on a Waters Synapt G2-S are also investigated by examining the RMSD between CIU fingerprints acquired at different emitter positions and the shifts in CIU50 for structural transitions of bovine serum albumin and NIST monoclonal antibody.

摘要

天然离子淌度-质谱(IM-MS)通常通过纳升电喷雾电离(nESI)将蛋白质离子引入气相。许多 nESI 装置都有移动阶段,用于调整离子信号以及共溶质和盐加成的程度。然而,在 nESI 中调整发射器毛细管的位置可能会对碰撞诱导解折叠或碰撞诱导解离(CIU/D)实验产生意想不到的下游后果。在这里,我们表明,在商业仪器上,nESI 发射器位置的相对较小变化可以将 CID 断裂曲线和 CIU 跃迁的中点(通常称为“CID50”或“CIU50”)电位移动多达 8 V。在 Waters Synapt G2-S 质谱仪上,从血红蛋白到发射器位置的血红素损失的 CID50 变化的空间“图谱”表明,靠近仪器入口的发射器位置可以导致显著更大的源内激活,而对于所研究的离子,在安捷伦 6545XT 仪器上则发现了不同的效果。在 Waters Synapt G2-S 仪器上,对单质子化亮氨酸脑啡肽和志贺毒素 1 亚基 B 同五聚体的 CID 也观察到类似的效果。通过检查在不同发射器位置获得的 CIU 指纹之间的 RMSD 以及牛血清白蛋白和 NIST 单克隆抗体结构转变的 CIU50 偏移,还研究了源内激活对 Waters Synapt G2-S 的影响。