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Laserspray Ionization Imaging of Multiply Charged Ions using a Commercial Vacuum MALDI Ion Source

机译:使用商业真空MALDI离子源的乘法电离离子的激光电离成像

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摘要

This is the first report of imaging mass spectrometry (>MS) from multiply charged ions at vacuum. Laserspray ionization (>LSI) was recently extended to applications at vacuum producing electrospray ionization-like multiply charged ions directly from surfaces using a commercial intermediate pressure matrix-assisted laser desorption/ionization ion mobility spectrometry (>IMS) MS instrument. Here, we developed a strategy to image multiply charged peptide ions. This is achieved by the use of 2-nitrophloroglucinol as matrix for spray deposition onto the tissue section and implementation of ‘soft’ acquisition conditions including low laser power and lower ion accelerating voltages similar to electrospray ionization-like conditions. Sufficient ion abundance is generated by the vacuum LSI method to employ IMS separation in imaging multiply charged ions obtained on a commercial mass spectrometer ion source without physical instrument modifications using the laser in the commercially available reflection geometry alignment. IMS gas-phase separation reduces the complexity of the ion signal from the tissue, especially for multiply charged relative to abundant singly charged ions from tissue lipids. We show examples of LSI tissue imaging from charge state +2 of three endogenous peptides consisting of between 1–16 amino acid residues from the acetylated N-terminal end of myelin basic protein: m/z 795.81 (+2) MW 1589.6, m/z 831.35 (+2) MW 1660.7, and m/z 917.40 (+2) MW 1832.8.
机译:这是在真空下通过多重带电离子成像质谱(> MS )的第一份报告。激光喷雾电离(> LSI )最近扩展到了使用商业中压基质辅助激光解吸/电离离子迁移谱仪(> IMS)直接从表面产生类似于电喷雾电离的多重带电离子的应用)。在这里,我们开发了一种对多电荷的肽离子成像的策略。这是通过使用2-硝基间苯三酚作为基质将其喷雾沉积到组织切片上并实现“软”采集条件(包括低激光功率和较低的离子加速电压,类似于电喷雾电离样条件)来实现的。通过真空LSI方法可产生足够的离子丰度,从而采用IMS分离对在商用质谱仪离子源上获得的多个带电离子成像,而无需使用激光在商用反射几何对准中进行物理仪器修改。 IMS气相分离降低了来自组织的离子信号的复杂性,尤其是相对于来自组织脂质的大量单电荷离子而言,多重电荷。我们显示了由三个内源肽的电荷状态+2组成的LSI组织成像的例子,三个内源肽由髓鞘碱性蛋白的乙酰化N末端的1–16个氨基酸残基组成:m / z 795.81(+2)MW 1589.6,m / z 831.35(+2)MW 1660.7,和m / z 917.40(+2)MW 1832.8。

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