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前端电子转移解离与 21 特斯拉傅里叶变换离子回旋共振质谱联用进行完整蛋白质序列分析。

Front-End Electron Transfer Dissociation Coupled to a 21 Tesla FT-ICR Mass Spectrometer for Intact Protein Sequence Analysis.

机构信息

National High Magnetic Field Laboratory (NHMFL), 1800 East Paul Dirac Dr., Tallahassee, FL, 32310, USA.

Thermo Fisher Scientific, San Jose, CA, 95134, USA.

出版信息

J Am Soc Mass Spectrom. 2017 Sep;28(9):1787-1795. doi: 10.1007/s13361-017-1702-3. Epub 2017 Jul 18.

Abstract

High resolution mass spectrometry is a key technology for in-depth protein characterization. High-field Fourier transform ion cyclotron resonance mass spectrometry (FT-ICR MS) enables high-level interrogation of intact proteins in the most detail to date. However, an appropriate complement of fragmentation technologies must be paired with FTMS to provide comprehensive sequence coverage, as well as characterization of sequence variants, and post-translational modifications. Here we describe the integration of front-end electron transfer dissociation (FETD) with a custom-built 21 tesla FT-ICR mass spectrometer, which yields unprecedented sequence coverage for proteins ranging from 2.8 to 29 kDa, without the need for extensive spectral averaging (e.g., ~60% sequence coverage for apo-myoglobin with four averaged acquisitions). The system is equipped with a multipole storage device separate from the ETD reaction device, which allows accumulation of multiple ETD fragment ion fills. Consequently, an optimally large product ion population is accumulated prior to transfer to the ICR cell for mass analysis, which improves mass spectral signal-to-noise ratio, dynamic range, and scan rate. We find a linear relationship between protein molecular weight and minimum number of ETD reaction fills to achieve optimum sequence coverage, thereby enabling more efficient use of instrument data acquisition time. Finally, real-time scaling of the number of ETD reactions fills during method-based acquisition is shown, and the implications for LC-MS/MS top-down analysis are discussed. Graphical Abstract ᅟ.

摘要

高分辨率质谱是深入蛋白质表征的关键技术。高场傅里叶变换离子回旋共振质谱(FT-ICR MS)能够以迄今为止最详细的方式对完整蛋白质进行高级询问。然而,必须将适当的片段化技术与 FTMS 结合使用,以提供全面的序列覆盖,以及序列变异和翻译后修饰的特征。在这里,我们描述了前端电子转移解离(FETD)与定制的 21 特斯拉 FT-ICR 质谱仪的集成,该系统为 2.8 至 29 kDa 的蛋白质提供了前所未有的序列覆盖,而无需进行广泛的光谱平均(例如,四个平均采集的脱辅基肌红蛋白的序列覆盖率约为 60%)。该系统配备了与 ETD 反应装置分开的多极存储装置,这允许积累多个 ETD 片段离子填充。因此,在将产物离子转移到 ICR 细胞进行质量分析之前,可以积累最佳大小的产物离子群体,从而提高质谱的信噪比、动态范围和扫描速率。我们发现蛋白质分子量与实现最佳序列覆盖所需的 ETD 反应填充次数之间存在线性关系,从而能够更有效地利用仪器数据采集时间。最后,显示了在基于方法的采集过程中实时调整 ETD 反应填充次数的情况,并讨论了其对 LC-MS/MS 自上而下分析的影响。

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