Tsybin Yury O, Quinn John P, Tsybin Oleg Yu, Hendrickson Christopher L, Marshall Alan G
Biomolecular Mass Spectrometry Laboratory, Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.
J Am Soc Mass Spectrom. 2008 Jun;19(6):762-71. doi: 10.1016/j.jasms.2008.02.007. Epub 2008 Mar 4.
Successful electron capture dissociation (ECD) Fourier transform ion cyclotron resonance mass spectrometry (FT-ICR MS) applications to peptide and protein structural analysis have been enabled by constant progress in implementation of improved electron injection techniques. The rate of ECD product ion formation has been increased to match the liquid chromatography and capillary electrophoresis timescales, and ECD has been combined with infrared multiphoton dissociation in a single experimental configuration to provide simultaneous irradiation, fast switching between the two techniques, and good spatial overlap between ion, photon, and electron beams. Here we begin by describing advantages and disadvantages of the various existing electron injection techniques for ECD in FT-ICR MS. We next compare multiple-pass and single-pass ECD to provide better understanding of ECD efficiency at low and high negative cathode potentials. We introduce compressed hollow electron beam injection to optimize the overlap of ion, photon, and electron beams in the ICR ion trap. Finally, to overcome significant outgassing during operation of a powerful thermal cathode, we introduce nonthermal electron emitter-based electron injection. We describe the first results obtained with cold cathode ECD, and demonstrate a general way to obtain low-energy electrons in FT-ICR MS by use of multiple-pass ECD.
通过在改进电子注入技术的实施方面不断取得进展,成功地将电子捕获解离(ECD)傅里叶变换离子回旋共振质谱(FT-ICR MS)应用于肽和蛋白质结构分析。ECD产物离子的形成速率已提高到与液相色谱和毛细管电泳的时间尺度相匹配,并且ECD已在单一实验配置中与红外多光子解离相结合,以提供同时照射、两种技术之间的快速切换以及离子、光子和电子束之间良好的空间重叠。在这里,我们首先描述FT-ICR MS中用于ECD的各种现有电子注入技术的优缺点。接下来,我们比较多通和单通ECD,以更好地理解在低和高负阴极电位下的ECD效率。我们引入压缩空心电子束注入,以优化ICR离子阱中离子、光子和电子束的重叠。最后,为了克服强大热阴极运行期间的大量脱气问题,我们引入基于非热电子发射器的电子注入。我们描述了冷阴极ECD获得的首批结果,并展示了一种通过使用多通ECD在FT-ICR MS中获得低能电子的通用方法。