Department of Chemistry and Biomolecular Chemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706-1322, USA.
Anal Chem. 2011 Oct 15;83(20):7651-6. doi: 10.1021/ac201843e. Epub 2011 Sep 28.
High-resolution and high-accuracy Fourier transform mass spectrometry (FTMS) is becoming increasingly attractive due to its specificity. However, the speed of tandem FTMS analysis severely limits the competitive advantage of this approach relative to faster low-resolution quadrupole ion trap MS/MS instruments. Here we demonstrate an entirely FTMS-based analysis method with a 2.5-3.0-fold greater throughput than a conventional FT MS/MS approach. The method consists of accumulating together the MS/MS fragments ions from multiple precursors, with subsequent high-resolution analysis of the mixture. Following acquisition, the multiplexed spectrum is deconvoluted into individual MS/MS spectra which are then combined into a single concatenated file and submitted for peptide identification to a search engine. The method is tested both in silico using a database of MS/MS spectra as well as in situ using a modified LTQ Orbitrap mass spectrometer. The performance of the method in the experiment was consistent with theoretical expectations.
高分辨率和高精度傅里叶变换质谱(FTMS)因其特异性而变得越来越有吸引力。然而,串联 FTMS 分析的速度严重限制了这种方法相对于更快的低分辨率四极杆离子阱 MS/MS 仪器的竞争优势。在这里,我们展示了一种完全基于 FTMS 的分析方法,其通量比传统的 FT-MS/MS 方法高 2.5-3.0 倍。该方法包括将来自多个前体的 MS/MS 碎片离子累积在一起,然后对混合物进行高分辨率分析。采集后,将多路复用光谱解卷积成单个 MS/MS 光谱,然后将它们组合成单个连续文件,并提交给搜索引擎进行肽鉴定。该方法使用 MS/MS 光谱数据库进行了计算机模拟测试,以及使用改良的 LTQ Orbitrap 质谱仪进行了原位测试。该方法在实验中的性能与理论预期一致。