Aushev Tagir, Kozhinov Anton N, Tsybin Yury O
Institute for Theoretical and Experimental Physics, 117218, Moscow, Russia.
J Am Soc Mass Spectrom. 2014 Jul;25(7):1263-73. doi: 10.1007/s13361-014-0888-x. Epub 2014 May 1.
To advance Fourier transform mass spectrometry (FTMS)-based molecular structure analysis, corresponding development of the FTMS signal processing methods and instrumentation is required. Here, we demonstrate utility of a least-squares fitting (LSF) method for analysis of FTMS time-domain (transient) signals. We evaluate the LSF method in the analysis of single- and multiple-component experimental and simulated ion cyclotron resonance (ICR) and Orbitrap FTMS transient signals. Overall, the LSF method allows one to estimate the analytical limits of the conventional instrumentation and signal processing methods in FTMS. Particularly, LSF provides accurate information on initial phases of sinusoidal components in a given transient. For instance, the phase distribution obtained for a statistical set of experimental transients reveals the effect of the first data-point problem in FT-ICR MS. Additionally, LSF might be useful to improve the implementation of the absorption-mode FT spectral representation for FTMS applications. Finally, LSF can find utility in characterization and development of filter-diagonalization method (FDM) MS.
为推动基于傅里叶变换质谱(FTMS)的分子结构分析,需要相应地开发FTMS信号处理方法和仪器设备。在此,我们展示了一种最小二乘拟合(LSF)方法在分析FTMS时域(瞬态)信号方面的实用性。我们在分析单组分和多组分实验及模拟离子回旋共振(ICR)和轨道阱FTMS瞬态信号时评估了LSF方法。总体而言,LSF方法使人们能够估计FTMS中传统仪器设备和信号处理方法的分析极限。特别是,LSF能提供给定瞬态中正弦分量初始相位的准确信息。例如,从一组统计的实验瞬态中获得的相位分布揭示了FT-ICR MS中首个数据点问题的影响。此外,LSF可能有助于改进FTMS应用中吸收模式FT光谱表示的实现。最后,LSF可用于滤波器对角化方法(FDM)质谱的表征和开发。