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Dynamic range and mass accuracy of wide-scan direct infusion nanoelectrospray Fourier transform ion cyclotron resonance mass spectrometry-based metabolomics increased by the spectral stitching method

机译:光谱拼接法提高了基于宽扫描直接注入纳米电喷雾傅里叶变换离子回旋共振质谱的代谢组学的动态范围和质量准确性

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Direct infusion nanoelectrospray Fourier transform ion cyclotron resonance mass spectrometry (DI nESI FT-ICR MS) offers high mass accuracy and resolution for analyzing complex metabolite mixtures. High dynamic range across a wide mass range, however, can only be achieved at the expense of mass accuracy, since the large numbers of ions entering the ICR detector induce adverse space-charge effects. Here we report an optimized strategy for wide-scan DI nESI FT-ICR MS that increases dynamic range but maintains high mass accuracy. It comprises the collection of multiple adjacent selected ion monitoring (SIM) windows that are stitched together using novel algorithms. The final SIM-stitching method, derived from several optimization experiments, comprises 21 adjoining SIM windows each of width m/z 30 (from m/z 70 to 500; adjacent windows overlap by m/z 10) with an automated gain control (AGC) target of 1 x 10(5) charges. SIM-stitching and wide-scan range (WSR; Thermo Electron) were compared using a defined standard to assess mass accuracy and a liver extract to assess peak count and dynamic range. SIM-stitching decreased the maximum mass error by 1.3- and 4.3-fold, and increased the peak count by 5.3- and 1.8-fold, versus WSR (AGC targets of 1 x 10(5) and 5 x 10(5), respectively). SIM-stitching achieved an rms mass error of 0.18 ppm and detected over 3000 peaks in liver extract. This novel approach increases metabolome coverage, has very high mass accuracy, and at 5.5 min/sample is conducive for high-throughput metabolomics.
机译:直接注入纳米电喷雾傅里叶变换离子回旋共振质谱(DI nESI FT-ICR MS)为分析复杂的代谢物混合物提供了高质量的准确度和分辨率。但是,由于进入ICR检测器的大量离子会引起不利的空间电荷效应,因此只能以牺牲质量精度为代价才能实现宽质量范围内的高动态范围。在这里,我们报告了用于宽扫描DI nESI FT-ICR MS的优化策略,该策略增加了动态范围,但保持了较高的质量精度。它包括使用新颖算法将多个相邻选定离子监测(SIM)窗口缝合在一起的集合。最终的SIM拼接方法是通过多次优化实验得出的,包括21个相邻的SIM窗口,每个窗口的宽度为m / z 30(从m / z 70到500;相邻的窗口重叠m / z 10),并带有自动增益控制(AGC) )1 x 10(5)收费的目标。使用定义的标准比较SIM缝合和宽扫描范围(WSR; Thermo Electron),以评估质量准确性,并使用肝脏提取物评估峰数和动态范围。与WSR相比,SIM缝合将最大质量误差降低了1.3倍和4.3倍,并将峰计数提高了5.3倍和1.8倍(AGC目标分别为1 x 10(5)和5 x 10(5) )。 SIM缝合的均方根质量误差为0.18 ppm,并在肝提取物中检测到3000多个峰。这种新颖的方法增加了代谢组的覆盖范围,具有非常高的质量准确度,并且每分钟5.5分钟有利于高通量代谢组学。

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