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A calibration method that simplifies and improves accurate determination of peptide molecular masses by MALDI-TOF MS

机译:一种通过MALDI-TOF MS简化并提高对肽分子量的准确测定的校准方法

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The use of delayed ion extraction in MALDI time-of-flight mass spectrometry distorts the linear relationship between m/z and the square of the ion flight time (t(2)) With the consequence that, if a mass accuracy of 10 ppm or better is to be obtained, the calibrant signals have to fall close to the analyte signals. If this is not possible, systematic errors arise. To eliminate these, a higher-order calibration function and thus several calibrant signals are required. For internal calibration, however, this approach is limited by signal suppression effects and the increasing chance of the calibrant signals overlapping with analyte signals. If instead the calibrants are prepared separately, this problem is replaced by an other; i.e., the ion flight times are dependent on the sample plate position. For this reason, even if the calibrants are placed close to the sample, the mass accuracy is not improved when a higher-order calibration function is applied. We have studied this phenomenon and found that the relative errors, which result when moving from one sample to. the next, are directly proportional to m/z. Based on this observation, we developed a two-step calibration method,, that overcomes said limitations. The first step is an external calibration with a high-order polynomial function used for the determination,of the relation between m/z and t(2), and the second step is a first-order internal correction, for samples position-dependent errors. Applying this, method, sample position-dependent for instance, to a mass spectrum of a mixture of, 18 peptides from a tryptic digest of a recombinant protein resulted in an average mass error of 1.0 ppm with a standard deviation of 3.5 ppm When, instead using a conventional two-point internal calibration, the average relative error was 2.2 ppm,with a. standard deviation of 15 ppm. The new method is described and its performance is demonstrated with examples relevant to proteome research. [References: 19]
机译:在MALDI飞行时间质谱中使用延迟离子提取会扭曲m / z与离子飞行时间的平方(t(2))之间的线性关系,结果是,如果质量精度为10 ppm或为了获得更好的结果,校准信号必须接近分析物信号。如果这不可能,则会出现系统错误。为了消除这些,需要更高阶的校准功能,因此需要多个校准信号。但是,对于内部校准,此方法受信号抑制效果和校准信号与分析物信号重叠的机会增加的限制。相反,如果校准剂是单独准备的,则此问题将被另一个替代。即,离子飞行时间取决于样品板的位置。因此,即使将校准物放置在靠近样品的位置,使用高阶校准功能时,质量精度也不会提高。我们研究了这种现象,发现从一个样本移到另一个样本时所产生的相对误差。下一个与m / z成正比。基于此观察结果,我们开发了一种两步校准方法,克服了上述限制。第一步是使用高阶多项式函数进行外部校准,以确定m / z和t(2)之间的关系,第二步是一阶内部校正,以解决与样本位置有关的误差。将这种方法(例如,取决于样品的位置)应用于重组蛋白胰蛋白酶消化的18种肽的混合物的质谱图时,平均质量误差为1.0 ppm,标准偏差为3.5 ppm。使用常规的两点内部校准,平均相对误差为2.2 ppm。标准偏差为15 ppm。描述了该新方法,并通过与蛋白质组研究相关的实例证明了其性能。 [参考:19]

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