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液相色谱/质谱数据处理及峰检测的新算法

New algorithms for processing and peak detection in liquid chromatography/mass spectrometry data.

作者信息

Hastings Curtis A, Norton Scott M, Roy Sushmita

机构信息

SurroMed, Inc., 2375 Garcia Ave., Mountain View, CA 94043, USA.

出版信息

Rapid Commun Mass Spectrom. 2002;16(5):462-7. doi: 10.1002/rcm.600.

Abstract

Two new algorithms for automated processing of liquid chromatography/mass spectrometry (LC/MS) data are presented. These algorithms were developed from an analysis of the noise and artifact distribution in such data. The noise distribution was analyzed by preparing histograms of the signal intensity in LC/MS data. These histograms are well fit by a sum of two normal distributions in the log scale. One new algorithm, median filtering, provides increased performance compared to averaging adjacent scans in removing noise that is not normally distributed in the linear scale. Another new algorithm, vectorized peak detection, provides increased robustness with respect to variation in the noise and artifact distribution compared to methods based on determining an intensity threshold for the entire dataset. Vectorized peak detection also permits the incorporation of existing algorithms for peak detection in ion chromatograms and/or mass spectra. The application of these methods to LC/MS spectra of complex biological samples is described.

摘要

介绍了两种用于液相色谱/质谱(LC/MS)数据自动处理的新算法。这些算法是通过分析此类数据中的噪声和伪像分布而开发的。通过绘制LC/MS数据中信号强度的直方图来分析噪声分布。在对数尺度上,这些直方图很好地拟合了两个正态分布的总和。一种新算法,即中值滤波,与平均相邻扫描相比,在去除线性尺度上非正态分布的噪声方面具有更高的性能。另一种新算法,即矢量化峰检测,与基于为整个数据集确定强度阈值的方法相比,在噪声和伪像分布变化方面具有更高的稳健性。矢量化峰检测还允许纳入现有的离子色谱图和/或质谱图中的峰检测算法。描述了这些方法在复杂生物样品的LC/MS光谱中的应用。

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