Issue 11, 2012

TOFwave: reproducibility in biomarker discovery from time-of-flight mass spectrometry data

Abstract

Many are the sources of variability that can affect reproducibility of disease biomarkers from time-of-flight (TOF) Mass Spectrometry (MS) data. Here we present TOFwave, a complete software pipeline for TOF-MS biomarker identification, that limits the impact of parameter tuning along the whole chain of preprocessing and model selection modules. Peak profiles are obtained by a preprocessing based on Continuous Wavelet Transform (CWT), coupled with a machine learning protocol aimed at avoiding selection bias effects. Only two parameters (minimum peak width and a signal to noise cutoff) have to be explicitly set. The TOFwave pipeline is built on top of the mlpy Python package. Examples on Matrix-Assisted Laser Desorption and Ionization (MALDI) TOF datasets are presented. Software prototype, datasets and details to replicate results in this paper can be found at http://mlpy.sf.net/tofwave/.

Graphical abstract: TOFwave: reproducibility in biomarker discovery from time-of-flight mass spectrometry data

Supplementary files

Article information

Article type
Method
Submitted
06 Jun 2012
Accepted
23 Jul 2012
First published
24 Jul 2012

Mol. BioSyst., 2012,8, 2845-2849

TOFwave: reproducibility in biomarker discovery from time-of-flight mass spectrometry data

M. Chierici, D. Albanese, P. Franceschi and C. Furlanello, Mol. BioSyst., 2012, 8, 2845 DOI: 10.1039/C2MB25223F

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