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PMID: 12716127 Published · ppublish English Evaluation Study Journal Article

A new algorithm for the evaluation of shotgun peptide sequencing in proteomics: support vector machine classification of peptide MS/MS spectra and SEQUEST scores.

Journal of proteome research ·Vol. 2 ·No. 2 ·2003-00-00 ·Pages 137-46

Anderson DC, Li W, Payan DG, Noble WS

Abstract

Shotgun tandem mass spectrometry-based peptide sequencing using programs such as SEQUEST allows high-throughput identification of peptides, which in turn allows the identification of corresponding proteins. We have applied a machine learning algorithm, called the support vector machine, to discriminate between correctly and incorrectly identified peptides using SEQUEST output. Each peptide was characterized by SEQUEST-calculated features such as delta Cn and Xcorr, measurements such as precursor ion current and mass, and additional calculated parameters such as the fraction of matched MS/MS peaks. The trained SVM classifier performed significantly better than previous cutoff-based methods at separating positive from negative peptides. Positive and negative peptides were more readily distinguished in training set data acquired on a QTOF, compared to an ion trap mass spectrometer. The use of 13 features, including four new parameters, significantly improved the separation between positive and negative peptides. Use of the support vector machine and these additional parameters resulted in a more accurate interpretation of peptide MS/MS spectra and is an important step toward automated interpretation of peptide tandem mass spectrometry data in proteomics.

MeSH Terms
Algorithms Databases, Factual Expert Systems Mass Spectrometry/methods,standards Peptides/analysis Proteins/analysis Proteomics/instrumentation,methods Sequence Analysis, Protein/methods,standards
Chemicals
Peptides Proteins
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Anderson D C
Rigel Incorporated, 240 East Grand Avenue, South San Francisco, California 94080, USA. dca0210@earthlink.net
Li Weiqun
Payan Donald G
Noble William Stafford
Article Info
Journal
Journal of proteome research
Abbr.
J Proteome Res
ISSN
1535-3893
Published
2003-00-00
Pages
137-46
Language
English
Region
United States
NLM ID
101128775
Subset
IM
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