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Accurate and Sensitive Peptide Identification with Mascot Percolator

Journal of Proteome Research · 2009 · Vol. 8(6) · pp. 3176–3181
Markus BroschLu YuTim HubbardJyoti S. Choudhary

Abstract

Sound scoring methods for sequence database search algorithms such as Mascot and Sequest are essential for sensitive and accurate peptide and protein identifications from proteomic tandem mass spectrometry data. In this paper, we present a software package that interfaces Mascot with Percolator, a well performing machine learning method for rescoring database search results, and demonstrate it to be amenable for both low and high accuracy mass spectrometry data, outperforming all available Mascot scoring schemes as well as providing reliable significance measures. Mascot Percolator can be readily used as a stand alone tool or integrated into existing data analysis pipelines.

Advanced Proteomics Techniques and ApplicationsMass Spectrometry Techniques and ApplicationsMetabolomics and Mass Spectrometry StudiesMascotComputer scienceTandem mass spectrometryIdentification (biology)SoftwareDatabase search engineArtificial intelligenceMass spectrometryData miningSearch engine

MeSH terms

AlgorithmsArtificial IntelligenceChromatography, LiquidPeptide FragmentsSensitivity and SpecificitySoftwareReproducibility of ResultsSequence Analysis, ProteinDatabases, ProteinProteomicsTandem Mass Spectrometry
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Accurate and Sensitive Peptide Identification with Mascot Percolator · Scinovex