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PMID: 10612281 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Probability-based protein identification by searching sequence databases using mass spectrometry data.

Electrophoresis ·Vol. 20 ·No. 18 ·1999-12-00 ·Pages 3551-67

Perkins DN, Pappin DJ, Creasy DM, Cottrell JS

Abstract

Several algorithms have been described in the literature for protein identification by searching a sequence database using mass spectrometry data. In some approaches, the experimental data are peptide molecular weights from the digestion of a protein by an enzyme. Other approaches use tandem mass spectrometry (MS/MS) data from one or more peptides. Still others combine mass data with amino acid sequence data. We present results from a new computer program, Mascot, which integrates all three types of search. The scoring algorithm is probability based, which has a number of advantages: (i) A simple rule can be used to judge whether a result is significant or not. This is particularly useful in guarding against false positives. (ii) Scores can be compared with those from other types of search, such as sequence homology. (iii) Search parameters can be readily optimised by iteration. The strengths and limitations of probability-based scoring are discussed, particularly in the context of high throughput, fully automated protein identification.

MeSH Terms
Amino Acid Sequence Amino Acids/chemistry Databases, Factual Information Storage and Retrieval Mass Spectrometry Molecular Sequence Data Molecular Weight Nucleic Acids/genetics Probability Protein Biosynthesis Proteins/chemistry
Chemicals
Amino Acids Nucleic Acids Proteins
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Perkins D N
Imperial Cancer Research Fund, London, UK.
Pappin D J
Creasy D M
Cottrell J S
Article Info
Journal
Electrophoresis
Abbr.
Electrophoresis
ISSN
0173-0835
Published
1999-12-00
Pages
3551-67
Language
English
Region
Germany
NLM ID
8204476
Subset
IM
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