JOURNAL ARTICLE

Support vector machine approach for protein subcellular localization prediction

Sujun HuaZhirong Sun

Year: 2001 Journal:   Bioinformatics Vol: 17 (8)Pages: 721-728   Publisher: Oxford University Press

Abstract

Abstract Motivation: Subcellular localization is a key functional characteristic of proteins. A fully automatic and reliable prediction system for protein subcellular localization is needed, especially for the analysis of large-scale genome sequences. Results: In this paper, Support Vector Machine has been introduced to predict the subcellular localization of proteins from their amino acid compositions. The total prediction accuracies reach 91.4% for three subcellular locations in prokaryotic organisms and 79.4% for four locations in eukaryotic organisms. Predictions by our approach are robust to errors in the protein N-terminal sequences. This new approach provides superior prediction performance compared with existing algorithms based on amino acid composition and can be a complementary method to other existing methods based on sorting signals. Availability: A web server implementing the prediction method is available at http://www.bioinfo.tsinghua.edu.cn/SubLoc/. Contact: [email protected]; [email protected] Supplementary information: Supplementary material is available at http://www.bioinfo.tsinghua.edu.cn/SubLoc/. * To whom correspondence should be addressed.

Keywords:
Subcellular localization Support vector machine Protein subcellular localization prediction Sorting Computer science Protein Sorting Signals Protein targeting Artificial intelligence Pseudo amino acid composition Computational biology Data mining Biology Algorithm Peptide sequence Gene Biochemistry Signal peptide Membrane protein

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856
Cited By
10.50
FWCI (Field Weighted Citation Impact)
31
Refs
0.99
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Is in top 1%
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Citation History

Topics

Machine Learning in Bioinformatics
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
Genomics and Phylogenetic Studies
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
RNA and protein synthesis mechanisms
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
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