標題: | Incorporating Support Vector Machine for Identifying Protein Tyrosine Sulfation Sites |
作者: | Chang, Wen-Chi Lee, Tzong-Yi Shien, Dray-Ming Hsu, Justin Bo-Kai Horng, Jorng-Tzong Hsu, Po-Chiang Wang, Ting-Yuan Huang, Hsien-Da Pan, Rong-Long 生物科技學系 生物資訊及系統生物研究所 Department of Biological Science and Technology Institude of Bioinformatics and Systems Biology |
關鍵字: | protein;sulfation;prediction |
公開日期: | 30-Nov-2009 |
摘要: | Tyrosine sulfation is a post-translational modification of many secreted and membrane-bound proteins. It governs protein-protein interactions that are involved in leukocyte adhesion, hemostasis, and chemokine signaling. However, the intrinsic feature of sulfated protein remains elusive and remains to be delineated. This investigation presents SulfoSite, which is a computational method based on a support vector machine (SVM) for predicting protein sulfotyrosine sites. The approach was developed to consider structural information such as concerning the secondary structure and solvent accessibility of amino acids that surround the sulfotyrosine sites. One hundred sixty-two experimentally verified tyrosine sulfation sites were identified using UniProtKB/SwissProt release 53.0. The results of a five-fold cross-validation evaluation suggest that the accessibility of the solvent around the sulfotyrosine sites contributes substantially to predictive accuracy. The SVM classifier can achieve an accuracy of 94.2% in fivefold cross validation when sequence positional weighted matrix (PWM) is coupled with values of the accessible surface area (ASA). The proposed method significantly outperforms previous methods for accurately predicting the location of tyrosine sulfation sites. (C) 2009 Wiley Periodicals, Inc. J Comput Chem 30: 2526-2537, 2009 |
URI: | http://dx.doi.org/10.1002/jcc.21258 http://hdl.handle.net/11536/6406 |
ISSN: | 0192-8651 |
DOI: | 10.1002/jcc.21258 |
期刊: | JOURNAL OF COMPUTATIONAL CHEMISTRY |
Volume: | 30 |
Issue: | 15 |
起始頁: | 2526 |
結束頁: | 2537 |
Appears in Collections: | Articles |
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