HMMpTM: Improving transmembrane protein topology prediction using phosphorylation and glycosylation site prediction

被引:15
作者
Tsaousis, Georgios N. [1 ]
Bagos, Pantelis G. [2 ]
Hamodrakas, Stavros J. [1 ]
机构
[1] Univ Athens, Dept Cell Biol & Biophys, Fac Biol, Athens 15701, Greece
[2] Univ Thessaly, Dept Comp Sci & Biomed Informat, Lamia 35100, Greece
来源
BIOCHIMICA ET BIOPHYSICA ACTA-PROTEINS AND PROTEOMICS | 2014年 / 1844卷 / 02期
关键词
Transmembrane protein; Phosphorylation; Glycosylation; Topology; Prediction; Hidden Markov model; SIGNAL PEPTIDE PREDICTION; HIDDEN MARKOV-MODELS; MEMBRANE-PROTEIN; N-GLYCOSYLATION; CONSERVATION ANALYSIS; CONSENSUS PREDICTION; ANION-EXCHANGER; DATABASE; SEGMENTS; OLIGOSACCHARYLTRANSFERASE;
D O I
10.1016/j.bbapap.2013.11.001
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
During the last two decades a large number of Computational methods have been developed for predicting transmembrane protein topology. Current predictors rely on topogenic signals in the protein sequence, such as the distribution of positively charged residues in extra-membrane loops and the existence of N-terminal signals. However, phosphorylation and glycosylation are post-translational modifications (PTMs) that occur in a compartment-specific manner and therefore the presence of a phosphorylation or glycosylation site in a transmembrane protein provides topological information. We examine the combination of phosphorylation and glycosylation site prediction with transmembrane protein topology prediction. We report the development of a Hidden Markov Model based method, capable of predicting the topology of transmembrane proteins and the existence of kinase specific phosphorylation and N/O-linked glycosylation sites along the protein sequence. Our method integrates a novel feature in transmembrane protein topology prediction, which results in improved performance for topology prediction and reliable prediction of phosphorylation and glycosylation sites. The method is freely available at http://bioinformatics.biol.uoa.gr/HMMpTM. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:316 / 322
页数:7
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