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      PSIONplus: Accurate Sequence-Based Predictor of Ion Channels and Their Types

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          Abstract

          Ion channels are a class of membrane proteins that attracts a significant amount of basic research, also being potential drug targets. High-throughput identification of these channels is hampered by the low levels of availability of their structures and an observation that use of sequence similarity offers limited predictive quality. Consequently, several machine learning predictors of ion channels from protein sequences that do not rely on high sequence similarity were developed. However, only one of these methods offers a wide scope by predicting ion channels, their types and four major subtypes of the voltage-gated channels. Moreover, this and other existing predictors utilize relatively simple predictive models that limit their accuracy. We propose a novel and accurate predictor of ion channels, their types and the four subtypes of the voltage-gated channels called PSIONplus. Our method combines a support vector machine model and a sequence similarity search with BLAST. The originality of PSIONplus stems from the use of a more sophisticated machine learning model that for the first time in this area utilizes evolutionary profiles and predicted secondary structure, solvent accessibility and intrinsic disorder. We empirically demonstrate that the evolutionary profiles provide the strongest predictive input among new and previously used input types. We also show that all new types of inputs contribute to the prediction. Results on an independent test dataset reveal that PSIONplus obtains relatively good predictive performance and outperforms existing methods. It secures accuracies of 85.4% and 68.3% for the prediction of ion channels and their types, respectively, and the average accuracy of 96.4% for the discrimination of the four ion channel subtypes. Standalone version of PSIONplus is freely available from https://sourceforge.net/projects/psion/

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          Most cited references47

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          Profile hidden Markov models.

          S. Eddy (1998)
          The recent literature on profile hidden Markov model (profile HMM) methods and software is reviewed. Profile HMMs turn a multiple sequence alignment into a position-specific scoring system suitable for searching databases for remotely homologous sequences. Profile HMM analyses complement standard pairwise comparison methods for large-scale sequence analysis. Several software implementations and two large libraries of profile HMMs of common protein domains are available. HMM methods performed comparably to threading methods in the CASP2 structure prediction exercise.
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            Structure and mechanism of the M2 proton channel of influenza A virus.

            The integral membrane protein M2 of influenza virus forms pH-gated proton channels in the viral lipid envelope. The low pH of an endosome activates the M2 channel before haemagglutinin-mediated fusion. Conductance of protons acidifies the viral interior and thereby facilitates dissociation of the matrix protein from the viral nucleoproteins--a required process for unpacking of the viral genome. In addition to its role in release of viral nucleoproteins, M2 in the trans-Golgi network (TGN) membrane prevents premature conformational rearrangement of newly synthesized haemagglutinin during transport to the cell surface by equilibrating the pH of the TGN with that of the host cell cytoplasm. Inhibiting the proton conductance of M2 using the anti-viral drug amantadine or rimantadine inhibits viral replication. Here we present the structure of the tetrameric M2 channel in complex with rimantadine, determined by NMR. In the closed state, four tightly packed transmembrane helices define a narrow channel, in which a 'tryptophan gate' is locked by intermolecular interactions with aspartic acid. A carboxy-terminal, amphipathic helix oriented nearly perpendicular to the transmembrane helix forms an inward-facing base. Lowering the pH destabilizes the transmembrane helical packing and unlocks the gate, admitting water to conduct protons, whereas the C-terminal base remains intact, preventing dissociation of the tetramer. Rimantadine binds at four equivalent sites near the gate on the lipid-facing side of the channel and stabilizes the closed conformation of the pore. Drug-resistance mutations are predicted to counter the effect of drug binding by either increasing the hydrophilicity of the pore or weakening helix-helix packing, thus facilitating channel opening.
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              • Record: found
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              • Article: not found

              Empirical predictions of protein conformation.

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                Author and article information

                Contributors
                Role: Editor
                Journal
                PLoS One
                PLoS ONE
                plos
                plosone
                PLoS ONE
                Public Library of Science (San Francisco, CA USA )
                1932-6203
                4 April 2016
                2016
                : 11
                : 4
                : e0152964
                Affiliations
                [1 ]School of Mathematical Sciences and LPMC, Nankai University, Tianjin, People's Republic of China
                [2 ]Department of Statistics, University of California Riverside, Riverside, California, United States of America
                [3 ]Graduate School at Shenzhen, Tsinghua University, Shenzhen, People's Republic of China
                [4 ]State Key Laboratory of Medicinal Chemical Biology, Nankai University, Tianjin, People’s Republic of China
                [5 ]Department of Electrical and Computer Engineering, University of Alberta, Edmonton, Alberta, Canada
                [6 ]Department of Computer Science, Virginia Commonwealth University, Richmond, Virginia, United States of America
                Zhejiang University, CHINA
                Author notes

                Competing Interests: Dr. Kurgan is an academic editor of PLOS ONE. The authors declare no other conflicts.

                Conceived and designed the experiments: JG JR LK. Performed the experiments: JG. Analyzed the data: JG WC YS JR LK. Contributed reagents/materials/analysis tools: JG WC YS JR LK. Wrote the paper: JG JR LK.

                Article
                PONE-D-15-06279
                10.1371/journal.pone.0152964
                4820270
                27044036
                e2b3c146-014f-4ec7-9e0b-99a53034f2b8
                © 2016 Gao et al

                This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

                History
                : 10 February 2015
                : 18 March 2016
                Page count
                Figures: 2, Tables: 6, Pages: 18
                Funding
                LK and JR were supported by the National Science Foundation of China (NSFC) grants 31050110432 and 31150110577. LK was also supported by the Discovery grant 298328 from National Science and Engineering Research Council (NSERC) Canada. JR was also supported by the International Development Research Center, Ottawa, Canada grant 104519-010. JG was supported by Specialized Research Fund for the Doctoral Program of Higher Education (SRFDP) grant 20130031120001 and by the National Science Foundation of China (NSFC) grant 11101226. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.
                Categories
                Research Article
                Biology and Life Sciences
                Biophysics
                Ion Channels
                Physical Sciences
                Physics
                Biophysics
                Ion Channels
                Biology and Life Sciences
                Physiology
                Electrophysiology
                Ion Channels
                Medicine and Health Sciences
                Physiology
                Electrophysiology
                Ion Channels
                Biology and Life Sciences
                Physiology
                Electrophysiology
                Neurophysiology
                Ion Channels
                Medicine and Health Sciences
                Physiology
                Electrophysiology
                Neurophysiology
                Ion Channels
                Biology and Life Sciences
                Neuroscience
                Neurophysiology
                Ion Channels
                Biology and Life Sciences
                Biochemistry
                Proteins
                Ion Channels
                Biology and Life Sciences
                Biophysics
                Ion Channels
                Voltage-Gated Ion Channels
                Physical Sciences
                Physics
                Biophysics
                Ion Channels
                Voltage-Gated Ion Channels
                Biology and Life Sciences
                Physiology
                Electrophysiology
                Ion Channels
                Voltage-Gated Ion Channels
                Medicine and Health Sciences
                Physiology
                Electrophysiology
                Ion Channels
                Voltage-Gated Ion Channels
                Biology and Life Sciences
                Physiology
                Electrophysiology
                Neurophysiology
                Ion Channels
                Voltage-Gated Ion Channels
                Medicine and Health Sciences
                Physiology
                Electrophysiology
                Neurophysiology
                Ion Channels
                Voltage-Gated Ion Channels
                Biology and Life Sciences
                Neuroscience
                Neurophysiology
                Ion Channels
                Voltage-Gated Ion Channels
                Biology and Life Sciences
                Biochemistry
                Proteins
                Ion Channels
                Voltage-Gated Ion Channels
                Physical sciences
                Mathematics
                Applied mathematics
                Algorithms
                BLAST algorithm
                Research and analysis methods
                Simulation and modeling
                Algorithms
                BLAST algorithm
                Research and analysis methods
                Database and informatics methods
                Bioinformatics
                Software-aided sequence analysis
                BLAST algorithm
                Research and Analysis Methods
                Mathematical and Statistical Techniques
                Statistical Methods
                Forecasting
                Physical Sciences
                Mathematics
                Statistics (Mathematics)
                Statistical Methods
                Forecasting
                Biology and Life Sciences
                Biophysics
                Ion Channels
                Ligand-Gated Ion Channels
                Physical Sciences
                Physics
                Biophysics
                Ion Channels
                Ligand-Gated Ion Channels
                Biology and Life Sciences
                Physiology
                Electrophysiology
                Ion Channels
                Ligand-Gated Ion Channels
                Medicine and Health Sciences
                Physiology
                Electrophysiology
                Ion Channels
                Ligand-Gated Ion Channels
                Biology and Life Sciences
                Physiology
                Electrophysiology
                Neurophysiology
                Ion Channels
                Ligand-Gated Ion Channels
                Medicine and Health Sciences
                Physiology
                Electrophysiology
                Neurophysiology
                Ion Channels
                Ligand-Gated Ion Channels
                Biology and Life Sciences
                Neuroscience
                Neurophysiology
                Ion Channels
                Ligand-Gated Ion Channels
                Biology and Life Sciences
                Biochemistry
                Proteins
                Ion Channels
                Ligand-Gated Ion Channels
                Biology and Life Sciences
                Molecular Biology
                Macromolecular Structure Analysis
                Protein Structure
                Protein Structure Prediction
                Biology and Life Sciences
                Biochemistry
                Proteins
                Protein Structure
                Protein Structure Prediction
                Biology and Life Sciences
                Biophysics
                Ion Channels
                Potassium Channels
                Physical Sciences
                Physics
                Biophysics
                Ion Channels
                Potassium Channels
                Biology and Life Sciences
                Physiology
                Electrophysiology
                Ion Channels
                Potassium Channels
                Medicine and Health Sciences
                Physiology
                Electrophysiology
                Ion Channels
                Potassium Channels
                Biology and Life Sciences
                Physiology
                Electrophysiology
                Neurophysiology
                Ion Channels
                Potassium Channels
                Medicine and Health Sciences
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                Electrophysiology
                Neurophysiology
                Ion Channels
                Potassium Channels
                Biology and Life Sciences
                Neuroscience
                Neurophysiology
                Ion Channels
                Potassium Channels
                Biology and Life Sciences
                Biochemistry
                Proteins
                Ion Channels
                Potassium Channels
                Physical Sciences
                Chemistry
                Physical Chemistry
                Ions
                Anions
                Custom metadata
                Protein sequences were downloaded from the publicly available UniProt database and the Ligand-Gated Ion channel database ( http://www.ebi.ac.uk/compneur-srv/LGICdb/LGICdb.php).

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