• DocumentCode
    1221865
  • Title

    Bio-basis function neural network for prediction of protease cleavage sites in proteins

  • Author

    Yang, Zheng Rong ; Thomson, Rebecca

  • Author_Institution
    Sch. of Eng. & Comput. Sci., Exeter Univ., UK
  • Volume
    16
  • Issue
    1
  • fYear
    2005
  • Firstpage
    263
  • Lastpage
    274
  • Abstract
    The prediction of protease cleavage sites in proteins is critical to effective drug design. One of the important issues in constructing an accurate and efficient predictor is how to present nonnumerical amino acids to a model effectively. As this issue has not yet been paid full attention and is closely related to model efficiency and accuracy, we present a novel neural learning algorithm aimed at improving the prediction accuracy and reducing the time involved in training. The algorithm is developed based on the conventional radial basis function neural networks (RBFNNs) and is referred to as a bio-basis function neural network (BBFNN). The basic principle is to replace the radial basis function used in RBFNNs by a novel bio-basis function. Each bio-basis is a feature dimension in a numerical feature space, to which a nonnumerical sequence space is mapped for analysis. The bio-basis function is designed using an amino acid mutation matrix verified in biology. Thus, the biological content in protein sequences can be maximally utilized for accurate modeling. Mutual information (MI) is used to select the most informative bio-bases and an ensemble method is used to enhance a decision-making process, hence, improving the prediction accuracy further. The algorithm has been successfully verified in two case studies, namely the prediction of Human Immunodeficiency Virus (HIV) protease cleavage sites and trypsin cleavage sites in proteins.
  • Keywords
    biology computing; learning (artificial intelligence); molecular biophysics; proteins; radial basis function networks; bio basis function neural network; human immunodeficiency virus; mutual information; nonnumerical amino acid; protease cleavage site prediction; protein; radial basis function neural network; Accuracy; Amino acids; Drugs; Genetic mutations; Human immunodeficiency virus; Neural networks; Predictive models; Proteins; Radial basis function networks; Sequences; Amino acid mutation matrix; bio-basis function neural network (BBFNN); pattern recognition; protease cleavage site prediction; Artificial Intelligence; Binding Sites; Computer Simulation; Models, Chemical; Models, Molecular; Neural Networks (Computer); Pattern Recognition, Automated; Peptide Hydrolases; Protein Binding; Protein Interaction Mapping; Proteins; Sequence Analysis, Protein;
  • fLanguage
    English
  • Journal_Title
    Neural Networks, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1045-9227
  • Type

    jour

  • DOI
    10.1109/TNN.2004.836196
  • Filename
    1388474