Predicting protein structural class based on multi-features fusion.

J Theor Biol

School of Traditional Chinese Medicine, Guangdong Pharmaceutical University, Guangzhou 510006, PR China.

Published: July 2008

AI Article Synopsis

  • The structural class of a protein refers to its overall folding type, and predicting this class is a key challenge in protein science.
  • Researchers used 10 common sequence-derived features from the PROFEAT web server as inputs for support vector machines to create statistical models for predicting protein structural classes.
  • They developed a merging strategy called best-first search, which improved prediction accuracy and could enhance the prediction of various other protein attributes like subcellular localization and enzyme types.

Article Abstract

Structural class characterizes the overall folding type of a protein or its domain and the prediction of protein structural class has become both an important and a challenging topic in protein science. Moreover, the prediction itself can stimulate the development of novel predictors that may be straightforwardly applied to many other relational areas. In this paper, 10 frequently used sequence-derived structural and physicochemical features, which can be easily computed by the PROFEAT (Protein Features) web server, were taken as inputs of support vector machines to develop statistical learning models for predicting the protein structural class. More importantly, a strategy of merging different features, called best-first search, was developed. It was shown through the rigorous jackknife cross-validation test that the success rates by our method were significantly improved. We anticipate that the present method may also have important impacts on boosting the predictive accuracies for a series of other protein attributes, such as subcellular localization, membrane types, enzyme family and subfamily classes, among many others.

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Source
http://dx.doi.org/10.1016/j.jtbi.2008.03.009DOI Listing

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