Literature DB >> 10328264

New methods for accurate prediction of protein secondary structure.

J M Chandonia1, M Karplus.   

Abstract

A primary and a secondary neural network are applied to secondary structure and structural class prediction for a database of 681 non-homologous protein chains. A new method of decoding the outputs of the secondary structure prediction network is used to produce an estimate of the probability of finding each type of secondary structure at every position in the sequence. In addition to providing a reliable estimate of the accuracy of the predictions, this method gives a more accurate Q3 (74.6%) than the cutoff method which is commonly used. Use of these predictions in jury methods improves the Q3 to 74.8%, the best available at present. On a database of 126 proteins commonly used for comparison of prediction methods, the jury predictions are 76.6% accurate. An estimate of the overall Q3 for a given sequence is made by averaging the estimated accuracy of the prediction over all residues in the sequence. As an example, the analysis is applied to the target beta-cryptogein, which was a difficult target for ab initio predictions in the CASP2 study; it shows that the prediction made with the present method (62% of residues correct) is close to the expected accuracy (66%) for this protein. The larger database and use of a new network training protocol also improve structural class prediction accuracy to 86%, relative to 80% obtained previously. Secondary structure content is predicted with accuracy comparable to that obtained with spectroscopic methods, such as vibrational or electronic circular dichroism and Fourier transform infrared spectroscopy.

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Year:  1999        PMID: 10328264

Source DB:  PubMed          Journal:  Proteins        ISSN: 0887-3585


  22 in total

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7.  HYPROSP: a hybrid protein secondary structure prediction algorithm--a knowledge-based approach.

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8.  Prediction of the structural motifs of sandwich proteins.

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9.  StrBioLib: a Java library for development of custom computational structural biology applications.

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10.  EM-fold: De novo folding of alpha-helical proteins guided by intermediate-resolution electron microscopy density maps.

Authors:  Steffen Lindert; René Staritzbichler; Nils Wötzel; Mert Karakaş; Phoebe L Stewart; Jens Meiler
Journal:  Structure       Date:  2009-07-15       Impact factor: 5.006

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