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基于结构类别的球状蛋白质二级结构含量预测。

Prediction of the secondary structure content of globular proteins based on structural classes.

作者信息

Zhang C T, Zhang Z, He Z

机构信息

Department of Physics, Tianjin University, China.

出版信息

J Protein Chem. 1996 Nov;15(8):775-86. doi: 10.1007/BF01887152.

Abstract

The prediction of the secondary structure content (alpha-helix and beta-strand content) of a globular protein may play an important complementary role in the prediction of the protein's structure. We propose a new prediction algorithm based on Chou's database [Chou (1995), Proteins Struct. Funct. Genet. 21, 319]. The new algorithm is an improved multiple linear regression method, taking the nonlinear and coupling terms of the frequencies of different amino acids into account. The prediction is also based on the structural classes of proteins. A resubstitution examination for the algorithm shows that the average errors are 0.040 and 0.033 for the prediction of alpha-helix content and beta-strand content, respectively. The examination of cross-validation, the jackknife analysis, shows that the average errors are 0.051 and 0.044 for the prediction of alpha-helix content and beta-strand content, respectively. Both examinations indicate the self-consistency and the extrapolative effectiveness of the new algorithm. Compared with the other methods available currently, our method has the merits of simplicity and convenience for use, as well as a high prediction accuracy. By incorporating the prediction of the structural classes, the only input of our method is the amino acid composition of the protein to be predicted.

摘要

预测球状蛋白质的二级结构含量(α-螺旋和β-链含量)在蛋白质结构预测中可能发挥重要的补充作用。我们基于周的数据库[周(1995年),《蛋白质结构、功能与遗传学》21卷,319页]提出了一种新的预测算法。新算法是一种改进的多元线性回归方法,考虑了不同氨基酸频率的非线性和耦合项。该预测还基于蛋白质的结构类别。对该算法的回代检验表明,预测α-螺旋含量和β-链含量的平均误差分别为0.040和0.033。交叉验证检验(留一法分析)表明,预测α-螺旋含量和β-链含量的平均误差分别为0.051和0.044。两种检验均表明新算法的自洽性和外推有效性。与目前可用的其他方法相比,我们的方法具有使用简单方便以及预测准确率高的优点。通过纳入结构类别的预测,我们方法的唯一输入是待预测蛋白质的氨基酸组成。

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