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Protein function prediction using neighbor relativity in protein-protein interaction network

机译:蛋白质-蛋白质相互作用网络中基于邻居相关性的蛋白质功能预测

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摘要

There is a large gap between the number of discovered proteins and the number of functionally annotated ones. Due to the high cost of determining protein function by wet-lab research, function prediction has become a major task for computational biology and bioinformatics. Some researches utilize the proteins interaction information to predict function for un-annotated proteins. In this paper, we propose a novel approach called "Neighbor Relativity Coefficient" (NRC) based on interaction network topology which estimates the functional similarity between two proteins. NRC is calculated for each pair of proteins based on their graph-based features including distance, common neighbors and the number of paths between them. In order to ascribe function to an un-annotated protein, NRC estimates a weight for each neighbor to transfer its annotation to the unknown protein. Finally, the unknown protein will be annotated by the top score transferred functions. We also investigate the effect of using different coefficients for various types of functions. The proposed method has been evaluated on Saccharomyces cerevisiae and Homo sapiens interaction networks. The performance analysis demonstrates that NRC yields better results in comparison with previous protein function prediction approaches that utilize interaction network.
机译:在发现的蛋白质数量与功能注释的蛋白质数量之间有很大的差距。由于通过湿实验室研究确定蛋白质功能的成本很高,因此功能预测已成为计算生物学和生物信息学的主要任务。一些研究利用蛋白质相互作用信息来预测未注释蛋白质的功能。在本文中,我们基于相互作用网络拓扑结构提出了一种称为“邻居相对系数”(NRC)的新颖方法,该方法可估算两种蛋白质之间的功能相似性。 NRC是根据每对蛋白质的基于图的特征(包括距离,共同邻居和它们之间的路径数)计算得出的。为了将功能赋予未注释的蛋白质,NRC估计了每个邻居的权重,以将其注释传递给未知蛋白质。最后,未知蛋白将由最高分转移函数进行注释。我们还研究了对各种类型的函数使用不同系数的影响。该方法已在啤酒酵母和智人相互作用网络上进行了评估。性能分析表明,与以前利用相互作用网络的蛋白质功能预测方法相比,NRC产生更好的结果。

著录项

  • 来源
    《Computational biology and chemistry》 |2013年第4期|11-16|共6页
  • 作者单位

    Database Research Croup, Control and Intelligent Processing Center of Excellence, School of Electrical and Computer Engineering, University College of Engineering, University of Tehran, Tehran, Iran;

    Database Research Croup, Control and Intelligent Processing Center of Excellence, School of Electrical and Computer Engineering, University College of Engineering, University of Tehran, Tehran, Iran;

    Medicinal and Natural Products Chemistry Research Center, Shiraz University of Medical Science, P.O. Box 71345-3388, Shiraz, Iran Department of Bioinformatics, Institute of Biochemistry and Biophysics, University of Tehran, Tehran, Iran;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Protein function prediction; Neighbor Relativity Coefficient; Path connectivity; Protein-protein interaction network;

    机译:蛋白质功能预测;邻居相对系数;路径连通性;蛋白质相互作用网络;

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