MIAX:: A new paradigm for modeling biomacromolecular interactions and complex formation in condensed phases

被引:11
作者
Del Carpio-Muñoz, CA [1 ]
Ichiishi, E
Yoshimori, A
Yoshikawa, T
机构
[1] Toyohashi Univ Technol, Dept Ecol Engn, Lab Bioinformat, Tempaku Ku, Toyohashi, Aichi 4418580, Japan
[2] Kyoto Prefectural Univ, Dept Med 1, Kamigyo Ku, Kyoto 606, Japan
来源
PROTEINS-STRUCTURE FUNCTION AND GENETICS | 2002年 / 48卷 / 04期
关键词
protein interaction; protein complex; simulated annealing; self-organizing map or Kohonenen networks; docking; epitopes; modeling; filtering;
D O I
10.1002/prot.10122
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A new paradigm is proposed for modeling biomacromolecular interactions and complex formation in solution (protein-protein interactions so far in this report) that constitutes the scaffold of the automatic system MIAX (acronym for Macromolecular Interaction Assessment X). It combines in a rational way a series of computational methodologies, the goal being the prediction of the most native-like protein complex that may be formed when two isolated (unbound) protein monomers interact in a liquid environment. The overall strategy consists of first inferring putative precomplex structures by identification of binding sites or epitopes on the proteins surfaces and a simultaneous rigid-body docking process using geometric instances alone. Precomplex configurations are defined here as all those decoys the interfaces of which comply substantially with the inferred binding sites and whose free energy values are lower. Retaining all those precomplex configurations with low energies leads to a reasonable number of decoys for which a flexible treatment is amenable. A novel algorithm is introduced here for automatically inferring binding sites in proteins given their 3-D structure. The procedure combines an unsupervised learning algorithm based on the self-organizing map or Kohonen network with a 2-D Fourier spectral analysis. To model interaction, the potential function pro. posed here plays a central role in the system and is constituted by empirical terms expressing well-characterized factors influencing biomacromolecular interaction processes, essentially electrostatic, van der Waals, and hydrophobic. Each of these procedures is validated by comparing results with observed instances. Finally, the more demanding process of flexible docking is performed in MIAX embedding the potential function in a simulated annealing optimization procedure. Whereas search of the entire configuration hyperspace is a major factor precluding hitherto systems from efficiently modeling macromolecular interaction modes and complex structures, the paradigm presented here may constitute a step forward in the field because it is shown that a rational treatment of the information available from the 3-D structure of the interacting monomers combined with conveniently selected computational techniques can assist to elude search of regions of low probability inconfiguration space and indeed lead to a highly efficient system oriented to solve this intriguing and fundamental biologic problem. Proteins 20-02;48:696-732. (C) 2002 Wiley-Liss, Inc.
引用
收藏
页码:696 / 732
页数:37
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