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A knowledge-based genetic algorithm to predict three-dimensional structures of polypeptides

机译:基于知识的遗传算法预测多肽的三维结构

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Three-dimensional (3-D) protein structure determination has become an important area of research in structural bioinformatics. Proteins are responsible for the execution of different functions in the cell. Understanding the 3-D structure provides important information about the protein function. Many computational methodologies for the protein structure prediction were developed along the last 20 years, but the problem still challenges researchers because the complexity and high dimensionality of its large search space. In this article we present a strategy for reducing the search space explored by heuristic methods for solving the problem taken into consideration previous occurrences of amino acid residues in a well known protein database (PDB). We propose a genetic algorithm that takes advantages of this kind of information, reducing considerable the search space, allowing the algorithm to save time with less promising solutions. A simple Local Search operator helps the GA to intensify the search of the 3-D protein conformational space. We demonstrate the effectiveness of the strategy with a set of experimental results.
机译:三维(3-D)蛋白质结构测定已成为结构生物信息学的重要研究领域。蛋白质负责在细胞中执行不同功能。了解三维结构提供有关蛋白质功能的重要信息。在过去的20年里,许多蛋白质结构预测的计算方法是在过去的20年中开发的,但问题仍然挑战研究人员,因为它的大搜索空间的复杂性和高度。在本文中,我们提出了一种减少启发式方法探索的搜索空间来解决众所周知的蛋白质数据库(PDB)中氨基酸残基的问题探索的搜索空间的策略。我们提出了一种遗传算法,可利用这种信息,减少了相当大的搜索空间,允许算法节省时间较少有前景的解决方案。一个简单的本地搜索操作员有助于GA加强搜索3-D蛋白构象空间。我们展示了一系列实验结果的策略的有效性。

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