简化模型对蛋白质结构预测有多好?

Q1 Biochemistry, Genetics and Molecular Biology Advances in Bioinformatics Pub Date : 2014-01-01 Epub Date: 2014-04-29 DOI:10.1155/2014/867179
Swakkhar Shatabda, M A Hakim Newton, Mahmood A Rashid, Duc Nghia Pham, Abdul Sattar
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引用次数: 14

摘要

几十年来,蛋白质结构预测一直是计算生物学中最具挑战性的问题之一。挑战主要是由于全原子细节的复杂性和能量函数的未知性质。因此,研究人员使用简化的能量模型,只考虑离散晶格上接触的氨基酸单体之间的相互作用势。晶格和能量模型的有限性给模型的评估带来了双重问题。当结构映射到晶格时,能得到一个原生结构或一个非常接近的结构吗?离散晶格上基于接触的能量模型能指导对原生结构的搜索吗?在本文中,我们使用蛋白质链晶格拟合(PCLF)问题来解决第一个问题;我们开发了一种基于约束的局部搜索算法来解决立方和面心立方晶格的PCLF问题,并找到了非常接近的晶格拟合的本地结构。对于第二个问题,我们使用了许多技术来对构象空间进行采样,并找到基于晶格的结构与天然结构的能量函数和均方根偏差(RMSD)距离之间的相关性。我们的分析揭示了在PSP中流行的几种基于接触的能量模型的弱点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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How good are simplified models for protein structure prediction?

Protein structure prediction (PSP) has been one of the most challenging problems in computational biology for several decades. The challenge is largely due to the complexity of the all-atomic details and the unknown nature of the energy function. Researchers have therefore used simplified energy models that consider interaction potentials only between the amino acid monomers in contact on discrete lattices. The restricted nature of the lattices and the energy models poses a twofold concern regarding the assessment of the models. Can a native or a very close structure be obtained when structures are mapped to lattices? Can the contact based energy models on discrete lattices guide the search towards the native structures? In this paper, we use the protein chain lattice fitting (PCLF) problem to address the first concern; we developed a constraint-based local search algorithm for the PCLF problem for cubic and face-centered cubic lattices and found very close lattice fits for the native structures. For the second concern, we use a number of techniques to sample the conformation space and find correlations between energy functions and root mean square deviation (RMSD) distance of the lattice-based structures with the native structures. Our analysis reveals weakness of several contact based energy models used that are popular in PSP.

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来源期刊
Advances in Bioinformatics
Advances in Bioinformatics Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (miscellaneous)
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