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A protein-dependent side-chain rotamer library.

机译:蛋白质依赖性侧链旋转异构体文库。

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摘要

Protein side-chain packing problem has remained one of the key open problems in bioinformatics. The three main components of protein side-chain prediction methods are a rotamer library, an energy function and a search algorithm. Rotamer libraries summarize the existing knowledge of the experimentally determined structures quantitatively. Depending on how much contextual information is encoded, there are backbone-independent rotamer libraries and backbone-dependent rotamer libraries. Backbone-independent libraries only encode sequential information, whereas backbone-dependent libraries encode both sequential and locally structural information. However, side-chain conformations are determined by spatially local information, rather than sequentially local information. Since in the side-chain prediction problem, the backbone structure is given, spatially local information should ideally be encoded into the rotamer libraries. In this paper, we propose a new type of backbone-dependent rotamer library, which encodes structural information of all the spatially neighboring residues. We call it protein-dependent rotamer libraries. Given any rotamer library and a protein backbone structure, we first model the protein structure as a Markov random field. Then the marginal distributions are estimated by the inference algorithms, without doing global optimization or search. The rotamers from the given library are then re-ranked and associated with the updated probabilities. Experimental results demonstrate that the proposed protein-dependent libraries significantly outperform the widely used backbone-dependent libraries in terms of the side-chain prediction accuracy and the rotamer ranking ability. Furthermore, without global optimization/search, the side-chain prediction power of the protein-dependent library is still comparable to the global-search-based side-chain prediction methods.
机译:蛋白质侧链包装问题仍然是生物信息学中的关键开放问题之一。蛋白质侧链预测方法的三个主要组成部分是旋转异构体库,能量函数和搜索算法。 Rotamer库可定量总结实验确定的结构的现有知识。根据编码了多少上下文信息,有独立于主干的旋转异构体库和依赖于主干的旋转异构体库。独立于主干的库仅编码顺序信息,而独立于主干的库编码顺序信息和局部结构信息。但是,侧链构象由空间局​​部信息而不是顺序局部信息确定。由于在侧链预测问题中给出了主干结构,因此理想情况下应将空间局部信息编码到rotamer库中。在本文中,我们提出了一种新型的依赖于骨架的旋转异构体文库,该文库编码了所有空间相邻残基的结构信息。我们称其为蛋白质依赖性旋转异构体文库。给定任何旋转异构体文库和蛋白质骨架结构,我们首先将蛋白质结构建模为马尔可夫随机场。然后,通过推理算法估算边际分布,而无需进行全局优化或搜索。然后,将给定库中的旋转程序重新排序,并与更新的概率相关联。实验结果表明,提出的蛋白质依赖性文库在侧链预测准确性和旋转异构体分级能力方面明显优于广泛使用的骨架依赖性文库。此外,如果没有全局优化/搜索,则依赖蛋白质的文库的侧链预测能力仍可与基于全局搜索的侧链预测方法媲美。

著录项

  • 作者

    Bhuyan M.S.; Gao Xin;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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