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首页> 外文期刊>Journal of Computer-Aided Molecular Design >Fast and accurate methods for predicting short-range constraints in protein models
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Fast and accurate methods for predicting short-range constraints in protein models

机译:快速准确的预测蛋白质模型中短程约束的方法

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摘要

Protein modeling tools utilize many kinds of structural information that may be predicted from amino acid sequence of a target protein or obtained from experiments. Such data provide geometrical constraints in a modeling process. The main aim is to generate the best possible consensus structure. The quality of models strictly depends on the imposed conditions. In this work we present an algorithm, which predicts short-range distances between C alpha atoms as well as a set of short structural fragments that possibly share structural similarity with a query sequence. The only input of the method is a query sequence profile. The algorithm searches for short protein fragments with high sequence similarity. As a result a statistics of distances observed in the similar fragments is returned. The method can be used also as a scoring function or a short-range knowledge-based potential based on the computed statistics.
机译:蛋白质建模工具利用了多种结构信息,这些信息可以从目标蛋白质的氨基酸序列中预测出来,也可以从实验中获得。这样的数据在建模过程中提供了几何约束。主要目的是生成最佳的共识结构。模型的质量严格取决于条件。在这项工作中,我们提出了一种算法,该算法可预测C alpha原子之间的短程距离以及一组可能与查询序列共享结构相似性的短结构片段。该方法的唯一输入是查询序列概要文件。该算法搜索具有高序列相似性的短蛋白片段。结果,返回了在类似片段中观察到的距离的统计数据。该方法还可以用作计分函数或基于计算出的统计量的基于知识的短程潜力。

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