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Local feature frequency profile: A method to measure structural similarity in proteins

机译:局部特征频率曲线:一种测量蛋白质结构相似性的方法

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摘要

Measures of structural similarity between known protein structures provide an objective basis for classifying protein folds and for revealing a global view of the protein structure universe. Here, we describe a rapid method to measure structural similarity based on the profiles of representative local features of Cα distance matrices of compared protein structures. We first extract a finite number of representative local feature (LF) patterns from the distance matrices of all protein fold families by medoid analysis. Then, each Cα distance matrix of a protein structure is encoded by labeling all its submatrices by the index of the nearest representative LF patterns. Finally, the structure is represented by the frequency distribution of these indices, which we call the LF frequency (LFF) profile of the protein. The LFF profile allows one to calculate structural similarity scores among a large number of protein structures quickly, and also to construct and update the “map” of the protein structure universe easily. The LFF profile method efficiently maps complex protein structures into a common Euclidean space without prior assignment of secondary structure information or structural alignment.
机译:已知蛋白质结构之间的结构相似性度量为客观蛋白质折叠和揭示蛋白质结构世界的整体观点提供了客观依据。在这里,我们描述了一种基于比较蛋白质结构的Cα距离矩阵的代表性局部特征的特征来测量结构相似性的快速方法。我们首先通过类固醇分析从所有蛋白质折叠家族的距离矩阵中提取有限数量的代表性局部特征(LF)模式。然后,通过用最接近的代表性LF模式的索引标记其所有子矩阵来编码蛋白质结构的每个Cα距离矩阵。最后,结构由这些指标的频率分布表示,我们将其称为蛋白质的LF频率(LFF)谱。 LFF配置文件使人们可以快速计算大量蛋白质结构之间的结构相似性评分,并且可以轻松构建和更新蛋白质结构领域的“图谱”。 LFF配置文件方法有效地将复杂的蛋白质结构映射到一个公共的欧氏空间,而无需事先分配二级结构信息或结构比对。

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