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CHORAL: a differential geometry approach to the prediction of the cores of protein structures

机译:合唱:预测蛋白质结构核心的微分几何方法

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Motivation: Although the cores of homologous proteins are relatively well conserved, amino acid substitutions lead to significant differences in the structures of divergent superfamilies. Thus, the classification of amino acid sequence patterns and the selection of appropriate fragments of the protein cores of homologues of known structure are important for accurate comparative modelling. Results: CHORAL utilizes a knowledge-based method comprising an amalgam of differential geometry and pattern recognition algorithms to identify conserved structural patterns in homologous protein families. Propensity tables are used to classify and to select patterns that most likely represent the structure of the core for a target protein. In our benchmark, CHORAL demonstrates a performance equivalent to that Of MODELLER.
机译:动机:尽管同源蛋白的核心相对保守,但是氨基酸取代导致不同超家族结构的显着差异。因此,氨基酸序列模式的分类和已知结构同源物蛋白核的适当片段的选择对于精确的比较建模很重要。结果:CHORAL利用了一种基于知识的方法,该方法包括不同几何形状的汞齐和模式识别算法,以识别同源蛋白质家族中保守的结构模式。倾向表用于分类和选择最有可能代表目标蛋白质核心结构的模式。在我们的基准测试中,CHORAL表现出与MODELLER相同的性能。

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