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Classifications of amino acids in proteins by the self-organizing map

机译:自组织地图蛋白质中氨基酸的分类

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We present the clustering properties of amino acids, which are building blocks of proteins, according to their physico-chemical characters. To classify the 20 kinds of amino acids, we employ a Self-Organizing Map (SOM) analysis for the Miyazawa-Jernigan (MJ) pairwise-contact matrix, the Environment-dependent One-body energy Parameters (EOP) and the one-body energy parameters incorporating the Ramachandran angle information (EOPR) over the EOP in proteins. We provide the new result of the SOM clustering for amino acids based on the EOPR and compare that with those from the MJ and the EOP matrix. All three kinds of energy parameters capture the leading role played by the hydrophobicity and the hydrophilicity of amino acids in protein folding. Our SOM analysis generally illustrates that both the EOP and the EOPR can provide the collective clustering of amino acids by the side chain characteristics and the secondary structure information. However, EOP is better at classifying amino acids according to their side chain characteristics whereas EOPR is better with secondary structure. We show that the EOP and the EOPR matrix manifests more detailed physico-chemical classification of amino acids than those from the MJ matrix, which does not contain a local environmental information of amino acids in the protein structures.
机译:我们介绍了氨基酸的聚类性质,其根据它们的物理化学特性,是蛋白质的构建块。为了对20种氨基酸进行分类,我们采用自组织地图(SOM)分析Miyazawa-Jernigan(MJ)成对触点矩阵,环境依赖性一体能量参数(EOP)和一体在蛋白质中的EOP上包含RAMACHANDRAN角度信息(EOPH)的能量参数。我们提供基于EOPH的氨基酸的SOM聚类的新结果,并将其与来自MJ和EOP基质的氨基酸进行比较。所有三种能量参数都捕获了疏水性和氨基酸在蛋白质折叠中的亲水性发挥的主导作用。我们的SOM分析通常说明EOP和EOPH都可以通过侧链特性和二级结构信息提供氨基酸的集体聚类。然而,EOP根据侧链特征对氨基酸进行分类,而EOPH较好地具有二级结构。我们表明EOP和EOPH基质表现出比来自MJ基质的氨基酸的更详细的物理化学分类,其不含蛋白质结构中氨基酸的局部环境信息。

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