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SAAS: Short Amino Acid Sequence - A Promising Protein Secondary Structure Prediction Method of Single Sequence

机译:SAAS:短氨基酸序列-单序列的有前途的蛋白质二级结构预测方法

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In statistical methods of predicting protein secondary structure, many researchers focus on single amino acid frequencies in α-helices, β-sheets, and so on, or the impact near amino acids on an amino acid forming a secondary structure. But the paper considers a short sequence of amino acids (3, 4, 5 or 6 amino acids) as integer, and statistics short sequence's probability forming secondary structure. Also, many researchers select low homologous sequences as statistical database. But this paper select whole PDB database. In this paper we propose a strategy to predict protein secondary structure using simple statistical method. Numerical computation shows that, short amino acids sequence as integer to statistics, which can easy see trend of short sequence forming secondary structure, and it will work well to select large statistical database (whole PDB database) without considering homologous, and Q3 accuracy is ~74% using this paper proposed simple statistical method, but accuracy of others statistical methods is less than 70%.
机译:在预测蛋白质二级结构的统计方法中,许多研究人员专注于α螺旋,β折叠等中的单个氨基酸频率,或接近氨基酸对形成二级结构的氨基酸的影响。但是,本文将氨基酸的短序列(3、4、5或6个氨基酸)视为整数,并统计了短序列形成二级结构的概率。同样,许多研究人员选择低同源序列作为统计数据库。但是本文选择了整个PDB数据库。在本文中,我们提出了一种使用简单统计方法预测蛋白质二级结构的策略。数值计算表明,短氨基酸序列作为统计的整数,可以很容易地看出短序列形成二级结构的趋势,选择大型的统计数据库(整个PDB数据库)而不考虑同源性会很好,Q3的准确度为〜 74%的人使用本文提出了简单的统计方法,但其他统计方法的准确度不到70%。

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