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Predicting the insurgence of human genetic diseases associated to single point protein mutations with support vector machines and evolutionary information

机译:使用支持向量机和进化信息预测与单点蛋白质突变相关的人类遗传疾病的暴发

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Motivation: Human single nucleotide polymorphisms (SNPs) are the most frequent type of genetic variation in human population. One of the most important goals of SNP projects is to understand which human genotype variations are related to Mendelian and complex diseases. Great interest is focused on non-synonymous coding SNPs (nsSNPs) that are responsible of protein single point mutation. nsSNPs can be neutral or disease associated. It is known that the mutation of only one residue in a protein sequence can be related to a number of pathological conditions of dramatic social impact such as Altzheimer's, Parkinson's and Creutzfeldt-Jakob's diseases. The quality and completeness of presently available SNPs databases allows the application of machine learning techniques to predict the insurgence of human diseases due to single point protein mutation starting from the protein sequence.
机译:动机:人类单核苷酸多态性(SNP)是人类群体中最常见的遗传变异类型。 SNP项目的最重要目标之一是了解哪些人类基因型变异与孟德尔疾病和复杂疾病有关。引起极大兴趣的是负责蛋白质单点突变的非同义编码SNP(nsSNP)。 nsSNP可以是中性的或与疾病有关。众所周知,蛋白质序列中仅一个残基的突变可能与许多具有重大社会影响的病理状况有关,例如阿尔茨海默氏病,帕金森氏病和克雅氏病。当前可用的SNP数据库的质量和完整性允许使用机器学习技术来预测由于从蛋白质序列开始的单点蛋白质突变而导致的人类疾病的复发。

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