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Scoring Amino Acid Mutations to Predict Avian-to-Human Transmission of Avian Influenza Viruses

机译:计分氨基酸突变以预测禽流感病毒在人与人之间的传播

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摘要

Avian influenza virus (AIV) can directly cross species barriers and infect humans with high fatality. Using machine learning methods, the present paper scores the amino acid mutations and predicts interspecies transmission. Initially, 183 signature positions in 11 viral proteins were screened by the scores of five amino acid factors and their random forest rankings. The most important amino acid factor (Factor 3) and the minimal range of signature positions (50 amino acid residues) were explored by a supporting vector machine (the highest-performing classifier among four tested classifiers). Based on these results, the avian-to-human transmission of AIVs was analyzed and a prediction model was constructed for virology applications. The distributions of human-origin AIVs suggested that three molecular patterns of interspecies transmission emerge in nature. The novel findings of this paper provide important clues for future epidemic surveillance.
机译:禽流感病毒(AIV)可以直接越过物种壁垒并以高致死率感染人类。本文使用机器学习方法对氨基酸突变进行评分并预测种间传播。最初,通过5种氨基酸因子的得分及其随机森林排名来筛选​​11种病毒蛋白中的183个特征位。通过支持向量机(四个测试分类器中性能最高的分类器)探索了最重要的氨基酸因子(因子3)和最小范围的签名位置(50个氨基酸残基)。基于这些结果,分析了禽流感病毒在人与人之间的传播,并构建了用于病毒学应用的预测模型。人类起源的禽流感的分布表明自然界中出现了三种物种间传播的分子模式。本文的新颖发现为将来的流行病监测提供了重要的线索。

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