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PepBio: predicting the bioactivity of host defense peptides

机译:PepBio:预测宿主防御肽的生物活性

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Host defense peptides (HDPs) represents a class of ubiquitous and rapid responding immune molecules capable of direct inactivation of a wide range of pathogens. Recent research has shown HDPs to be promising candidates for development as a novel class of broad-spectrum chemotherapeutic agent that is effective against both pathogenic microbes and malignant neoplasm. This study aims to quantitatively explore the relationship between easy-to-interpret amino acid composition descriptors of HDPs with their respective bioactivities. Classification models were constructed using the C4.5 decision tree and random forest classifiers. Good predictive performance was achieved as deduced from the accuracy, sensitivity and specificity in excess of 90% and Matthews correlation coefficient in excess of 0.5 for all three evaluated data subsets (e.g. training, 10-fold cross-validation and external validation sets). The source code and data set used for the construction of classification models are available on GitHub at https://github.com/chaninn/pepbio/.
机译:宿主防御肽(HDP)代表了一类普遍存在的快速反应的免疫分子,能够直接使多种病原体失活。最近的研究表明,HDPs作为一类新型的广谱化学治疗剂有望发展,该化学治疗剂对病原微生物和恶性肿瘤均有效。这项研究旨在定量探讨HDP的易于解释的氨基酸组成描述符与它们各自的生物活性之间的关系。使用C4.5决策树和随机森林分类器构建分类模型。对所有三个评估数据子集( eg 训练,10倍交叉验证)的准确性,敏感性和特异性均超过90%,Matthews相关系数超过0.5,得出了良好的预测性能和外部验证集)。用于构建分类模型的源代码和数据集可在GitHub上找到,网址为https://github.com/chaninn/pepbio/。

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