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首页> 外文期刊>Scientific reports. >A novel heterogeneous network-based method for drug response prediction in cancer cell lines
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A novel heterogeneous network-based method for drug response prediction in cancer cell lines

机译:基于新型的基于网络的癌细胞系中药物反应预测方法

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An enduring challenge in personalized medicine lies in selecting a suitable drug for each individual patient. Here we concentrate on predicting drug responses based on a cohort of genomic, chemical structure, and target information. Therefore, a recently study such as GDSC has provided an unprecedented opportunity to infer the potential relationships between cell line and drug. While existing approach rely primarily on regression, classification or multiple kernel learning to predict drug responses. Synthetic approach indicates drug target and protein-protein interaction could have the potential to improve the prediction performance of drug response. In this study, we propose a novel heterogeneous network-based method, named as HNMDRP, to accurately predict cell line-drug associations through incorporating heterogeneity relationship among cell line, drug and target. Compared to previous study, HNMDRP can make good use of above heterogeneous information to predict drug responses. The validity of our method is verified not only by plotting the ROC curve, but also by predicting novel cell line-drug sensitive associations which have dependable literature evidences. This allows us possibly to suggest potential sensitive associations among cell lines and drugs. Matlab and R codes of HNMDRP can be found at following .
机译:个性化医学中的持久挑战在于为每个患者选择合适的药物。在这里,我们专注于基于基因组,化学结构和目标信息队列预测药物反应。因此,最近的学习,如GDSC提供了前所未有的机会,以推断细胞系和药物之间的潜在关系。虽然现有方法主要依赖于回归,分类或多个内核学习来预测药物反应。合成方法表明药物靶标,蛋白质 - 蛋白质相互作用可能具有改善药物反应预测性能的潜力。在这项研究中,我们提出了一种新的异构网络基础方法,命名为HNMDRP,以准确地预测细胞系药物关联,通过掺入细胞系,药物和靶标的异质性关系。与以前的研究相比,HNMDRP可以良好地利用上述异质信息来预测药物反应。我们的方法的有效性不仅通过绘制ROC曲线来验证,而且还通过预测具有可靠文献证据的新型细胞线 - 药物敏感关联。这使我们可能暗示细胞系和药物之间的潜在敏感关联。 MATLAB和R码HNMDRP可以在下面找到。

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