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Enhanced Co-Expression Extrapolation (COXEN) Gene Selection Method for Building Anti-Cancer Drug Response Prediction Models

机译:增强的共同表达外推(Coxen)基因选择方法用于建立抗癌药物反应预测模型

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摘要

The co-expression extrapolation (COXEN) method has been successfully used in multiple studies to select genes for predicting the response of tumor cells to a specific drug treatment. Here, we enhance the COXEN method to select genes that are predictive of the efficacies of multiple drugs for building general drug response prediction models that are not specific to a particular drug. The enhanced COXEN method first ranks the genes according to their prediction power for each individual drug and then takes a union of top predictive genes of all the drugs, among which the algorithm further selects genes whose co-expression patterns are well preserved between cancer cases for building prediction models. We apply the proposed method on benchmark in vitro drug screening datasets and compare the performance of prediction models built based on the genes selected by the enhanced COXEN method to that of models built on genes selected by the original COXEN method and randomly picked genes. Models built with the enhanced COXEN method always present a statistically significantly improved prediction performance (adjusted p-value ≤ 0.05). Our results demonstrate the enhanced COXEN method can dramatically increase the power of gene expression data for predicting drug response.
机译:在多项研究中成功地使用了共表达外推(Coxen)方法,以选择用于预测肿瘤细胞对特定药物治疗的响应的基因。在这里,我们增强了选择用于构建不特异于特定药物的一般药物反应预测模型的多种药物的效果的基因的基因。增强型Coxen方法首先根据每个单独药物的预测能力排列基因,然后采用所有药物的顶部预测基因的联合,其中算法进一步选择了其共表达模式在癌症病例之间保存的基因建设预测模型。我们在体外药物筛查数据集上应用提出的方法,并比较基于由增强的Coxen方法选择的基因构建的预测模型对由原始Coxen方法选择的基因的模型和随机挑选的基因进行了比较。采用增强型Coxen方法构建的型号始终呈现统计上显着改善的预测性能(调整后的P值≤0.05)。我们的结果证明了增强的Coxen方法可以显着增加基因表达数据的力量以预测药物反应。

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