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Concurrent analysis of copy number variation and gene expression: Application in paired non-smoking female lung cancer patients

机译:拷贝数变异和基因表达的同时分析:在成对非吸烟女性肺癌患者中的应用

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摘要

Recent studies indicate that both genomic alterations and transcriptional dysregulation influence the disease progresses. This study proposes a method identifying pathways by integrating copy numbers (CN), gene expressions (GE) and their correlations. A lung cancer patients dataset with both normal and tumor tissues is utilized to evaluate the performance of the proposed method. To further appraise the predicting abilities of those pathways, these patients are classified by support vector machines. Based on the classification results, pathways integrating CN, GE and their correlations is more informative and biologically meaningful and perform better than pathways obtained by only CN or only GE.
机译:最近的研究表明,基因组改变和转录失调都会影响疾病的进展。这项研究提出了一种通过整合拷贝数(CN),基因表达(GE)及其相关性来鉴定途径的方法。具有正常和肿瘤组织的肺癌患者数据集用于评估所提出方法的性能。为了进一步评估这些途径的预测能力,通过支持向量机对这些患者进行分类。根据分类结果,整合CN,GE及其相关性的途径比仅通过CN或仅通过GE获得的途径更具信息性和生物学意义,并且表现更好。

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