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首页> 外文期刊>Molecules and cells >A Pathway-Based Classification of Breast Cancer Integrating Data on Differentially Expressed Genes, Copy Number Variations and MicroRNA Target Genes
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A Pathway-Based Classification of Breast Cancer Integrating Data on Differentially Expressed Genes, Copy Number Variations and MicroRNA Target Genes

机译:一种基于途径的乳腺癌分类,含有差异表达基因的数据,拷贝数变异和MicroRNA靶基因

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Breast cancer is a clinically heterogeneous disease char-acterized by distinct molecular aberrations. Under-standing the heterogeneity and identifying subgroups of breast cancer are essential to improving diagnoses and predicting therapeutic responses. In this paper, we pro-pose a classification scheme for breast cancer which integrates data on differentially expressed genes (DEGs), copy number variations (CNVs) and microRNAs (miRNAs)-regulated mRNAs. Pathway information based on the estimation of molecular pathway activity is also applied as a postprocessor to optimize the classifier. A total of 250 malignant breast tumors were analyzed by k-means clustering based on the patterns of the expression profiles of 215 intrinsic genes, and the classification performances were compared with existing breast cancer classifiers including the BluePrint and the 625-gene classifier. We show that a classification scheme which incorporates pathway information with various genetic variations achieves better per-formance than classifiers based on the expression levels of individual genes, and propose that the identified signature serves as a basic tool for identifying rational therapeutic opportunities for breast cancer patients.
机译:乳腺癌是临床上异质疾病,通过不同的分子像素作用。站立的异质性和鉴定乳腺癌的亚组对于改善诊断和预测治疗反应至关重要。在本文中,我们提出了乳腺癌的分类方案,其将数据整合在差异表达基因(DEGS),拷贝数变异(CNV)和MicroRNA(MiRNA) - 推出的MRNA上。基于分子途径活动估计的途径信息也应用为后处理器以优化分类器。通过基于215个内在基因的表达谱的图案来分析总共250个恶性乳腺肿瘤,并将分类性能与包括蓝图和625-基因分类器的现有乳腺癌分类器进行比较。我们表明,基于个体基因的表达水平,掺入具有各种遗传变异的途径信息的分类方案比分类剂更好地实现了比分类器更好,并提出所识别的签名作为鉴定乳腺癌患者合理治疗机会的基本工具。

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