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Network Motif-Based Identification of Breast Cancer Susceptibility Genes

机译:基于网络母癌易感基因的基于网络基因型鉴定

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Identifying breast cancer susceptibility genes is one of the key challenges in breast cancer research. Conventional gene-based approaches can identify patterns of gene activity that sub-classify tumors, by which genes with known breast cancer mutations are typically not detected. In this study, we present a novel network motif-based approach that integrates biological network topology and high-throughput gene expression data to identify markers not as individual genes but as network motifs. We observed that the network motifs are more reproducible than individual marker genes selected without biological network information, and that they achieve higher accuracy in the classification of metastatic versus non-metastatic tumors.
机译:鉴定乳腺癌易感性基因是乳腺癌研究中的关键挑战之一。常规基因的方法可以识别亚分类肿瘤的基因活性模式,通常未检测到具有已知乳腺癌突变的基因。在这项研究中,我们提出了一种基于新的网络主题的方法,其集成了生物网络拓扑和高通量基因表达数据,以识别不像单独基因的标记,而是作为网络图案。我们观察到网络图案比没有生物网络信息的单独标记基因更可重复,并且它们在转移性与非转移性肿瘤的分类中获得更高的准确性。

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