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Functional modules with disease discrimination abilities for various cancers

机译:具有对多种癌症的疾病识别能力的功能模块

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Selecting differentially expressed genes (DEGs) is one of the most important tasks in microarray applications for studying multi-factor diseases including cancers. However, the small samples typically used in current microarray studies may only partially reflect the widely altered gene expressions in complex diseases, which would introduce low reproducibility of gene lists selected by statistical methods. Here, by analyzing seven cancer datasets, we showed that, in each cancer, a wide range of functional modules have altered gene expressions and thus have high disease classification abilities. The results also showed that seven modules are shared across diverse cancers, suggesting hints about the common mechanisms of cancers. Therefore, instead of relying on a few individual genes whose selection is hardly reproducible in current microarray experiments, we may use functional modules as functional signatures to study core mechanisms of cancers and build robust diagnostic classifiers.
机译:在研究包括癌症在内的多因素疾病的微阵列应用中,选择差异表达基因(DEG)是最重要的任务之一。但是,当前微阵列研究中通常使用的小样本可能仅部分反映复杂疾病中广泛表达的基因表达,这将导致通过统计方法选择的基因列表的低可重复性。在这里,通过分析七个癌症数据集,我们发现,在每种癌症中,各种各样的功能模块改变了基因表达,因此具有很高的疾病分类能力。结果还表明,在多种癌症中共有七个模块,这提示了癌症的常见机制。因此,我们可以依靠功能模块作为功能标记来研究癌症的核心机制,并建立可靠的诊断分类器,而不是依赖于其选择在当前的微阵列实验中难以再现的个别基因。

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