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DSS: A biclustering method to identify diverse and state specific gene modules in gene expression data

机译:DSS:一种鉴定基因表达数据中不同和状态特异性基因模块的BICLUSTING方法

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The biclustering method is a useful co-clustering technique to identify biologically relevant gene modules. In this paper, we propose a novel method to find not only functionally-related gene modules but also state specific gene modules by applying a genetic algorithm to gene expression data. To identify these gene modules, the proposed method finds biclusters in which genes are statistically overexpressed or under expressed, and are differentially-expressed in the samples in the bicluster compared to the samples not in the bicluster. In addition, we improve the genetic algorithm by adding a selection pool for preserving the diversity of the population. The resulting gene modules exhibit better performances than comparative methods in the GO (Gene Ontology) term enrichment test and an analysis connection between gene modules and disease. This is especially the case with gene modules that receive the highest score in the breast cancer dataset; they are closely linked to the ribosome pathway. Recent studies show that dysregulation of ribosome biogenesis is associated with breast tumor progression.
机译:双板化方法是一种有用的共聚类技术,用于鉴定生物相关的基因模块。在本文中,我们提出了一种新的方法,不仅可以通过将遗传算法应用于基因表达数据来找到功能相关的基因模块,而且还可以发现特定的基因模块。为了鉴定这些基因模块,所提出的方法发现基因在统计学上过表达或表达的基因,并且与不在双板上的样品相比,在双板的样品中差异地表达。此外,我们通过添加选择池来改善遗传算法,以保留人口的多样性。所得基因模块比Go(基因本体论)术语富集试验中的比较方法表现出更好的性能和基因模块和疾病之间的分析连接。尤其如此,基因模块接受乳腺癌数据集的最高分数;它们与核糖体途径密切相关。最近的研究表明,核糖体生物发生的失调与乳腺肿瘤进展有关。

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