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An ensemble method for querying gene expression compendia with experimental lists

机译:一种用实验表查询基因表达谱的整体方法

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Query-based biclustering can be used to explore public gene expression data for genes coexpressed with genes of interest to a certain researcher (the query). These methods, however, fail when faced with a list of query-genes with diverse expression profiles. In addition, a threshold on the minimal coexpression with the query-genes needs to be defined in advance. To deal with these problems we introduce an ensemble approach for query-based biclustering. The method relies on a specifically designed consensus matrix in which the biclustering outcomes for multiple query-genes and for different possible coexpression thresholds are merged in a statistically robust way. Graph clustering is used to obtain non-redundant consensus biclusters from this matrix. We tested out different ensemble construction schemes and illustrate the effectiveness of this approach.
机译:基于查询的双聚类分析可用于探索与特定研究人员(查询)感兴趣的基因共表达的基因的公共基因表达数据。但是,这些方法在遇到具有不同表达特征的查询基因列表时会失败。另外,需要预先定义与查询基​​因的最小共表达阈值。为了解决这些问题,我们为基于查询的二元聚类引入了一种集成方法。该方法依赖于专门设计的共识矩阵,其中以统计稳健的方式合并了多个查询基因和不同可能的共表达阈值的双聚类结果。图聚类用于从该矩阵中获得非冗余共有双聚类。我们测试了不同的集成构建方案,并说明了此方法的有效性。

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