A stability-based algorithm to validate hierarchical clusters of genes

R. Avogadri, Matteo Brioschi, F. Ferrazzi, M. Ré, A. Beghini, G. Valentini
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引用次数: 3

Abstract

Stability-based methods have been successfully applied in functional genomics to the analysis of the reliability of clusterings characterised by a relatively low number of examples and clusters. The application of these methods to the validation of gene clusters discovered in biomolecular data may lead to computational problems due to the large amount of possible clusters involved. To address this problem, we present a stability-based algorithm to discover significant clusters in hierarchical clusterings with a large number of examples and clusters. The reliability of clusters of genes discovered in gene expression data of patients affected by human myeloid leukaemia is analysed through the proposed algorithm, and their relationships with specific biological processes are tested by means of Gene Ontology-based functional enrichment methods.
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一种基于稳定性的基因分级簇验证算法
基于稳定性的方法已经成功地应用于功能基因组学中,以相对较少数量的例子和聚类为特征的聚类的可靠性分析。将这些方法应用于生物分子数据中发现的基因簇的验证可能会由于涉及大量可能的簇而导致计算问题。为了解决这个问题,我们提出了一种基于稳定性的算法来发现具有大量示例和聚类的分层聚类中的重要聚类。通过本文提出的算法分析了人髓性白血病患者基因表达数据中发现的基因簇的可靠性,并通过基于gene ontology的功能富集方法测试了它们与特定生物过程的关系。
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