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Gene selection and clustering for time-course and dose-response microarray experiments using order-restricted inference.

机译:时间顺序和剂量响应微阵列实验的基因选择和聚类,使用顺序受限推理。

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We propose an algorithm for selecting and clustering genes according to their time-course or dose-response profiles using gene expression data. The proposed algorithm is based on the order-restricted inference methodology developed in statistics. We describe the methodology for time-course experiments although it is applicable to any ordered set of treatments. Candidate temporal profiles are defined in terms of inequalities among mean expression levels at the time points. The proposed algorithm selects genes when they meet a bootstrap-based criterion for statistical significance and assigns each selected gene to the best fitting candidate profile. We illustrate the methodology using data from a cDNA microarray experiment in which a breast cancer cell line was stimulated with estrogen for different time intervals. In this example, our method was able to identify several biologically interesting genes that previous analyses failed to reveal. Contact: peddada@embryo.niehs.nih.gov
机译:我们提出了一种使用基因表达数据根据基因的时程或剂量反应图谱选择和聚类基因的算法。所提出的算法基于统计中发展的顺序受限推理方法。尽管它适用于任何有序的治疗方法,但我们描述了时程实验的方法。根据时间点上平均表达水平之间的不等式定义候选的时间分布。所提出的算法在满足基于bootstrap的统计意义标准时选择基因,并将每个选定的基因分配给最适合的候选谱。我们使用来自cDNA微阵列实验的数据说明了该方法,其中用雌激素在不同的时间间隔刺激乳腺癌细胞系。在这个例子中,我们的方法能够鉴定以前的分析未能揭示的几个生物学上有趣的基因。联系方式:peddada@embryo.niehs.nih.gov

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