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Inference of transcriptional regulation relationships from gene expression data.

机译:从基因表达数据推断转录调控关系。

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Motivation: In order to find gene regulatory networks from microarray data, it is important to first find direct regulatory relationships between pairs of genes. Results: We propose a new method for finding potential regulatory relationships between pairs of genes from microarray time series data and apply it to expression data for cell-cycle related genes in yeast. We compare our algorithm, dubbed the event method, with the earlier correlation method and the edge detection method by Filkov et al. When tested on known transcriptional regulation genes, all three methods are able to find similar numbers of true positives. The results indicate that our algorithm is able to identify true positive pairs that are different from those found by the two other methods. We also compare the correlation and the event methods using synthetic data and find that typically, the event method obtains better results. Availability: Software is available upon request. Contact: hoos@cs.ubc.ca
机译:动机:为了从微阵列数据中找到基因调控网络,重要的是首先找到基因对之间的直接调控关系。结果:我们提出了一种从微阵列时间序列数据中寻找基因对之间潜在调控关系的新方法,并将其应用于酵母中与细胞周期相关的基因的表达数据。我们将称为事件方法的算法与较早的相关方法和Filkov等人的边缘检测方法进行了比较。当在已知的转录调节基因上进行测试时,所有这三种方法都能找到相似数量的真阳性。结果表明,我们的算法能够识别出与其他两种方法发现的结果不同的真实正对。我们还使用合成数据比较了相关方法和事件方法,发现通常情况下,事件方法可获得更好的结果。可用性:可根据要求提供软件。联系人:hoos@cs.ubc.ca

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