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Reconstruct Transcription Networks by Combining Gene Expression Correlations with TF Binding Sites

机译:通过与TF结合位点组合基因表达相关性重建转录网络

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One of the major challenges in molecular biology is to understand the precise mechanism by which gene expression is regulated. Reconstruction of transcription networks is essential to modeling this mechanism. In this paper, we describe a novel approach for building transcription networks from transcription modules by combining expression profile correlations with probabilistic element assessment. To demonstrate its performance, we systematically tested it on 27 transcription modules and reconstructed the transcription network for 6 transcription factors and 15 genes involved in the yeast cell cycle. The experimental results show that our combinatorial approach can better filter false positives to increase the selectivity in prediction of target genes. The regulatory control relationships described by the network reconstructed also mostly agree with those in earlier studies.
机译:分子生物学中的主要挑战之一是了解基因表达被调节的精确机制。转录网络的重建对于建模这种机制至关重要。在本文中,我们通过将表达谱与概率元素评估结合,描述了一种从转录模块构建转录网络的新方法。为了证明其性能,我们系统地测试了27个转录模块,并重建了6种转录因子的转录网络和参与酵母细胞周期的15个基因。实验结果表明,我们的组合方法可以更好地过滤误报以增加靶基因预测中的选择性。网络重建的监管控制关系大多同意早期研究中的那些。

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