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Inferring Transcriptional Modules from Microarray and ChIP-Chip Data Using Penalized Matrix Decomposition

机译:使用惩罚矩阵分解从微阵列和芯片芯片数据推断转录模块

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Inferring transcriptional regulatory modules is a useful work for elucidating molecular mechanism. In this paper, we propose a new method for transcriptional regulatory module discovering. The algorithm uses penalized matrix decomposition to model microarray data. Which takes into account the sparse a prior information of transcription factors--gene (TFs--gene) interactions. At the same time, the ChIP-chip data are used as constraints for penalized matrix decomposition of gene expression data. Finally the regulatory modules can be inferred based on the factor matrix. Experiment on yeast dataset shows that our method can identifies more meaningful transcriptional modules relating to specific TFs.
机译:推断转录调节模块是阐明分子机制的有用工作。在本文中,我们提出了一种发现转录监管模块的新方法。该算法使用惩罚矩阵分解来模拟微阵列数据。考虑到转录因子的稀疏信息 - 基因(TFS-Gene)相互作用。同时,芯片芯片数据用作基因表达数据的惩罚矩阵分解的约束。最后,可以基于因子矩阵推断出调节模块。 yeast DataSet上的实验表明,我们的方法可以识别与特定TFS相关的更有意义的转录模块。

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