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Identifying differentially regulated genes

机译:识别差异规定的基因

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Microarray experiments often measure expressions of genes taken from sample tissues in the presence of external perturbations such as medication, radiation, or disease. Typically in such experiments, gene expressions are measured before and after the application of external perturbation. In this paper, we focus on an important class of such microarray experiments that inherently have two groups of tissue samples. The external perturbation can change the expressions of some genes directly or indirectly through gene interaction network. When such different groups exist, the expressions of genes after the perturbation can be different between the two groups. It is not only important to identify the genes that respond differently across the two groups, but also to mine the reason behind this differential response. In this paper, we aim to identify the cause of this differential behavior of genes, whether because of the perturbation or due to interactions with other genes in two group perturbation experiments. We propose a new probabilistic Bayesian method with Markov Random Field to find such genes. Our method incorporates information about relationship from gene networks as prior information. Experimental results on synthetic and real datasets demonstrate the superiority of our method compared to existing techniques.
机译:微阵列实验经常测量在存在外部扰动等药物组织的基因表达,例如药物,放射或疾病。通常在这样的实验中,在应用外部扰动之前和之后测量基因表达。在本文中,我们专注于一类此类微阵列实验,即固有地具有两组组织样品。外部扰动可以通过基因相互作用网络直接或间接地改变一些基因的表达。存在这种不同的组,在两组之间扰动后基因的表达可以不同。识别两组不同的基因不仅重要,而且还必须挖掘这种微分反应背后的原因。在本文中,我们的目标是识别基因的这种微分行为的原因,无论是由于扰动还是由于两组扰动实验中的其他基因的相互作用。我们提出了一种具有马尔可夫随机场的新概率贝叶斯方法,以寻找这样的基因。我们的方法包含关于基因网络的关系作为先前信息的信息。合成和实时数据集的实验结果证明了与现有技术相比我们方法的优越性。

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