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Discovering Typical Transcription-Factors Patterns in Gene Expression Levels of Mouse Embryonic Stem Cells by Instance-Based Classifiers

机译:通过基于基于类别的分类剂发现小鼠胚胎干细胞基因表达水平的典型转录因子模式

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The development of high-throughput technology in genome sequencing provide a large amount of raw data to study the regulatory functions of transcription factors (TFs) on gene expression. It is possible to realize a classifier system in which the gene expression level, under a certain condition, is regarded as the response variable and features related to TFs are taken as predictive variables. In this paper we consider the families of Instance-Based (IB) classifiers, and in particular the Prototype exemplar learning classifier (PEL-C), because IB-classifiers can infer a mixture of representative instances, which can be used to discover the typical epigenetic patterns of transcription factors which explain the gene expression levels. We consider, as case study, the gene regulatory system in mouse embryonic stem cells (ESCs). Experimental results show IB-classifier systems can be effectively used for quantitative modelling of gene expression levels because more than 50% of variation in gene expression can be explained using binding signals of 12 TFs; moreover the PEL-C identifies nine typical patterns of transcription factors activation that provide new insights to understand the gene expression machinery of mouse ESCs.
机译:基因组测序中的高通量技术的发展提供了大量的原始数据,以研究转录因子(TFS)对基因表达的调节功能。可以实现一种分类系统,其中基因表达水平在一定条件下被认为是与TFS相关的响应变量和特征被视为预测变量。在本文中,我们考虑基于实例的(IB)分类器的家庭,特别是原型示例性学习分类器(PEL-C),因为IB分类器可以推断出代表实例的混合,可用于发现典型的解释基因表达水平的转录因子的表观遗传模式。我们认为,如案例研究,小鼠胚胎干细胞中的基因调节系统(ESC)。实验结果表明,可以有效地使用基因表达水平的定量建模,因为可以使用12 TFS的结合信号来解释基因表达的大于50%的50%;此外,PEL-C识别九种转录因子激活模式,提供了了解小鼠ESC的基因表达机械的新见解。

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