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Fusion of single-cell transcriptome and DNA-binding data, for genomic network inference in cortical development

机译:单细胞转录组和DNA结合数据的融合,用于皮质发育中的基因组网络推论

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Network models are well-established as very useful computational-statistical tools in cell biology. However, a genomic network model based only on gene expression data can, by definition, only infer gene co-expression networks. Hence, in order to infer gene regulatory patterns, it is necessary to also include data related to binding of regulatory factors to DNA. We propose a new dynamic genomic network model, for inferring patterns of genomic regulatory influence in dynamic processes such as development. Our model fuses experiment-specific gene expression data with publicly available DNA-binding data. The method we propose is computationally efficient, and can be applied to genome-wide data with tens of thousands of transcripts. Thus, our method is well suited for use as an exploratory tool for genome-wide data. We apply our method to data from human fetal cortical development, and our findings confirm genomic regulatory patterns which are recognised as being fundamental to neuronal development. Our method provides a mathematical/computational toolbox which, when coupled with targeted experiments, will reveal and confirm important new functional genomic regulatory processes in mammalian development.
机译:网络模型在细胞生物学中良好地建立为非常有用的计算统计工具。然而,仅基于基因表达数据的基因组网络模型可以根据定义,仅推断基因共表达网络。因此,为了推断基因调节模式,还必须包括与DNA的调节因子结合有关的数据。我们提出了一种新的动态基因组网络模型,用于在发育中的动态过程中推断基因组调节效应模式。我们的模型用公开可用的DNA绑定数据融合实验特异性基因表达数据。我们提出的方法是计算上有效的,并且可以应用于具有数万个转录物的基因组数据。因此,我们的方法非常适合用作基因组数据的探索工具。我们将我们的方法应用于人类胎儿皮质开发的数据,我们的研究结果证实了基因组调节模式,其被认为是神经元发展的基础。我们的方法提供了一种数学/计算工具箱,当与有针对性的实验结合时,将揭示并确认哺乳动物发展中的重要新功能基因组调控过程。

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