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Using a State-Space Model and Location Analysis to Infer Time-Delayed Regulatory Networks

机译:使用状态空间模型和位置分析来推断时滞监管网络

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Computational gene regulation models provide a means for scientists to draw biological inferences from time-course gene expression data. Based on the state-space approach, we developed a new modeling tool for inferring gene regulatory networks, called time-delayed Gene Regulatory Networks (tdGRNs). tdGRN takes time-delayed regulatory relationships into consideration when developing the model. In addition, a priori biological knowledge from genome-wide location analysis is incorporated into the structure of the gene regulatory network. tdGRN is evaluated on both an artificial dataset and a published gene expression data set. It not only determines regulatory relationships that are known to exist but also uncovers potential new ones. The results indicate that the proposed tool is effective in inferring gene regulatory relationships with time delay. tdGRN is complementary to existing methods for inferring gene regulatory networks. The novel part of the proposed tool is that it is able to infer time-delayed regulatory relationships.
机译:计算基因调控模型为科学家提供了一种从时程基因表达数据中得出生物学推断的方法。基于状态空间方法,我们开发了一种新的建模工具来推断基因调控网络,称为时延基因调控网络(tdGRNs)。在开发模型时,tdGRN考虑了延时的监管关系。另外,来自全基因组位置分析的先验生物学知识被整合到基因调节网络的结构中。在人工数据集和已发布的基因表达数据集上均评估了tdGRN。它不仅确定已知的监管关系,而且还发现潜在的新关系。结果表明,所提出的工具可有效地推断具有时间延迟的基因调控关系。 tdGRN是现有的推断基因调控网络方法的补充。所提出工具的新颖之处在于它能够推断出时间延迟的监管关系。

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