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A generic model of transcriptional regulatory networks: Application to plants under abiotic stress

机译:转录调控网络的通用模型:在非生物胁迫下的植物应用

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Understanding the relationships between transcription factors (TFs) and genes in plants under abiotic stress responses, tolerance and adaptation to adverse environments is very important in developing resilient crop varieties. While experimental methods to characterize stress responsive TFs and their targets are highly accurate, identification and characterization of the role of a given gene in a given stress response event are often laborious and time consuming. Computational approaches, on the other hand, offer a platform to identify new knowledge by integrating high throughput omics data and mathematical methods/models. In this research, we have developed a generic linear model of transcriptional regulatory networks (TRNs) and a companion algorithm to identify and to characterize stress responsive genes and their roles in a given stress response event. The proposed methodology was applied to plants, by using Arabidopsis thaliana as an example, under abiotic stress. Well known interactions were inferred as well as putative novel ones that may play important roles in plants under abiotic stress conditions as confirmed by statistical and literature evidences.
机译:了解植物在非生物胁迫下的转录因子(TFs)与基因之间的关系,耐受性和对不利环境的适应性对于开发抗逆作物品种非常重要。尽管表征应激反应性TF及其靶标的实验方法非常准确,但是鉴定和表征给定基因在给定应激反应事件中的作用通常是费力且耗时的。另一方面,计算方法通过集成高通量组学数据和数学方法/模型,提供了一个平台来识别新知识。在这项研究中,我们已经开发了转录调控网络(TRN)的通用线性模型和一个伴随算法,以识别和表征应激反应基因及其在给定应激反应事件中的作用。以拟南芥为例,在非生物胁迫下将拟议的方法应用于植物。统计和文献证据证实,推断了众所周知的相互作用以及可能在植物处于非生物胁迫条件下起重要作用的新颖相互作用。

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