Brumbarova Tzvetina, Ivanov Rumen
Institute of Botany, Heinrich-Heine University, Universitätstrasse 1, 40225 Düsseldorf, Germany.
Institute of Botany, Heinrich-Heine University, Universitätstrasse 1, 40225 Düsseldorf, Germany.
iScience. 2019 Sep 27;19:358-368. doi: 10.1016/j.isci.2019.07.045. Epub 2019 Aug 1.
Plants respond actively to changes in their environment. Variations in nutrient availability elicit substantial transcriptional reprogramming, and we aimed to systematically describe these adjustments and identify the regulators responsible. Using gene coexpression analysis based on 13 different nutrient availability anomalies, we defined and analyzed nutrient stress response signatures. We identified known regulators and could predict functions in nutrient responses for transcriptional regulators previously associated with other processes, thus linking development and environmental interaction. Three of the identified transcriptional regulators, PIF4, HY5, and NF-Y, known from their role in light signaling, targeted a substantial part of the network and may participate in remodeling the global Arabidopsis transcriptome in response to variations of nutrient availability. We present gene coexpression and transcriptional regulation networks, which can be used as tools to further explore regulatory events and dependencies even by users with basic informatics skills.
植物会对其环境变化做出积极响应。养分可利用性的变化会引发大量的转录重编程,我们旨在系统地描述这些调整并确定负责的调控因子。基于13种不同的养分可利用性异常情况进行基因共表达分析,我们定义并分析了养分胁迫响应特征。我们鉴定出了已知的调控因子,并能够预测先前与其他过程相关的转录调控因子在养分响应中的功能,从而将发育与环境相互作用联系起来。鉴定出的三个转录调控因子PIF4、HY5和NF-Y,因其在光信号传导中的作用而闻名,它们靶向了该网络的很大一部分,可能参与重塑拟南芥的全球转录组以响应养分可利用性的变化。我们展示了基因共表达和转录调控网络,即使是具备基本信息学技能的用户也可以将其用作进一步探索调控事件和依赖性的工具。