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拟南芥植物激素相互作用网络涉及一条连续的代谢途径和调节酶编码基因的转录因子循环控制单元。

The Arabidopsis phytohormone crosstalk network involves a consecutive metabolic route and circular control units of transcription factors that regulate enzyme-encoding genes.

作者信息

Yue Xun, Li Xing Guo, Gao Xin-Qi, Zhao Xiang Yu, Dong Yu Xiu, Zhou Chao

机构信息

State Key Laboratory of Crop Biology, College of Life Sciences, Shandong Agricultural University, Tai'an, Shandong, 271018, China.

State Key Laboratory of Crop Biology, College of Information Sciences and Engineering, Shandong Agricultural University, Tai'an, Shandong, 271018, China.

出版信息

BMC Syst Biol. 2016 Sep 2;10(1):87. doi: 10.1186/s12918-016-0333-9.

Abstract

BACKGROUND

Phytohormone synergies and signaling interdependency are important topics in plant developmental biology. Physiological and genetic experimental evidence for phytohormone crosstalk has been accumulating and a genome-scale enzyme correlation model representing the Arabidopsis metabolic pathway has been published. However, an integrated molecular characterization of phytohormone crosstalk is still not available.

RESULTS

A novel modeling methodology and advanced computational approaches were used to construct an enzyme-based Arabidopsis phytohormone crosstalk network (EAPCN) at the biosynthesis level. The EAPCN provided the structural connectivity architecture of phytohormone biosynthesis pathways and revealed a surprising result; that enzymes localized at the highly connected nodes formed a consecutive metabolic route. Furthermore, our analysis revealed that the transcription factors (TFs) that regulate enzyme-encoding genes in the consecutive metabolic route formed structures, which we describe as circular control units operating at the transcriptional level. Furthermore, the downstream TFs in phytohormone signal transduction pathways were found to be involved in the circular control units that included the TFs regulating enzyme-encoding genes. In addition, multiple functional enzymes in the EAPCN were found to be involved in ion and pH homeostasis, environmental signal perception, cellular redox homeostasis, and circadian clocks. Last, publicly available transcriptional profiles and a protein expression map of the Arabidopsis root apical meristem were used as a case study to validate the proposed framework.

CONCLUSIONS

Our results revealed multiple scales of coupled mechanisms in that hormonal crosstalk networks that play a central role in coordinating internal developmental processes with environmental signals, and give a broader view of Arabidopsis phytohormone crosstalk. We also uncovered potential key regulators that can be further analyzed in future studies.

摘要

背景

植物激素协同作用和信号相互依赖性是植物发育生物学中的重要课题。关于植物激素相互作用的生理和遗传实验证据不断积累,并且已经发表了一个代表拟南芥代谢途径的基因组规模的酶关联模型。然而,植物激素相互作用的综合分子特征仍然不可得。

结果

一种新颖的建模方法和先进的计算方法被用于在生物合成水平构建基于酶的拟南芥植物激素相互作用网络(EAPCN)。EAPCN提供了植物激素生物合成途径的结构连接架构,并揭示了一个惊人的结果;即定位在高度连接节点上的酶形成了一条连续的代谢途径。此外,我们的分析表明,调节连续代谢途径中酶编码基因的转录因子(TFs)形成了结构,我们将其描述为在转录水平起作用的循环控制单元。此外,发现植物激素信号转导途径中的下游TFs参与了包括调节酶编码基因的TFs的循环控制单元。此外,EAPCN中的多种功能酶被发现参与离子和pH稳态、环境信号感知、细胞氧化还原稳态和生物钟。最后,使用公开可用的拟南芥根尖分生组织转录谱和蛋白质表达图谱作为案例研究来验证所提出的框架。

结论

我们的结果揭示了多种耦合机制,其中激素相互作用网络在协调内部发育过程与环境信号方面发挥着核心作用,并给出了拟南芥植物激素相互作用的更广泛视图。我们还发现了可在未来研究中进一步分析的潜在关键调节因子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/032e/5009710/cacec133fab7/12918_2016_333_Fig1_HTML.jpg

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