首页> 美国卫生研究院文献>Journal of Experimental Botany >Crosstalk between heterotrimeric G protein-coupled signaling pathways and WRKY transcription factors modulating plant responses to suboptimal micronutrient conditions
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Crosstalk between heterotrimeric G protein-coupled signaling pathways and WRKY transcription factors modulating plant responses to suboptimal micronutrient conditions

机译:异三聚体G蛋白偶联信号传导途径与WRKY转录因子之间的串扰调节植物对次优微量营养素条件的反应

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摘要

Nutrient stresses induce foliar chlorosis and growth defects. Here we propose heterotrimeric G proteins as signaling mediators of various nutrient stresses, through meta-analyses of >20 transcriptomic data sets associated with nutrient stresses or G protein mutations. Systematic comparison of transcriptomic data yielded 104 genes regulated by G protein subunits under common nutrient stresses: 69 genes under Gβ subunit (AGB1) control and 35 genes under Gα subunit (GPA1) control. Quantitative real-time PCR experiments validate that several transcription factors and metal transporters changed in expression level under suboptimal iron, zinc, and/or copper concentrations, while being misregulated in the Arabidopsis Gβ-null ( ) mutant. The mutant had altered metal ion profiles and exhibited severe growth arrest under zinc stress, and aberrant root waving under iron and zinc stresses, while the Gα-null mutation attenuated leaf chlorosis under iron deficiency in both Arabidopsis and rice. Our transcriptional network analysis inferred computationally that WRKY-family transcription factors mediate the AGB1-dependent nutrient responses. As corroborating evidence of our inference, ectopic expression of or rescued the zinc stress phenotypes and the expression of zinc transporters in the background. These results, together with Gene Ontology analyses, suggest two contrasting roles for G protein-coupled signaling pathways in micronutrient stress responses: one enhancing general stress tolerance and the other modulating ion homeostasis through WRKY transcriptional regulatory networks. In addition, tolerance to iron stress in the rice Gα mutant provides an inroad to improve nutrient stress tolerance of agricultural crops by manipulating G protein signaling.
机译:营养胁迫导致叶绿化和生长缺陷。在这里,我们通过与营养胁迫或G蛋白突变相关的> 20个转录组数据集的荟萃分析,提出异源三聚体G蛋白作为各种营养胁迫的信号传导介质。转录组数据的系统比较得出了在常见营养胁迫下受G蛋白亚基调控的104个基因:受Gβ亚基(AGB1)控制的69个基因和受Gα亚基(GPA1)控制的35个基因。实时定量PCR实验证实,在拟南芥Gβ-null()突变体中,亚铁,锌和/或铜浓度次优时,几个转录因子和金属转运蛋白的表达水平发生了变化。该突变体改变了金属离子的分布并在锌胁迫下表现出严重的生长停滞,在铁和锌胁迫下表现出异常的根挥动,而Gα-null突变减弱了拟南芥和水稻在缺铁条件下的叶片萎黄。我们的转录网络分析从计算上推断WRKY家族转录因子介导AGB1依赖性营养反应。作为我们推断的有力证据,背景中异位表达或拯救了锌应激表型和锌转运蛋白的表达。这些结果,再加上基因本体论分析,提示了G蛋白偶联信号通路在微量营养素胁迫响应中的两种不同作用:一种增强一般胁迫耐受性,另一种通过WRKY转录调控网络调节离子稳态。另外,水稻Gα突变体对铁胁迫的耐受性通过操纵G蛋白信号传导为改善农作物的营养胁迫耐受性提供了途径。

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