Qian-Qian Liu, Jin-Qiu Xia, Jie Wu, Yi Han, Gui-Quan Zhang, Ping-Xia Zhao, Cheng-Bin Xiang
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Grafting experiments distinctly illustrate that drought resistance can be conferred by the frd3 rootstock regardless of the scion genotype, indicating that long-distance signals originating from frd3 roots promote an increase in ABA levels in leaves. Intriguingly, the drought resistance conferred by the frd3 mutant rootstock is weakened by the CAT2-overexpressing scion, suggesting that H<sub>2</sub>O<sub>2</sub> may be involved in long-distance signaling. Moreover, the results of comparative transcriptome and proteome analyses support the drought resistance phenotype of the frd3 mutant. 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引用次数: 0
摘要
维管束植物进化出了复杂的长距离信号传递机制来应对环境胁迫,其中活性氧(ROS)成为植物胁迫响应中至关重要的系统信号。然而,ROS 作为根到芽信号在干旱响应中的确切作用尚未确定。在本研究中,我们发现与野生型植物相比,铁还原酶缺陷 3(frd3)突变体表现出更强的抗旱性,同时叶片中的 NCED3 转录水平和 ABA 含量升高,根和叶中的过氧化氢(H2O2)水平升高。嫁接实验清楚地表明,无论接穗的基因型如何,frd3 砧木都能赋予抗旱性,这表明来自 frd3 根系的长距离信号促进了叶片中 ABA 水平的提高。耐人寻味的是,frd3突变体砧木的抗旱性在CAT2-外表达接穗的作用下会减弱,这表明H2O2可能参与了长距离信号传递。此外,转录组和蛋白质组的比较分析结果也支持 frd3 突变体的抗旱表型。综上所述,我们的研究结果证实了 frd3 根源长距离信号会触发叶片中 ABA 的合成并增强抗旱性的观点,为根到根长距离信号在植物干旱响应中的作用提供了新的证据。
Root-derived long-distance signals trigger ABA synthesis and enhance drought resistance in Arabidopsis.
Vascular plants have evolved intricate long-distance signaling mechanisms to cope with environmental stress, with reactive oxygen species (ROS) emerging as pivotal systemic signals in plant stress responses. However, the exact role of ROS as root-to-shoot signals in the drought response has not been determined. In this study, we reveal that compared with wild-type plants, ferric reductase defective 3 (frd3) mutants exhibit enhanced drought resistance concomitant with elevated NINE-CIS-EPOXYCAROTENOID DIOXYGENASE 3 (NCED3) transcript levels and abscisic acid (ABA) contents in leaves as well as increased hydrogen peroxide (H2O2) levels in roots and leaves. Grafting experiments distinctly illustrate that drought resistance can be conferred by the frd3 rootstock regardless of the scion genotype, indicating that long-distance signals originating from frd3 roots promote an increase in ABA levels in leaves. Intriguingly, the drought resistance conferred by the frd3 mutant rootstock is weakened by the CAT2-overexpressing scion, suggesting that H2O2 may be involved in long-distance signaling. Moreover, the results of comparative transcriptome and proteome analyses support the drought resistance phenotype of the frd3 mutant. Taken together, our findings substantiate the notion that frd3 root-derived long-distance signals trigger ABA synthesis in leaves and enhance drought resistance, providing new evidence for root-to-shoot long-distance signaling in the drought response of plants.
期刊介绍:
The Journal of Genetics and Genomics (JGG, formerly known as Acta Genetica Sinica ) is an international journal publishing peer-reviewed articles of novel and significant discoveries in the fields of genetics and genomics. Topics of particular interest include but are not limited to molecular genetics, developmental genetics, cytogenetics, epigenetics, medical genetics, population and evolutionary genetics, genomics and functional genomics as well as bioinformatics and computational biology.