Plant Systems Engineering Research Center, Korea Research Institute of Bioscience and Biotechnology (KRIBB), 125 Gwahak-ro, Daejeon, 34141, Republic of Korea.
Institute of Food Crops, Provincial Key Laboratory of Agrobiology, Jiangsu Academy of Agricultural Sciences, Nanjing, 210014, Jiangsu, China.
Plant Cell Rep. 2019 Nov;38(11):1403-1415. doi: 10.1007/s00299-019-02451-9. Epub 2019 Jul 31.
IbSPF1, a novel target of IbMPK3/IbMPK6, regulates biotic stress response in sweetpotato. Environmental stresses due to biotic and abiotic factors negatively affect crop quality and productivity. To minimize the damage caused by these factors, numerous stress signaling pathways are activated in plants. Among these, the mitogen-activated protein kinase (MAPK) signaling cascade plays a pivotal role in diverse plant stress responses. MPK3 and MPK6 function in several cellular signaling pathways by phosphorylating downstream partner proteins in response to environmental stresses. However, little is known about the MPK3/MPK6 signaling pathway in sweetpotato [Ipomoea batatas (L.) Lam]. We recently confirmed that IbMPK3 and IbMPK6, two pathogen-responsive MAPKs, play essential roles in defense gene activation in sweetpotato. In this study, we show that sweetpotato SP8-binding factor (IbSPF1), a substrate of IbMPK3/IbMPK6, functions as a transcriptional regulator of biotic stress signaling in sweetpotato. IbSPF1 specifically interacts with IbMPK3 and IbMPK6, which phosphorylate Ser75 and Ser110 residues of IbSPF1. This increases the affinity of IbSPF1 for the W-box element in target gene promoters. Additionally, the expression of IbSPF1 was up-regulated under various stress conditions and different hormone treatments involved in plant defense responses. Interestingly, the phospho-mimicking mutant of IbSPF1 showed enhanced resistance to Pseudomonas syringae pv. tabaci, and transient expression of mutant IbSPF1 induced the expression of pathogenesis-related genes. These results indicate that the phosphorylation of IbSPF1 by IbMPK3/IbMPK6 plays a critical role in plant immunity by up-regulating the expression of downstream genes.
IbSPF1 是 IbMPK3/IbMPK6 的一个新靶标,调节甘薯的生物胁迫反应。生物和非生物因素引起的环境胁迫会对作物的质量和产量产生负面影响。为了最大限度地减少这些因素造成的损害,植物中激活了许多应激信号通路。其中,丝裂原活化蛋白激酶(MAPK)信号级联在多种植物应激反应中起着关键作用。MPK3 和 MPK6 通过磷酸化下游伙伴蛋白来响应环境胁迫,在几种细胞信号通路中发挥作用。然而,关于甘薯 [Ipomoea batatas (L.) Lam] 中 MPK3/MPK6 信号通路知之甚少。我们最近证实,两种对病原体有反应的 MAPK,IbMPK3 和 IbMPK6,在甘薯防御基因激活中起重要作用。在这项研究中,我们表明,甘薯 SP8 结合因子(IbSPF1)是 IbMPK3/IbMPK6 的底物,作为甘薯生物胁迫信号的转录调节剂发挥作用。IbSPF1 特异性地与 IbMPK3 和 IbMPK6 相互作用,IbMPK3 和 IbMPK6 磷酸化 IbSPF1 的 Ser75 和 Ser110 残基。这增加了 IbSPF1 与靶基因启动子中 W 盒元件的亲和力。此外,IbSPF1 的表达在各种胁迫条件下以及参与植物防御反应的不同激素处理下均上调。有趣的是,IbSPF1 的磷酸化模拟突变体对丁香假单胞菌 pv. tabaci 表现出增强的抗性,并且突变体 IbSPF1 的瞬时表达诱导了病程相关基因的表达。这些结果表明,IbMPK3/IbMPK6 对 IbSPF1 的磷酸化通过上调下游基因的表达在植物免疫中起关键作用。