Qiao Liuhui, Zhang Kunpu, Li Jinyan, Zhang Ziming, Sun Xiao, Liu Huiyun, Li Ziyue, Ni Nannan, Ma Ximei, Zhao Jianhui, Li Guangwei, Jin Xiaohuan, Xiao Jibin, Zheng Wenming, Wang Daowen, Fu Zheng Qing, Wang Huan
State Key Laboratory of High-Efficiency Production of Wheat-Maize Double Cropping, Henan Center for Crop Genomics and Rice Engineering, College of Agronomy, Longzi Lake Campus, Henan Agricultural University, Zhengzhou 450046, China; College of Life Sciences, Henan Agricultural University, Zhengzhou 450002, China.
State Key Laboratory of High-Efficiency Production of Wheat-Maize Double Cropping, Henan Center for Crop Genomics and Rice Engineering, College of Agronomy, Longzi Lake Campus, Henan Agricultural University, Zhengzhou 450046, China; The Shennong Laboratory, Zhengzhou 450002, China.
Mol Plant. 2025 Aug 4;18(8):1351-1368. doi: 10.1016/j.molp.2025.07.008. Epub 2025 Jul 15.
Broad-spectrum resistance (BSR) is highly sought after for the effective management of crop diseases. However, genes suitable for developing BSR remain scarce. In this study, we demonstrate the development of BSR to wheat yellow rust (YR), powdery mildew (PM), and leaf rust (LR) diseases elicited by three biotrophic fungal pathogens using a newly defined module, namely, RFEL1-NPR3. RFEL1 is an active RING-finger E3 ubiquitin ligase identified in diploid and polyploid wheat species, which ubiquitinates and promotes the degradation of wheat NPR3 (TaNPR3), an important negative immune regulator conserved in higher plants, via the 26S proteasome system. Downregulation of TaNPR3 by either overexpressing RFEL1 or knocking out TaNPR3 confers strong resistance against four different YR races as well as the PM and LR diseases without adverse effects on wheat growth and yield traits. Notably, the enhanced disease resistance exhibited by RFEL1-overexpressing and TaNPR3-knockout lines is correlated with increased expression of defense related genes and elevated stability of NPR1, a pivotal positive regulator of plant immune signaling. Our findings underscore the importance of ubiquitination-dependent NPR3 degradation in plant immunity and advocate for the application of the RFEL1-NPR3 module in engineering BSR against biotrophic fungal pathogens in wheat and other crops.
广谱抗性(BSR)对于作物病害的有效管理至关重要。然而,适合用于培育BSR的基因仍然稀缺。在本研究中,我们利用一个新定义的模块,即RFEL1-NPR3,展示了对由三种活体营养型真菌病原体引发的小麦条锈病(YR)、白粉病(PM)和叶锈病(LR)的广谱抗性的培育。RFEL1是在二倍体和多倍体小麦物种中鉴定出的一种活性泛素连接酶E3,它通过26S蛋白酶体系统使小麦NPR3(TaNPR3)泛素化并促进其降解,TaNPR3是高等植物中保守的一种重要的负免疫调节因子。通过过表达RFEL1或敲除TaNPR3来下调TaNPR3,可赋予对四种不同条锈病菌株以及白粉病和叶锈病的强抗性,且对小麦生长和产量性状无不利影响。值得注意的是,过表达RFEL1和敲除TaNPR3的株系所表现出的增强的抗病性与防御相关基因表达的增加以及植物免疫信号转导的关键正调节因子NPR1稳定性的提高相关。我们的研究结果强调了泛素化依赖性NPR3降解在植物免疫中的重要性,并提倡在培育针对小麦和其他作物中活体营养型真菌病原体的广谱抗性中应用RFEL1-NPR3模块。