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NLR蛋白CbAR9和水解酶CbSAHH形成一个模块,驱动辣椒对炭疽菌的系统获得性抗性。

The NLR protein CbAR9 and the hydrolase CbSAHH form a module driving systemic acquired resistance against Colletotrichum in pepper.

作者信息

Lee Gunhee, Park Sang Ryeol, Jeong Yujeong, Son Seungmin

机构信息

National Institute of Agricultural Sciences, Rural Development Administration, Jeonju 54874, Republic of Korea.

Division of Life Sciences, Jeonbuk National University, Jeonju 54896, Republic of Korea.

出版信息

Plant Physiol. 2025 Jul 3;198(3). doi: 10.1093/plphys/kiaf288.

Abstract

Anthracnose, which is caused by fungal pathogens of the genus Colletotrichum, poses a substantial threat to global pepper (Capsicum spp.) production. However, the principal regulators and signaling pathways that mediate anthracnose resistance remain largely unknown. In this study, we demonstrate the roles of ANTHRACNOSE RESISTANCE 9 (CbAR9) and S-ADENOSYLHOMOCYSTEINE HYDROLASE (CbSAHH) in the methyl salicylate (MeSA) mobile signal activating systemic acquired resistance (SAR) in Capsicum baccatum. Phenotypic and molecular analyses showed that the nucleotide-binding domain and leucine-rich repeat protein CbAR9 enhances both local and systemic defense responses to Colletotrichum species through salicylic acid (SA)-dependent immunity, and it directly interacts with CbSAHH, a key enzyme in the methylation cycle. Knockdown of CbAR9 or CbSAHH significantly impaired SAR to Colletotrichum species. Moreover, the elevation of MeSA content and methylation capacity induced by Colletotrichum capsici in the primary infected leaves were compromised in CbAR9- and CbSAHH-silenced plants. Notably, MeSA treatment in the primary infected leaves restored the diminished SAR to C. capsici in CbAR9- and CbSAHH-silenced plants. These findings show that the CbAR9-CbSAHH module contributes SAR to Colletotrichum species through activating the MeSA mobile signal.

摘要

炭疽病由炭疽菌属的真菌病原体引起,对全球辣椒(辣椒属)生产构成重大威胁。然而,介导炭疽病抗性的主要调节因子和信号通路在很大程度上仍不清楚。在本研究中,我们证明了炭疽病抗性9(CbAR9)和S-腺苷同型半胱氨酸水解酶(CbSAHH)在激活辣椒甲基水杨酸(MeSA)移动信号以诱导系统获得性抗性(SAR)中的作用。表型和分子分析表明,核苷酸结合结构域和富含亮氨酸重复序列的蛋白CbAR9通过水杨酸(SA)依赖的免疫增强对炭疽菌属物种的局部和系统防御反应,并且它直接与甲基化循环中的关键酶CbSAHH相互作用。CbAR9或CbSAHH的敲低显著削弱了对炭疽菌属物种的SAR。此外,在CbAR9和CbSAHH沉默的植株中,辣椒炭疽菌在初次感染叶片中诱导的MeSA含量升高和甲基化能力受到损害。值得注意的是,在初次感染叶片中进行MeSA处理可恢复CbAR9和CbSAHH沉默植株中对辣椒炭疽菌减弱的SAR。这些发现表明,CbAR9-CbSAHH模块通过激活MeSA移动信号为对炭疽菌属物种的SAR做出贡献。

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