数字农科院2.0

Alternative splicing of OsNPR3 promoted by the bacterial TAL effectors-targeted splicing regulator OsRBP11 antagonizes OsNPR1 function and enhances disease susceptibility in rice

文献类型: 外文期刊

作者: Xiaochen Chen;Xiaohui Yao;Fang Yan;Shaofang Li;Zuo Dong Wang;Fu You Yin;Miao Zhou;Zhen Wang;Lina Qin;Baoguo Zhao;Kai Lu;Liyuan Zhang;Xiaoxu Li;Xiuyan Mu;Yu Zhang;Teng Lu;Jin Biao Ma;Yi Kun Zhao;Dewen Lin;Maoling Wang;Qizhen Li;Shuo Qi;Juying Long;Bixin Bai;Jing Yu Ma;Yanzhi Liu;Yaping Feng;Xue Bao Yang;Jianhua Zhang;Yuheng Xu;Lei Chen;Shenshen Zou;Xinhua Ding;Mei Xiang Zhang;Dong Lei Yang;Zaiquan Cheng;Huanbin Zhou;Hansong Dong

作者机构:

关键词: alternative splicing;defense;OsNPR1;OsNPR3;OsRBP11;transcription activator-like effectors

期刊名称: Molecular Plant

ISSN: 1752-9867

年卷期: 2025 年 18 卷 9 期

页码:

收录情况: SCIE(2025版) ; ; CSCD(2025-2026年度) ; ; 科技核心(2024版)

摘要: Plant proteins that belong to the nonexpressor of pathogenesis-related (NPR) gene family are paralogous receptors of the plant defense hormone salicylic acid and essential regulators of hormone-dependent plant immunity against diseases caused by various pathogens. Previous studies have established NPR1 and NPR3 as a transcriptional activator and a transcriptional repressor, respectively, of defense-gene expression to promote and inhibit broad-spectrum resistance against different strains of pathogens. However, the regulatory mechanism that underlies the opposing roles of NPR1 and NPR3 in defense-gene activation remains unclear. Here, we report that a rice transcript splicing factor, Oryza sativa RNA-binding protein 11 (OsRBP11), promotes alternative splicing of OsNPR3 to modulate the defense function of OsNPR1 in rice plants infected by Xanthomonas oryzae pathovars, which are important bacterial pathogens of rice. We discovered that 11 transcription activator-like effectors identified in representative bacterial strains activate OsRBP11 expression. The OsRBP11 protein, in turn, facilitates alternative splicing of the OsNPR3 mRNA precursor, leading to the production of truncated OsNPR3 protein variants. The OsNPR3 variants exacerbate bacterial diseases by sequestering OsNPR1 from defense-gene activation. By contrast, both artificial and natural variations in OsRBP11 prevent the alternative splicing of OsNPR3, restore the defense function of OsNPR1, and enhance rice resistance to different bacterial strains. These findings not only reveal a novel regulatory pathway exploited by bacterial pathogens to facilitate their pathogenicity and subvert plant defense but also provide a genetic basis for biotechnological strategies aimed at developing broad-spectrum resistance in crops.

分类号:

  • 相关文献

[1]牛抗菌肽Bac7-Bac5-串联基因在昆虫杆状病毒系统中的表达及其产物的活性分析. 赵昆,刘思国,王春来,宫强,迟磊,刘建东,王勇,云孟克,孙延鸣. 2008

[2]DissectingthemaizedirectandindirectdefenseresponseagainstAsianCornBorer. 汪海,李圣彦,查象敏,朱莉,黄大昉,郎志宏. 2015

[3]CharacterizationofmousebrainmicroRNAsafterinfectionwithcyst-formingToxoplasmagondii. 徐民俊,DonghuiZhou,AlasdairJ.Nisbet,SiyangHuang,YifanFan,XingquanZhu. 2013

[4]Ectopic Expression of Executor Gene Xa23 Enhances Resistance to Both Bacterial and Fungal Diseases in Rice. Zhiyuan Ji,Hongda Sun,Yena Wei,Man Li,Hongjie Wang,Jiangmin Xu,Cailin Lei,Chunlian Wang,Kaijun Zhao. 2022

[5]Isolation and identification of a gene in response to rice blast disease in rice. Zheng, XW,Chen, XW,Zhang, XH,Lin, ZZ,Shang, JJ,Xu, JC,Zhai, WX,Zhu, LH.

[6]Highly virulent Beauveria bassiana strains against the two-spotted spider mite, Tetranychus urticae, show no pathogenicity against five phytoseiid mite species. Xu, Xuenong,Lei, Zhongren,Xie, Haicui,Li, Maoye. 2016

[7]Nsvc4 encoded by rice stripe virus targets host chloroplasts to suppress chloroplast-mediated defense. Zongdi Li,Chenyang Li,Shuai Fu,Yu Liu,Yi Xu,Jianxiang Wu,Yaqin Wang,Xueping Zhou. 2022

[8]The Pathogen-Induced MATE Gene TaPIMA1 Is Required for Defense Responses to Rhizoctonia cerealis in Wheat. Qiang Su,Wei Rong,Zengyan Zhang. 2022

[9]A Semi-Dominant Mutation In A C.c-Nb-Lrr-Type Protein Leads To A Short-Root Phenotype In Rice. Yu, ZM, Dong, LX, Jiang, ZF, Yi, KK, Zhang, JH, Zhang, ZC, Zhu, ZX, Wu, YH, Xu, MJ, Ni, J. 2018

[10]Enrichment of novel entomopathogenic Pseudomonas species enhances willow resistance to leaf beetles. Haitao Wang,Fengjuan Zhang,Yali Zhang,Mengnan Wang,Yiqiu Zhang,Jiang Zhang. 2024

[11]Defense mechanism of tea plant (Camellia sinensis L.) to tolfenpyrad reveals emerging role of melatonin in pesticide residue control. Xinru Wang,Chengmin Zha,Zihan Wang,Wenwen Fan,Chenyang Ji,Xinzhong Zhang,Zongmao Chen,Fengjian Luo,Li Zhou. 2025

[12]Field application of silicate suppresses rice insect pest populations and damage in association with defense-related chemicals. Yu, Jing,Zhong, Yuqi,Dai, Changgeng,Cheng, Yiyu,Gong, Youhui,Hou, Maolin. 2025

[13]The Alternative Splicing Landscape Of B.rassica Napus Infected With L eptosphaeria Maculans. Lin, Ai,Lu, Kun,Lin, Ai,Li, Jia-Na,Zhang, Chao,Lu, Kun,Li, Jia-Na,Wei, Li-Juan,Yang, Bo,Zhang, Chao,Yang, Bo,Sun, Wei,Wei, Li-Juan,Sun, Wei,Ma, Jin-Qi,Ma, Jin-Qi. 2019

[14]Nicotinic Acetylcholine Receptor Gene Family of the Pea Aphid, Acyrthosiphon pisum. Liu Yi-peng,Lin Ke-jian,Liu Yang,Wang Gui-rong,Gui Fu-rong. 2013

[15]Characterization and functional analysis of four HYH splicing variants in Arabidopsis hypocotyl elongation. Li, Chen,Wang, Xuanbin,Li, Chen,Zheng, Lanlan,Zhang, Jingxuan,Lv, Yanxia,Zhang, Yonghong,Liu, Jianping,Palfalvi, Gergo,Wang, Guodong.

[16]Two alternative splicing variants of maize HKT1;1 confer salt tolerance in transgenic tobacco plants. Ren, Zhenjing,Kang, Dan,Fan, Kaijian,Wang, Cuiyun,Wang, Guoying,Liu, Yunjun,Liu, Yan.

[17]Alternative splicing of basic chitinase gene PR3b in the low-nicotine mutants of Nicotiana tabacum L. cv. Burley 21. Ma, Haoran,Wang, Wenjing,Zhang, Dingyu,Ding, Yongqiang,Zhang, Hongbo,Ma, Haoran,Wang, Feng,Yin, Guoying,Zhang, Dingyu,Ding, Yongqiang,Timko, Michael P..

[18]Alternative splicing in the coding region of Ppo-A1 directly influences the polyphenol oxidase activity in common wheat (Triticum aestivum L.). Sun, Youwei,He, Zhonghu,Xia, Xianchun,He, Zhonghu,Ma, Wujun.

[19]Alternative splicing of the antitrypsin gene in the silkworm, Bombyx mori. Liu, Hui-fen,Li, Yi-nue,Zhang, Zhi-fang,Liu, Hui-fen,Cui, Wei-zheng,Mu, Zhi-mei,Jia, Ru.

[20]Alternative splicing and tissue expression of CIB4 gene in sheep testis. Yu, Yan,Wei, Caihong,Lu, Guobin,Zhang, Ju,Ren, Hangxing,Sheng, Xihui,Du, Lixin,Yu, Yan,Guan, Qun,Zhang, Qiyao,Zhang, Yuan,Wang, Chuduan,Song, Xuemei,Jin, Mei,Li, Shangang. 2010

作者其他论文 更多>>