The miR172a-SNB module orchestrates both induced and adult-plant resistance to multiple diseases via MYB30-mediated lignin accumulation in rice.

IF 17.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Molecular Plant Pub Date : 2025-01-06 Epub Date: 2024-11-30 DOI:10.1016/j.molp.2024.11.015
He Wang, Zhe-Xu Wang, Hong-Yuan Tian, Yu-Long Zeng, Hao Xue, Wan-Ting Mao, Lu-Yue Zhang, Jun-Ni Chen, Xiang Lu, Yong Zhu, Guo-Bang Li, Zhi-Xue Zhao, Ji-Wei Zhang, Yan-Yan Huang, Jing Fan, Pei-Zhou Xu, Xiao-Qiong Chen, Wei-Tao Li, Xian-Jun Wu, Wen-Ming Wang, Yan Li
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引用次数: 0

Abstract

Plants mount induced resistance and adult-plant resistance against different pathogens throughout the whole growth period. Rice production faces threats from multiple major diseases, including rice blast, sheath blight, and bacterial leaf blight. Here, we report that the miR172a-SNB-MYB30 module regulates both induced and adult-plant resistance to these three major diseases via lignification in rice. Mechanistically, pathogen infections induce the expression of miR172a, which downregulates the transcription factor SNB to release its suppression of MYB30, leading to an increase in lignin biosynthesis and disease resistance throughout the whole growth period. Moreover, expression levels of miR172a and MYB30 gradually increase and are consistently correlated with lignin contents and disease resistance during rice development, reaching a peak at full maturity, whereas SNB RNA levels are negatively correlated with lignin contents and disease resistance, indicating the involvement of the miR172a-SNB-MYB30 module in adult-plant resistance. The functional domain of SNB protein and its binding sites in the MYB30 promoter are highly conserved among more than 4000 rice accessions, while abnormal expression of miR172a, SNB, or MYB30 compromises yield traits, suggesting artificial selection of the miR172a-SNB-MYB30 module during rice domestication. Taken together, these results reveal a novel role for a conserved miRNA-regulated module that contributes significantly to induced and adult-plant resistance against multiple pathogens by increasing lignin accumulation, deepening our understanding of broad-spectrum resistance and adult-plant resistance.

miR172a-SNB模块通过myb30介导的木质素积累协调水稻对多种疾病的诱导抗性和成体抗性。
植物在整个生长过程中对不同的病原菌产生诱导抗性和成体抗性。水稻生产面临稻瘟病、纹枯病和细菌性叶枯病等多种主要病害的威胁。在这里,我们报道了一个microRNA模块miR172a-SNB-MYB30,通过木质素化调节水稻对这三种主要疾病的诱导抗性和成株抗性。机制上,病原菌诱导miR172a表达,miR172a下调转录因子SNB,释放其对MYB30的抑制,导致整个生长时期木质素生物合成增加,抗病能力增强。此外,miR172a和MYB30的表达水平在水稻发育过程中逐渐升高,并与木质素含量和抗病性保持一致,在成熟期达到峰值,而SNB RNA的表达水平与木质素含量和抗病性呈负相关,表明miR172a-SNB-MYB30模块参与了植物成虫抗性。在4000多份水稻材料中,SNB蛋白的功能域及其MYB30启动子的结合位点存在高度保守性;此外,miR172a、SNB或MYB30的异常表达会影响产量性状,这表明在水稻驯化过程中,miR172a-SNB-MYB30模块被人为选择。我们的研究结果揭示了一个保守的mirna调控模块的新作用,该模块通过木质素积累显著地促进了对多种病原体的诱导和成体抗性,促进了我们对广谱抗性和成体抗性的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular Plant
Molecular Plant 植物科学-生化与分子生物学
CiteScore
37.60
自引率
2.20%
发文量
1784
审稿时长
1 months
期刊介绍: Molecular Plant is dedicated to serving the plant science community by publishing novel and exciting findings with high significance in plant biology. The journal focuses broadly on cellular biology, physiology, biochemistry, molecular biology, genetics, development, plant-microbe interaction, genomics, bioinformatics, and molecular evolution. Molecular Plant publishes original research articles, reviews, Correspondence, and Spotlights on the most important developments in plant biology.
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