A bacterial effector protein uncovers a plant metabolic pathway involved in tolerance to bacterial wilt disease
Yaru Wang, Achen Zhao, Rafael J.L. Morcillo, Gang Yu, Hao Xue, Jose S. Rufian, Yuying Sang, Alberto P. Macho
Journal:Molecular Plant
IF:13.16
DOI:10.1016/j.molp.2021.04.014
PMID:33940211
Published:2021-05-01
research field:大豆遗传学泛素-蛋白酶体系统效应子生物学分子植物-微生物互作植物病理学
Abstract
Bacterial wilt caused by the soil-borne plant pathogen Ralstonia solanacearum is a devastating disease worldwide. Upon plant colonization, R . solanacearum replicates massively, causing plant wilting and death; collapsed infected tissues then serve as a source of inoculum. In this work, we show that the plant metabolic pathway mediated by pyruvate decarboxylases (PDCs) contributes to plant tolerance to bacterial wilt disease. Arabidopsis and tomato plants respond to R . solanacearum infection by increasing PDC activity, and plants with deficient PDC activity are more susceptible to bacterial wilt. Treatment with either pyruvic acid or acetic acid (substrate and product of the PDC pathway, respectively) enhances plant tolerance to bacterial wilt disease. An effector protein secreted by R . solanacearum , RipAK, interacts with PDCs and inhibits their oligomerization and enzymatic activity. Collectively, our work reveals a metabolic pathway involved in plant resistance to biotic and abiotic stresses, and a bacterial virulence strategy to promote disease and the completion of the pathogenic life cycle.
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