克鲁布罗特
生物
细胞生物学
转化酶
效应器
激酶
系统获得性抵抗
芸苔属
免疫系统
基因表达
转录组
重编程
根际
异位表达
泛素
生物测定
APX公司
信号转导
蛋白激酶A
基因
转录因子
泛素连接酶
糖酵解
ATP结合盒运输机
侏儒症
甜菜胞囊线虫
报告基因
运输机
水槽(地理)
分解代谢抑制
限制
运动性
蛋白质周转
生长素
作者
Harshavardhanan Vijayakumar,Niel Guillaume,Lies Vandesteene,Patrick Van Dijck,Wim Van den Ende,Barbara De Coninck,Filip Rolland
标识
DOI:10.64898/2025.12.31.697172
摘要
Abstract Clubroot, caused by the soil-borne protist Plasmodiophora brassicae , is a major disease of Brassica crops, resulting in severe root malformations and yield losses. While most research has centered on immune signaling and hormone dynamics, plant-pathogen interactions also dramatically reshape primary metabolism, often modifying source activity and converting infecting tissues into strong metabolic sinks. The SnRK1 (SNF1-related kinase 1) protein kinase acts as a cellular fuel gauge in plants, integrating metabolic status and environmental and developmental cues to maintain carbon and energy homeostasis. Here, we explored SnRK1-mediated quantitative resistance against clubroot disease in the related crucifer model Arabidopsis thaliana . Both soil and hydroponic-based disease bioassays revealed how especially increased nuclear SnRK1α1 activity antagonizes clubroot development, suggesting a pivotal role for transcriptional regulation. qRT-PCR analysis and quantification of soluble sugar contents and invertase activity in roots indicate that SnRK1 represses sucrose transporter expression as well as cell wall invertase (CWINV) expression and activity, likely limiting clubroot development by reducing sink strength. Consistently, cellular assays indicate that the recently identified SnRK1α1-targeting P. brassicae effector PBZF1 interferes with SnRK1α1 nuclear translocation. Our study thus corroborates that SnRK1 is a primary effector target and shows that SnRK1-mediated reprogramming of gene expression and sink activity is an effective mechanism against clubroot disease development.
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