Hypoxia represses pattern-triggered immune responses in Arabidopsis

拟南芥 生物 细胞生物学 非生物成分 转录因子 生物逆境 非生物胁迫 茉莉酸 德隆 串扰 泛素 蛋白酶体 泛素连接酶 生物化学 生态学 基因 物理 突变体 光学
作者
Brian Mooney,Catherine M. Doorly,Melissa Mantz,Pablo D. García,Pitter F. Huesgen,Emmanuelle Graciet
出处
期刊:Plant Physiology [Oxford University Press]
标识
DOI:10.1093/plphys/kiae432
摘要

Abstract Biotic and abiotic stresses frequently co-occur in nature, yet relatively little is known about how plants co-ordinate the response to combined stresses. Protein degradation by the ubiquitin/proteasome system is central to the regulation of multiple independent stress response pathways in plants. The Arg/N-degron pathway is a subset of the ubiquitin/proteasome system that targets proteins based on their N termini and has been specifically implicated in the responses to biotic and abiotic stresses, including hypoxia, via accumulation of group VII ETHYLENE RESPONSE FACTOR (ERF-VII) transcription factors that orchestrate the onset of the hypoxia response program. Here, we investigated the role of the Arabidopsis (Arabidopsis thaliana) Arg/N-degron pathway in mediating the crosstalk between combined abiotic and biotic stresses using hypoxia treatments and the flg22 elicitor of pattern-triggered immunity (PTI), respectively. We uncovered a link between the plant transcriptional responses to hypoxia and flg22. Combined hypoxia and flg22 treatments showed that hypoxia represses the flg22 transcriptional program, as well as the expression of pattern recognition receptors, mitogen-activated protein kinase (MAPK) signalling and callose deposition during PTI through mechanisms that are mostly independent from the ERF-VIIs. These findings improve our understanding of the trade-offs between plant responses to combined abiotic and biotic stresses in the context of our efforts to increase crop resilience to global climate change. Our results also show that the well-known repressive effect of hypoxia on innate immunity in animals also applies to plants.
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