Zannis-Peyrot Timothée, Degusseau Lucas, Dugas Pierre-Yves, Bastian Fabiola, Gaucher Matthieu, Gaillard Vincent, Comte Gilles, Wisniewski-Dye Florence, Kerzaon Isabelle, Lavire Céline, Vial Ludovic
Université Claude Bernard Lyon 1, UMR 5557 Ecologie Microbienne, CNRS, INRAE, VetAgro Sup, UCBL, Lyon, France.
UMR 5128, Laboratoire Catalyse, Polymérisation, Procédés et Matériaux (CP2M), Université Claude Bernard Lyon 1, CNRS, CPE Lyon, Villeurbanne, France.
Environ Microbiol. 2025 Jul;27(7):e70141. doi: 10.1111/1462-2920.70141.
Bacterial extracellular vesicles (EVs) are lipidic shuttles involved in inter-species communication, virulence, and host immune modulation. While their roles are increasingly understood in animal-bacteria interactions, knowledge of phytobacterial EVs remains limited. Recent findings indicate that biotic factors like hydroxycinnamic acids can regulate EV production. Hydroxycinnamic acids, such as ferulic acid, are abundant lignin components in the plant environment, influencing the ecology of numerous phytobacteria. Azospirillum sp. B510, a phytobeneficial bacterium, induces the accumulation of hydroxycinnamic acid derivatives in plants and can metabolise them. This study hypothesised that ferulic acid in the Azospirillum sp. B510 environment would influence EV production and, conversely, that these EVs would impact plant metabolites and defence gene expression. Our results demonstrate that ferulic acid influences the content of EVs released by Azospirillum sp. B510. Furthermore, bacterial EVs impact plant physiology at a systemic level according to their cargo. EVs induce systemic changes in Solanum lycopersicum metabolome, including alterations in hydroxycinnamic acid amide derivatives in roots and steroidal alkaloids in aerial tissues. Bacterial EVs also modulate tomato defence gene expression correlating with observed metabolite accumulation patterns. This research provides evidence of a global effect of bacterial EVs, highlighting the dynamic nature of plant-bacteria interactions mediated by EVs.
细菌细胞外囊泡(EVs)是参与种间通讯、毒力和宿主免疫调节的脂质穿梭体。虽然它们在动物-细菌相互作用中的作用越来越被人们所理解,但关于植物细菌EVs的知识仍然有限。最近的研究结果表明,诸如羟基肉桂酸等生物因子可以调节EVs的产生。羟基肉桂酸,如阿魏酸,是植物环境中丰富的木质素成分,影响着许多植物细菌的生态。固氮螺菌属B510是一种有益植物的细菌,它能诱导植物中羟基肉桂酸衍生物的积累并能对其进行代谢。本研究假设,固氮螺菌属B510环境中的阿魏酸会影响EVs的产生,反之,这些EVs会影响植物代谢物和防御基因的表达。我们的结果表明,阿魏酸会影响固氮螺菌属B510释放的EVs的含量。此外,细菌EVs根据其携带的物质在系统水平上影响植物生理。EVs会引起番茄代谢组的系统性变化,包括根系中羟基肉桂酰胺衍生物和地上组织中甾体生物碱的改变。细菌EVs还会调节番茄防御基因的表达,这与观察到的代谢物积累模式相关。这项研究提供了细菌EVs具有全局效应的证据,突出了由EVs介导的植物-细菌相互作用的动态性质。