Liang Jinchang, Wei Chengjian, Song Xueru, Wang Rui, Shi Heli, Tan Jun, Cheng Dejie, Wang Wenjing, Wang Xiaoqiang
Key Laboratory of Tobacco Pest Monitoring & Integrated Management, Tobacco Research Institute of Chinese Academy of Agricultural Sciences, 266101, Qingdao, China.
College of Agriculture, Guangxi University, 530004, Nanning, China.
Environ Microbiome. 2024 Jan 16;19(1):6. doi: 10.1186/s40793-024-00548-7.
Beneficial root-associated microbiomes play crucial roles in enhancing plant growth and suppressing pathogenic threats, and their application for defending against pathogens has garnered increasing attention. Nonetheless, the dynamics of microbiome assembly and defense mechanisms during pathogen invasion remain largely unknown. In this study, we aimed to investigate the diversity and assembly of microbial communities within four niches (bulk soils, rhizosphere, rhizoplane, and endosphere) under the influence of the bacterial plant pathogen Ralstonia solanacearum.
Our results revealed that healthy tobacco plants exhibited more diverse community compositions and more robust co-occurrence networks in root-associated niches compared to diseased tobacco plants. Stochastic processes (dispersal limitation and drift), rather than determinism, dominated the assembly processes, with a higher impact of drift observed in diseased plants than in healthy ones. Furthermore, during the invasion of R. solanacearum, the abundance of Fusarium genera, a known potential pathogen of Fusarium wilt, significantly increased in diseased plants. Moreover, the response strategies of the microbiomes to pathogens in diseased and healthy plants diverged. Diseased microbiomes recruited beneficial microbial taxa, such as Streptomyces and Bacilli, to mount defenses against pathogens, with an increased presence of microbial taxa negatively correlated with the pathogen. Conversely, the potential defense strategies varied across niches in healthy plants, with significant enrichments of functional genes related to biofilm formation in the rhizoplane and antibiotic biosynthesis in the endosphere.
Our study revealed the varied community composition and assembly mechanism of microbial communities between healthy and diseased tobacco plants along the soil-root continuum, providing new insights into niche-specific defense mechanisms against pathogen invasions. These findings may underscore the potential utilization of different functional prebiotics to enhance plants' ability to fend off pathogens.
有益的根系相关微生物群落在促进植物生长和抑制致病威胁方面发挥着关键作用,其在抵御病原体方面的应用日益受到关注。然而,病原体入侵期间微生物群落组装的动态和防御机制在很大程度上仍不清楚。在本研究中,我们旨在调查在细菌性植物病原体青枯雷尔氏菌的影响下,四个生态位(土壤、根际、根表和内生菌)内微生物群落的多样性和组装情况。
我们的结果表明,与患病烟草植株相比,健康烟草植株在根系相关生态位中表现出更多样化的群落组成和更稳健的共现网络。随机过程(扩散限制和漂移)而非确定性过程主导了组装过程,患病植株中观察到的漂移影响比健康植株更大。此外,在青枯雷尔氏菌入侵期间,镰刀菌属(一种已知的枯萎病潜在病原体)的丰度在患病植株中显著增加。此外,患病和健康植株中微生物群落对病原体的反应策略不同。患病微生物群落招募有益微生物类群,如链霉菌和芽孢杆菌,以抵御病原体,与病原体呈负相关的微生物类群数量增加。相反,健康植株中潜在的防御策略因生态位而异,根表中与生物膜形成相关的功能基因和内生菌中与抗生素生物合成相关的功能基因显著富集。
我们的研究揭示了健康和患病烟草植株沿土壤-根系连续体的微生物群落组成和组装机制的差异,为针对病原体入侵的生态位特异性防御机制提供了新见解。这些发现可能强调了利用不同功能益生元来增强植物抵御病原体能力的潜力。