Specialized microbiomes facilitate natural rhizosphere microbiome interactions counteracting high salinity stress in plants

被引:26
|
作者
Santos, Susana Silva [1 ,2 ]
Rask, Klara Andres [1 ]
Vestergard, Mette [2 ]
Johansen, Jesper Liengaard [1 ]
Prieme, Anders [1 ]
Froslev, Tobias Guldberg [3 ]
Gonzalez, Ana M. Martin [4 ]
He, Huan [1 ]
Ekelund, Flemming [1 ]
机构
[1] Univ Copenhagen, Dept Biol, Univ Pk 15, Copenhagen, Denmark
[2] Aarhus Univ, Dept Agroecol, Forsogsvej 1, Slagelse, Denmark
[3] Univ Copenhagen, GLOBE Inst, Sect Geogenet, Oster Voldgade 5-7, DK-1350 Copenhagen, Denmark
[4] Pacific Ecoinformat & Computat Ecol Lab, Berkeley, CA USA
关键词
Rice; Microbiome transfer; Rhizosphere effects; Halotolerant crops; Seed endophytes; 16S rRNA gene; GROWTH-PROMOTING BACTERIA; SALT; SOIL; TOLERANCE; DIVERSITY; RICE;
D O I
10.1016/j.envexpbot.2021.104430
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The root microbiota is crucial for plant productivity and stress tolerance. Still, our understanding of the factors that structure these microbial communities is limited, and we lack a theoretical framework to predict their assemblage and interactions. Here, we used rice as a model system to explore the hypothesis that microbiomes from specific environments enhance plant tolerance to salinity. We used 16S rRNA sequencing to track salinityinduced changes in microbiomes of plants inoculated with either a rice field microbiome, or a halotolerant microbiome, compared to only the seed microbiome. We found that, at salinities higher than 1.1 % plant growth was severely impeded. Nevertheless, at 0.11 % and 0.35 % salinity, plants inoculated with rice field and halotolerant microbiomes displayed enhanced shoot and root biomass, when compared to plants surviving only with the seed microbiome. Rice field microbiome had the highest plant growth-promoting effect and was the only treatment that promoted growth at 0.35 % salinity. The salinity effects on bacterial composition and alpha diversity were more pronounced for plants that relied only on the seed microbiome. The root-associated compartments harboured distinct microbiomes, but salinity explained most of the variation observed. Rice plants interacted with the rice field and halotolerant microbiomes to shape rhizosphere microbial community composition and the co-occurrence patterns, supporting plant growth at higher salinity. Assemblages of the halotolerant microbiome promoted similar network structures between the different salinity treatments, when compared to the other inoculations. Moreover, salinity responsive and keystone bacteria were taxonomically diverse and responded in guilds of taxa to the salinity levels. We conclude that both specialized inoculations differ greatly in how they influence the plant microbiome and that plant growth at higher salinity levels was associated with a denser and more complex root microbial community.
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页数:12
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