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Blahovska, Z.

Publications and source records attributed to Blahovska, Z..

2 recordsLinked to original sources

Functional capacities drive recruitment of bacteria into plant root microbiota

Host-associated microbiota follow predictable assembly patterns but show significant variation at the bacterial isolate level depending on the host and environmental context. This variability poses challenges for studying, predicting, and engineering microbiomes. Here we examined how Arabidopsis, Barley, and Lotus plants recruit specific bacteria from highly complex synthetic communities (SynComs) composed of hundreds of bacterial isolates originating from these plants when grown in natural soil. We discovered that, despite their taxonomic diversity, bacteria enriched by these three plant species encode largely overlapping functions. A set of 266 functions common among all host-associated communities was identified at the foundation of the microbiotas functional potential. Analysis of the differences observed between root-associated communities revealed that functions recruited by Arabidopsis and Barley were primarily driven by the SynCom composition, while Lotus selected fewer isolates but with more diverse functionalities, akin to a Swiss army knife strategy. We analysed the variation at the functional level and found this can be explained by the combined functions of bacteria at the family level. Additionally, across major taxa, the isolates covering a broader range of their familys functional diversity achieved higher relative abundance in the root communities. Our work sheds light on key functions and principles guiding the recruitment of bacterial isolates into root microbiota, offering valuable insights for microbiome engineering and inoculant discovery at a previously inaccessible taxonomic level.

plant biology↗

Nitrogen source and Nod factor signaling map out the assemblies of Lotus japonicus root bacterial communities

Symbiosis with soil-dwelling bacteria that fix atmospheric nitrogen allows legume plants to grow in nitrogen-depleted soil. Symbiosis impacts the assembly of root microbiota, but it is not known how this process takes place and whether it is independent of nitrogen nutrition. We use plant and bacterial mutants to address the role of Nod factor signaling on Lotus japonicus root microbiota assembly. We found that Nod factors are produced by symbionts to activate Nod factor signaling in the host, and this modulates the assembly of a symbiotic root microbiota. Lotus plants grown in symbiosis-permissive or suppressive soils delineated three nitrogen-dependent nutritional states: starved, symbiotic, or inorganic. We found that root and rhizosphere microbiomes associated with these states differ in composition and connectivity, demonstrating that symbiosis and inorganic nitrogen impact the legume root microbiota differently. Finally, we demonstrated that selected bacterial genera delineating state-dependent microbiomes have a high level of accurate prediction.

plant biology↗