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August 16, 2025Frontiers in Microbiology14 citationsOpen Access

A stable 15-member bacterial SynCom promotes Brachypodium growth under drought stress

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AYArchana YadavMCMingfei ChenSAShwetha M. Acharya

Key Points

  • The stable bacterial syncom enhances Brachypodium growth, showing promise in drought stress resilience.
  • Plants with the syncom exhibited improved recovery compared to those without, indicating its effectiveness.
  • This research involves constructing a 15-member syncom from the rhizobiome of Brachypodium distachyon for enhanced plant functions.
  • Findings suggest localized plant–microbe signaling contributes to better growth under stress, emphasizing interaction significance.

Abstract

Introduction Rhizosphere microbiomes are known to drive soil nutrient cycling and influence plant fitness during adverse environmental conditions. Field-derived robust Synthetic Communities (SynComs) of microbes mimicking the diversity of rhizosphere microbiomes can greatly advance a deeper understanding of such processes. However, assembling stable, genetically tractable, reproducible, and scalable SynComs remains challenging. Methods Here, we present a systematic approach using a combination of network analysis and cultivation-guided methods to construct a 15-member SynCom from the rhizobiome of Brachypodium distachyon . This SynCom incorporates diverse strains from five bacterial phyla. Genomic analysis of the individual strains was performed to reveal encoded plant growth-promoting traits, including genes for the synthesis of osmoprotectants (trehalose and betaine) and Na + /K + transporters, and some predicted traits were validated by laboratory phenotypic assays. Results The SynCom demonstrates strong stability both in vitro and in planta . Most strains encoded multiple plant growth-promoting functions, and several of these were confirmed experimentally. The presence of osmoprotectant and ion transporter genes likely contributed to the observed resilience of Brachypodium to drought stress, where plants amended with the SynCom recovered better than those without. We further observed preferential colonization of SynCom strains around root tips under stress, likely due to active interactions between plant root metabolites and bacteria. Discussion Our results demonstrate that trait-informed construction of synthetic communities can yield stable, functionally diverse consortia that enhance plant resilience under drought. Preferential colonization near root tips points to active, localized plant–microbe signaling as a component of stress-responsive recruitment. This stable SynCom provides a scalable platform for probing mechanisms of plant-microbe interaction and for developing microbiome-based strategies to improve soil and crop performance in variable environments.

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Yadav et al. (2025) studied this question.

synapsesocial.com/papers/68a366a20a429f797332c63chttps://doi.org/10.3389/fmicb.2025.1649750
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