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October 16, 2025PLANT CELL BIOTECHNOLOGY AND MOLECULAR BIOLOGY2 citationsOpen Access

Biochemical Interactions in the Rhizosphere: Roles of Root Exudates, Flavonoids and Phytoalexins in Plant–Microbe Communication

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GSGali SureshPSPriyanka SharmaBKBasant Kumar

Key Points

  • Root exudates enhance microbial communities and affect plant stress responses, influencing overall plant health.
  • Flavonoids function as chemo-attractants and support antimicrobial defense in legume–rhizobia interactions.
  • Phytoalexins provide robust antimicrobial activity and activate systemic acquired resistance during pathogen attacks.
  • Recent advances in metabolomics and microbiome research highlight the complexity of biochemical communication in the rhizosphere.

Abstract

The rhizosphere functions as a biochemical interface where plants and microbes exchange signals that regulate growth, defense, and adaptation. Root exudates, including sugars, amino acids, organic acids, and specialized metabolites, shape microbial communities, mobilize nutrients, and influence plant stress responses. Among secondary metabolites, flavonoids act as key chemo-attractants and signaling molecules in legume–rhizobia symbiosis while also contributing to antimicrobial defense and redox balance. Phytoalexins, synthesized de novo upon pathogen attack, provide potent antimicrobial activity and trigger systemic acquired resistance. Recent advances in metabolomics, transcriptomics, and microbiome research reveal the complexity of these biochemical pathways and their role in rhizosphere communication. Integrating this knowledge offers opportunities for rhizosphere engineering, development of microbial inoculants, and breeding strategies that exploit metabolite-mediated signaling for crop resilience. This review highlights the roles of root exudates, flavonoids, and phytoalexins in plant–microbe biochemical interactions with implications for sustainable agriculture.

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Cite This Study

Suresh et al. (2025) studied this question.

synapsesocial.com/papers/68f0d5eb105731330a2b1e53https://doi.org/10.56557/pcbmb/2025/v26i9-109828
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Also Consider

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  4. 4Progress in Plant Rhizosphere Microbiome Research for Improved Growth, Nutrient Uptake, and Disease Resistance2026 · 11 citations
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