Regulatory Mechanisms Underlying Flavonoid-Mediated Restructuring of the Rhizosphere Microbiome in Alfalfa (Medicago sativa L.) Under Salt Stress
Zuoliang Long, Fei Zhang, Shuhan Zhang, Shaowei Li, Xiaoli Wang, Xinqiang Zhu, Feifan LengThis study employed two Medicago sativa L. varieties with contrasting salt tolerance—Zangmu No.1 (ZM1, salt-tolerant) and Zangmu No.2 (ZM2, salt-sensitive)—to investigate root exudate composition, rhizosphere microbiome assembly, and their potential correlations under 0 mM, 100 mM, and 200 mM NaCl stresses. Under 200 mM NaCl, ZM1 exhibited specific activation of flavonoid-related metabolic pathways (including flavonoid degradation and tyrosine metabolism), resulting in significant upregulation of characteristic flavonoids such as naringin (a metabolite designated as NEG885 in our LC-MS library) and apigenin (POS148) in root exudates. Correlation analysis revealed that these metabolites were significantly and positively associated with the enrichment of salt-tolerant bacterial taxa, including Pseudarthrobacter and Adhaeribacter. In contrast, ZM2 under identical stress conditions showed significantly enhanced synthesis of p-hydroxyphenylacetic acid (NEG151, p < 0.05) which correlated with Limnobacter and Flavobacterium, indicating ZM2’s comparatively limited metabolic regulatory capacity. Notably, exogenous supplementation of salt-tolerant plant growth-promoting rhizobacteria (PGPR) from γ-Proteobacteria (Atlantibacter, Enterobacter) and Bacilli (Priestia) effectively alleviated growth inhibition in Medicago sativa (both ZM1 and ZM2) under 200 mM NaCl, primarily through promoting root/shoot elongation, leaf expansion, and photosynthetic efficiency while maintaining root “high K+/low Na+” ion homeostasis. These PGPR demonstrated multifunctional traits including indole-3-acetic acid biosynthesis, phosphate solubilization, and nitrogen fixation. qRT-PCR analysis confirmed their regulatory effects on salt-responsive genes such as CHI1 (chalcone isomerase 1) and CYP75A1 (flavonoid 3′,5′-hydroxylase), mediating root development and ion balance. This work elucidates the potential regulatory role of flavonoid metabolism in Medicago sativa’s recruitment of beneficial microbiota under salt stress, providing a theoretical foundation for developing salt-resistant cultivars through plant–microbe synergy strategies.