Soil nutrient transformation capacity is a critical determinant of sustainable productivity in perennial cropping systems; however, the extent to which high-yielding crops actively regulate rhizosphere microbial assembly to maintain nutrient availability remains poorly understood. We investigated whether root exudates from high-yielding alfalfa (Medicago sativa L.) selectively recruit plant growth-promoting rhizobacteria (PGPR) to enhance nutrient transformation. In an 8-year continuous alfalfa system (2018-2025), high-yielding cultivars increased soil organic carbon by 8.64%, total nitrogen by 6.01%, and moderately labile phosphorus fractions by 1.62%. Rhizobox experiments demonstrated that root exudates enhanced growth only with an active microbiome. High-yielding alfalfa enriched PGPR communities, specifically Ensifer, Pseudomonas, and Bacillus. Isolated strains exhibited N fixation, P solubilisation, and IAA production. Metabolomic profiling revealed that exudates were enriched in specific sugars and amino acids. Maltopentaose, maltotetraose, taurine, N-acetyl-L-leucine, and asparagine functioned as chemoattractants, stimulating PGPR proliferation and biofilm formation. These findings demonstrate that root exudate-mediated, targeted recruitment of functional PGPR enhances N fixation and P transformation, thereby supporting sustained high alfalfa productivity. This study demonstrates a key rhizosphere mechanism underlying the long-term sustainability of high-yielding perennial legume systems and provides a mechanistic basis for microbiome-informed sustainable alfalfa production and management.
Yanliang Sun, Kongqin Wei, Kaixin Yang et al.· Plant, Cell and Environment· 0 citations
Arbuscular mycorrhizal fungi (AMF) and rhizobia establish mutualistic symbioses with plant roots. This study focused on their effects on alfalfa (Medicago sativa L.) growth, root morphology, nutritional quality, photosynthetic characteristics, and protein fractions; eight treatments were established: single inoculation with three AMF strains (Funneliformis mosseae, Claroideoglomus etunicatum, Glomus versiforme) or Sinorhizobium meliloti (Sm), dual co-inoculation of each AMF with Sm, and a non-inoculated control (CK). Results showed that all AMF successfully colonized alfalfa roots, with co-inoculation increasing both mycorrhizal colonization rate and nodule number. The F. mosseae × Sm treatment achieved the highest colonization (83.3%) and nodule count (76 per plant). Across two years, this treatment significantly increased aboveground biomass, plant height, and stem diameter (p < 0.05). C. etunicatum × Sm significantly reduced acid detergent fiber content, while dual inoculation markedly improved net photosynthetic rate and light-use efficiency. All inoculations increased rapidly (PB1) and intermediate-degradable protein (PB2) but decreased non-protein nitrogen (PA) and bound protein (PC). In conclusion, AMF and rhizobia exhibit significant synergistic effects. Co-inoculation (F. mosseae × Sm and C. etunicatum × Sm) enhances alfalfa productivity by optimizing root structure, improving photosynthesis, and regulating nitrogen metabolism.
Xiang Li, Qian-Bing Zhang· Agronomy· 0 citations
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