NARA Discovery
Article Details
← Back to Search Results
Journal Article

Early inoculation with arbuscular mycorrhizal fungi shifts metabolic functions of rhizosphere bacteria in field-grown tomato plants

Beatriz Moreno; Javier Lidoy; Martin Aguirrebengoa; Luis España; Andrea Ramos; Juan M. García; María J. Pozo; Juan A. López-Ráez; Emilio Benítez
Plant and Soil · Vol. 517, Issue 2 · pp. 1623-1641 · 2025

Abstract

Aim The study explores the functional plasticity of rhizosphere microbiomes in response to microbial inoculants, a topic not yet fully explored in open-field agroecosystems. Specifically, it assesses the lasting impact of nursery-stage inoculation with the arbuscular mycorrhizal fungus (AMF) Rhizophagus irregularis and symbiosis-stimulating compounds on the rhizosphere microbiome of Solanum lycopersicum . Methods Tomato seedlings were inoculated with R. irregularis in a commercial nursery. During this period, seedlings were irrigated weekly with strigolactone analogues and the flavonoid quercetin, both with and without AMF inoculation. At harvest, five months post-transplanting, rhizosphere samples were collected for mycorrhizal colonization assessment and predictive metagenomic profiling. Results Nursery AMF inoculation, especially when combined with the strigolactone mimic SL-M2 and quercetin, significantly enhanced mycorrhizal colonization. Although all plants became colonized, early inoculation did not affect bacterial or fungal taxonomic composition at harvest. However, it induced substantial shifts in predicted bacterial metabolic functions, affecting 137 of 154 KEGG modules. These changes, which included key metabolic shifts—such as reduced energy metabolism, increased carbohydrate degradation over lipid or amino acid metabolism, and enriched biosynthesis of stress-responsive metabolites—occurred independently of later colonization or signalling molecule application. Conclusions Early AMF inoculation primes the rhizosphere bacteriome toward a stress-adapted functional state, likely mediated by altered root exudation during early symbiosis. The application of SL-M2 and quercetin further supports their role as prebiotics in sustaining inoculant efficacy. This study provides mechanistic insight into how nursery-stage microbial interventions can shape rhizosphere functionality, offering promising strategies for microbiome-driven improvements in sustainable agriculture. Graphical Abstract

Bibliographic Information

JournalPlant and Soil
PublisherSpringer
Publication Date2025-12-01
Publication Year2025
Volume517
Issue2
Pages1623-1641
Document TypeJournal Article
Print ISSN0032-079X
eISSN1573-5036
DOI10.1007/s11104-025-07944-z

Access Information

NARA Access Coverage1948-01-01~Current
Journal Homepagehttps://www.springer.com/journal/11104
Publisher PageOpen Publisher Page
Full-text access depends on NARA's subscribed coverage and institutional access.