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ARS Home » Pacific West Area » Parlier, California » San Joaquin Valley Agricultural Sciences Center » Water Management Research » Research » Publications at this Location » Publication #427721

Research Project: Improving Soil and Water Productivity and Quality in Irrigated Cropping Systems

Location: Water Management Research

Title: Strigolactone GR24 modulates citrus root architecture and rhizosphere microbiome under nitrogen and phosphorus deficiency

Author
item SOLIMAN, SABRY - Ain Shams University Of Cairo
item REZK, ALAAELDIN - University Of California, Riverside
item ROCHA, FERNANDO - University Of Oklahoma
item Rodriguez Ramos, Jean
item MANOHARAN, BHARANI - University Of California, Riverside
item WANG, YI - China Agriculture University
item HAN, ZHENHAI - China Agriculture University
item Hale, Lauren
item EL-KEREAMY, ASHRAF - University Of California, Riverside

Submitted to: BMC Plant Biology
Publication Type: Peer Reviewed Journal
Publication Acceptance Date: 10/6/2025
Publication Date: 11/14/2025
Citation: Soliman, S., Rezk, A., Rocha, F., Rodriguez Ramos, J.C., Manoharan, B., Wang, Y., Han, Z., Hale, L.E., El-kereamy, A. 2025. Strigolactone GR24 modulates citrus root architecture and rhizosphere microbiome under nitrogen and phosphorus deficiency. BMC Plant Biology. 25. Article 1569. https://doi.org/10.1186/s12870-025-07515-5.
DOI: https://doi.org/10.1186/s12870-025-07515-5

Interpretive Summary: Treatment of crops with plant hormones has potential to support high yielding cropping systems with lower fertilizer requirements. Specifically, Strigolactones are a class of phytohormones that regulate root development and plant-microbe interactions, which in turn, can enhance nutrient uptake and nutrient use efficiency. This study evaluated the effects of Strigolactone treatments on citrus in nitrogen and phosphorus deficient scenarios and revealed an optimal Strigolactone concentration to enhance root architecture and nutrient acquisition. Citrus rhizosphere bacterial and fungal microbiomes treated with Strigolactone had variances in their community structures that were indicative of selective recruitment for taxa, and notably of dentification-related functions, which were more prominent in N deficient treatments receiving Strigolactone. Overall, this study revealed the potential of Strigolactone to modulate citrus root development, nutrient uptake, and recruitment of microorganisms to support nutrient acquisition under nutrient limited scenarios.

Technical Abstract: Plant nutrient deficiencies, especially nitrogen (N) and phosphorus (P) deficiencies, are among the most critical challenges for sustainable crop production. Excessive use of chemical fertilizers contributes to environmental degradation, highlighting the need for alternative strategies to improve nutrient uptake. Strigolactones (SLs), a class of plant hormones, have emerged as key regulators of root development and plant–microbe interactions under nutrient-limited conditions. In this study, we investigated the effects of the SL analog GR24 on citrus rootstock C-32 under full nutrition, nitrogen deficiency, and phosphorus deficiency conditions. Plants were treated with five GR24 concentrations (0, 1, 2.5, 5, and 10 µM) and evaluated for changes in root architecture, biomass, soil nutrient content, and rhizosphere microbiomes. The results showed that SL application had a concentration-dependent effect on root morphology. The 2.5 µM SL treatment enhanced fine root initiation, proliferation, and lateral branching under nutrient deficiency, whereas higher concentrations (5 and 10 µM) generally had inhibitory effects. Root surface area and volume were modulated differently across diameter classes, depending on nutrient status and SL dose. Soil nutrient analyses indicated minor alleviating effects of SL on N and P starvation; however, SL significantly affected Cu and Mn. Microbiome analysis revealed that SL reduced bacterial ASV richness but increased dispersion in community structure, particularly under N and P deficiency. Functional annotation indicated changes in denitrification and methanotrophy pathways. Overall, SLs modulated both the root architecture and rhizosphere microbiome composition of citrus plants under nutrient stress. These findings suggest a dual role for SLs in enhancing root plasticity and microbial recruitment, with potential applications in sustainable crop nutrition and soil health.