Integrated Analysis of Rhizosphere Metabolome and Hormones Reveals Regulatory Mechanisms in Intercropped Asparagus cochinchinensis

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Abstract

Background The increasing demand for high-quality medicinal herbs necessitates efficient land-use strategies. Understory intercropping offers a sustainable solution, yet the biochemical mechanisms governing plant adaptation and quality formation remain unclear. Methods This study investigated the intercropping of Asparagus cochinchinensis ( A. cochinchinensis ) under Pinus massoniana ( P. massoniana ) plantations. We compared agronomic traits, endogenous phytohormones, and rhizosphere metabolites among three groups, namely P. massoniana forest soil (Soil-A), A. cochinchinensis monoculture soil (Soil-B), and intercropping soil (Soil-C), using LC-MS-based metabolomics and targeted hormone profiling. Results Intercropping did not alter key agronomic traits but significantly increased total saponin content ( P  < 0.05) while decreasing chlorophyll levels ( P  < 0.01). Phytohormone analysis revealed a distinct hormonal signature in intercropped plants, characterized by decreased abscisic acid (ABA) and jasmonic acid (JA), alongside elevated salicylic acid (SA), cis-12-oxophytodienoic acid (cis-OPDA), and bioactive cytokinins. Rhizosphere metabolomics identified 25 differential metabolites, with notable enrichment of trans-cinnamic acid and gibberellin A 4 (GA 4 ) in Soil-C. KEGG analysis highlighted the significant activation of plant hormone signal transduction and aminobenzoate degradation pathways. Conclusion A. cochinchinensis exhibits morphological-metabolic decoupling under intercropping, prioritizing secondary metabolism over structural growth. The accumulation of trans-cinnamic acid and GA 4 in the rhizosphere appears to interface with endogenous hormone signaling, specifically involving the SA pathway and cis -OPDA-mediated regulation, to enhance saponin biosynthesis. This study provides a theoretical basis for optimizing P. massoniana/A. cochinchinensis agroforestry systems to achieve stable yields and improved medicinal quality.

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