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June 4, 2026Journal of Agricultural and Food Chemistry3 citations

Dual-Functional Rhizobium dioscoreae Q9a for Glyphosate Biodegradation and Plant Growth Promotion: Insights into the Degradation Kinetics, Catabolic Pathways, Beneficial Properties, and Underlying Enzymatic Mechanisms

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YHYaohua HuangQLQiqi LeiZCZiye Chen

Key Points

  • This research aims to investigate the glyphosate-degrading and plant growth-promoting capabilities of Rhizobium dioscoreae Q9a.
  • Isolated glyphosate-degrading bacterium from soil and characterized its properties.
  • Evaluated glyphosate degradation (50 mg/L) within 9 days in liquid culture.
  • Conducted genome sequencing to identify candidate genes related to glyphosate metabolism.
  • Glyphosate was effectively degraded by strain Q9a within 9 days in liquid culture.
  • Strain Q9a produced 45 μg/mL indole-3-acetic acid and solubilized 150 mg/L insoluble phosphate.
  • Molecular analysis confirmed GoxD as a key enzyme with Ser38 identified as the critical active site for glyphosate catalysis.

Abstract

The extensive and persistent application of glyphosate has led to its accumulation in agricultural soils, creating potential ecological and health risks. In this study, a novel glyphosate-degrading bacterium, Rhizobium dioscoreae Q9a, was isolated and characterized. Strain Q9a effectively degraded glyphosate (50 mg/L) within 9 d in liquid culture. In addition to its degradative ability, strain Q9a exhibited multiple plant growth-promoting traits, including solubilization of up to 150 mg/L insoluble phosphate, production of 45 μg/mL indole-3-acetic acid, and siderophore secretion. Genome sequencing revealed multiple candidate genes potentially responsible for glyphosate metabolism, and heterologous expression validated the glyphosate oxidoreductase function of the key enzyme GoxD encoded by an oxidoreductase gene. Further, molecular docking and site-directed mutagenesis confirmed that Ser38 serves as the critical active site in GoxD for catalyzing glyphosate. These findings highlight the potential of strain Q9a as a promising bioinoculant for the bioremediation of glyphosate-contaminated environments and for enhancing crop growth.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/6a2115bdd499ed480b16ebebhttps://doi.org/10.1021/acs.jafc.5c16859
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