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December 14, 2025Environmental Microbiome2 citationsOpen Access

Amino acid biostimulant increases radiata pine photosynthetic efficiency and growth with shifts in mycobiome and nitrogen assimilation

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JCJamil ChowdhuryNMN. MilneMWMax Wade

Key Points

  • The research aims to investigate the effects of amino acid biostimulants on the growth and physiology of radiata pine seedlings.
  • Substituted conventional inorganic fertilisation with amino-acid-based biostimulants.
  • Measured shoot biomass, plant height, and root collar diameter.
  • Analyzed shifts in root fungal community and its ecological roles using machine learning models.
  • Evaluated nitrogen assimilation and chlorophyll content.
  • Amino-acid fertigation increased shoot biomass, plant height, and root collar diameter.
  • Significant changes in the root mycobiome observed, with enhanced auxin production.
  • Positive correlations noted between nitrogen assimilation and photosynthetic efficiency.
  • Machine learning models identified key fungal genera linked to plant biomass enhancements.

Abstract

Abstract Background Amino-acid biostimulants have emerged as powerful alternatives to conventional inorganic nitrogen fertilisers, yet their potential in forestry species like radiata pine ( Pinus radiata ) remains largely unexplored. In this study, we reveal physiological mechanisms of enhanced growth of radiata pine seedlings that are achieved by substituting standard inorganic fertigation, either partially or entirely, with amino-acid-based biostimulants. Results Amino-acid fertigation notably increased shoot biomass, plant height, and root collar diameter. Critically, this approach reshaped the root fungal community, selectively enriching fungi with diverse ecological roles, including several taxa known for auxin production. These microbial shifts coincided with higher needle auxin, a plausible link that merits testing. Machine learning models further identified key fungal genera that strongly associated with plant biomass, reinforcing microbiome shifts as a contributing mechanism to enhanced growth. Additionally, amino-acid fertigation improved nitrogen assimilation, correlating positively with increased chlorophyll content and photosynthetic efficiency. Conclusions Our findings highlight that the transition from inorganic source to amino-acid biostimulants not only enhances plant growth and nitrogen use but also associated with a shift in the root mycobiome, including taxa often considered beneficial, thereby offering a sustainable pathway to nursery production of radiata pine.

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Cite This Study

Chowdhury et al. (2025) studied this question.

synapsesocial.com/papers/6941aaa70f5af7fd17df4afehttps://doi.org/10.1186/s40793-025-00835-x
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