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May 7, 2026Plant Physiology and Biochemistry2 citationsOpen Access

Integration of physiological and molecular analyses reveals that a plant-based biostimulant delays drought-induced leaf senescence & improves maize yield

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AKAakansha KanojiaNSNeerakkal SujeethSGSaurabh Gupta

Key Points

  • This research aims to elucidate the molecular mechanisms underlying the effects of a plant-based biostimulant on maize leaf senescence and yield during drought conditions.
  • Applied AgriPrime Stimulus biostimulant to maize at reproductive stage.
  • Conducted integrated physiological, transcriptomic, and metabolomic analyses.
  • Evaluated impacts on metabolic processes and gene expression related to drought tolerance.
  • APS priming resulted in a significant increase in cob weight and yield under drought conditions.
  • Photosynthesis-related genes were enriched, and tricarboxylic acid cycle intermediates were elevated in primed plants.
  • Reduced levels of abscisic acid and ethylene were noted, alongside strengthened cell wall composition.

Abstract

Drought-induced senescence is a major cause of maize yield loss. While biostimulant priming improves stress tolerance, its molecular basis is unclear. Here we demonstrate that priming maize with the plant-derived biostimulant AgriPrime Stimulus (APS) delays drought-induced leaf senescence at reproductive-stage, resulting in improved cob weight and yield. Integrated physiological, transcriptomic, metabolomic, and phytohormone analyses revealed that APS priming preserves source leaf functionality by maintaining key metabolic processes. APS-primed drought-stressed leaves showed enrichment of photosynthesis-related genes and elevated levels of tricarboxylic acid cycle intermediates, indicating maintained carbon metabolism. APS priming also strengthened cell wall through the induction of genes involved in cellulose, hemicellulose, pectin, cutin, and wax biosynthesis, with increased structural metabolites such as xylose, mannose, and galactonic acid. Delayed senescence was further supported by enhanced redox homeostasis, with upregulation of antioxidant-related genes including superoxide dismutase ( SOD3 ), peroxidases ( PRXs ), glutathione S-transferases ( GSTs ), and ascorbate-associated genes ( BX13 ), together with increased levels of protective metabolites such as proline, trehalose, and myo -inositol. In parallel, APS priming suppressed proteolysis and senescence-associated genes ( NYC1, NYE1, SAG39, NAC042 ). Integration of phytohormone and transcriptomic data further revealed maintained growth-promoting hormones alongside reduced abscisic acid and ethylene biosynthesis. Consistent with this reduced catabolic state, APS-primed leaves accumulated amino acids linked to growth, while unprimed drought-stressed leaves accumulated amino acids related to protein degradation. Collectively, these findings show that APS priming preserves source-sink relationships during drought by maintaining leaf longevity, and strengthening sink support, which improves cob weight under water deficit. • Biostimulant priming delays drought-induced leaf senescence • Sustained photosynthesis and TCA cycle activity in primed plants • Hormonal modulation reduces ABA and ethylene biosynthesis • Cell wall reinforcement supports drought stress tolerance • Preserved source–sink balance improves grain filling

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Cite This Study

Kanojia et al. (2026) studied this question.

synapsesocial.com/papers/69fc2ba98b49bacb8b34794ehttps://doi.org/10.1016/j.plaphy.2026.111328
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