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May 12, 2026Plant Signaling & Behavior2 citationsOpen Access

Gibberellic acid modulates drought stress signaling, antioxidant defense, and ionic homeostasis in spinach

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SASadia AshrafMSMuhammad ShahbazTRTahrim Ramzan

Key Points

  • This research aims to explore how gibberellic acid (GA) influences drought stress responses in spinach at physiological and biochemical levels.
  • Pot experiment with two spinach cultivars (Desi and Lahori) under well-watered and drought conditions (50% field capacity)
  • Foliar applications of GA at concentrations of 0, 100, and 200 ppm was employed
  • Measurements were taken for growth traits, antioxidant enzyme activities, and ionic balances.
  • GA at 200 ppm enhanced antioxidant enzyme activities by 51.1% for CAT, 44.2% for POD, and 42.6% for SOD
  • Oxidative damage indicators decreased, showing reductions in H₂O₂ by 3.6% and MDA by 25.3%
  • Ionic uptake increased significantly with GA, showcasing K⁺ (96.6%) and Ca²⁺ (46.3%) enhancements while limiting Na⁺ accumulation by 11.2%.

Abstract

L.). Plant hormones play a central role in decoding stress signals and coordinating adaptive responses. This study investigated the role of exogenous gibberellic acid (GA) in regulating drought-induced physiological, biochemical, and ionic signaling in spinach. A pot experiment was conducted using two spinach cultivars (V1 = Desi, V2 = Lahori) subjected to well-watered and drought conditions (50% field capacity), combined with foliar GA applications (0, 100, and 200 ppm). Drought stress markedly altered plant behavior by suppressing growth traits, photosynthetic pigment synthesis, and redox balance, while increasing reactive oxygen species accumulation. GA application, particularly at 200 ppm, significantly modulated drought stress signaling by activating antioxidant defense systems CAT (51.1%), POD (44.2%), and SOD (42.6%), reducing oxidative damage indicators H₂O₂ (3.6%) and MDA (25.3%), and restoring metabolic stability. In addition, GA regulated ionic homeostasis by limiting Na⁺ (11.2%) accumulation and promoting K⁺ (96.6%) and Ca²⁺ (46.3%) uptake in both roots and shoots, reflecting improved stress adaptation. Cultivar-specific responses indicated higher signaling sensitivity and adaptive capacity in the Desi variety under drought stress. Overall, these findings demonstrate that gibberellic acid acts as a key regulatory signal that orchestrates antioxidant, metabolic, and ionic responses, thereby increasing drought stress adaptability in spinach.

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Cite This Study

Ashraf et al. (2026) studied this question.

synapsesocial.com/papers/6a02c2fdce8c8c81e9640576https://doi.org/10.1080/15592324.2026.2664969
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