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May 15, 2026Plants0 citationsOpen Access

Humic Acid Modulates Photosynthetic Responses to PEG-Induced Drought in Ocimum basilicum L.

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MSMartin StefanovGRGeorgi D. RashkovPBPreslava Borisova

Key Points

  • This research aims to evaluate how different concentrations of humic acid affect the photosynthetic responses of sweet basil under drought conditions.
  • Evaluated effects of foliar-applied humic acid at 1, 3, and 5 mg/mL concentrations on Ocimum basilicum under PEG-induced drought stress.
  • Analyzed chlorophyll a fluorescence using JIP-test and PAM, alongside assessments of leaf pigment composition and membrane integrity.
  • Measured oxidative stress markers and antioxidant enzyme activity following treatment.
  • 5 mg/mL humic acid significantly protected against drought stress, showing improved qP and QA− reoxidation.
  • Drought-induced oxidative stress markers increased, but HA treatment elevated antioxidant enzyme activity and total phenolic compounds.
  • Lower concentrations (1 and 3 mg/mL) did not provide adequate protection, limiting efficiency in drought tolerance.

Abstract

Drought is a major environmental constraint that disrupts photosynthetic processes. This study investigated the effects of foliar-applied commercial humic acid (HA) at different concentrations (1, 3 and 5 mg/mL) on the photosynthetic apparatus of sweet basil (Ocimum basilicum L. Italiano classico) under PEG-induced stress. The responses of the photosynthetic machinery were evaluated using chlorophyll a fluorescence analyses (JIP-test and PAM), leaf pigment composition, and assessments of membrane integrity. Drought stress caused pronounced alterations on both the donor and acceptor sides of photosystem II (PSII), including impaired QA− reoxidation, reduced open PSII reaction centers (qP), diminished electron transport (ETo/RC, REo/RC), and substantial declines in performance indices (PIABS, PItotal). Energy dissipation increased (DI0/RC), with regulated energy losses (FNPQ) rising more strongly than non-regulated losses (FNO). Drought also elevated oxidative stress markers (MDA and H2O2), leading to enhanced membrane injury. Among the tested concentrations, 5 mg/mL HA provided the most effective protection against drought stress. This treatment mitigated PEG-induced damage on both PSII donor and acceptor sides and increased the proportion of open reaction centers (qP). Improved PSII photochemistry corresponded with more efficient QA− reoxidation, facilitated its interaction with plastoquinone, and caused the overall stabilization of photosynthetic functions under drought. The protective effects of HA were also evident for both PSI subpopulations. The enhanced tolerance was associated with the activation of antioxidant enzymes (CAT, SOD, APX) and the increased levels of anthocyanins and total phenolic content (TPC). In contrast, lower HA concentrations (1 and 3 mg/mL) provided insufficient protection. This study clearly demonstrates that HA enhances drought tolerance in basil in a concentration-dependent manner by protecting the structural and functional integrity of the photosynthetic apparatus, supporting its potential use as a foliar treatment to improve crop resilience under water-limited conditions.

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Cite This Study

Stefanov et al. (2026) studied this question.

synapsesocial.com/papers/6a06b83de7dec685947aac86https://doi.org/10.3390/plants15101491
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