Jul 2026· Ecotoxicology and Environmental Safety· Vol 322, pp.
120537
· 2 citations· 94 references
Medicine
TL;DR
It is demonstrated that melatonin enhances wheat tolerance to arsenic toxicity by strengthening antioxidant defenses, improving osmotic adjustment, and promoting the accumulation of protective metabolites, highlighting its potential as an effective strategy for enhancing heavy-metal stress resilience in wheat and other crop species.
Abstract
Arsenic (As) contamination is a major environmental constraint that impairs wheat growth and productivity by disrupting cellular redox homeostasis, photosynthesis, and metabolic processes. Melatonin (MT), a multifunctional plant signaling molecule, has emerged as a promising regulator of plant tolerance to abiotic stresses; however, its role in mitigating As toxicity in wheat remains insufficiently understood. Wheat seedlings of three cultivars (Anaj-17, Galaxy-13, and Nayab-11) were grown in pots containing dried sand and exposed to As stress (20 mg L⁻¹) with or without MT supplementation (75 and 150 µM). Arsenic stress markedly increased As accumulation in grains, malondialdehyde (MDA), hydrogen peroxide (H₂O₂), and electrolyte leakage (EL%), while significantly reducing biomass, chlorophyll content, and gas exchange parameters. In contrast, MT application, particularly at 150 µM, effectively alleviated As-induced oxidative damage by enhancing the activities of catalase (CAT), peroxidase (POD), and superoxide dismutase (SOD). Melatonin also promoted the accumulation of glycine betaine, proline, total soluble sugars, total soluble proteins, and phenolic compounds, contributing to improved physiological performance and stress tolerance. Among the tested cultivars, Anaj-17 exhibited the greatest resilience to As stress and the strongest response to MT treatment, followed by Galaxy-13 and Nayab-11, indicating considerable genotypic variation in As tolerance. These findings demonstrate that melatonin enhances wheat tolerance to arsenic toxicity by strengthening antioxidant defenses, improving osmotic adjustment, and promoting the accumulation of protective metabolites, highlighting its potential as an effective strategy for enhancing heavy-metal stress resilience in wheat and other crop species.
Soil salinization poses a significant threat to agricultural production, necessitating innovative agronomic strategies to mitigate its impact. Salinity stress is a critical abiotic factor that hampers tomato growth by causing ionic imbalances, oxidative damage, and disruptions in physiological systems. This study inves...
I. Badawy, H. I. Mohamed, Hossam M. Fouda et al.· BMC Plant Biology· 0 citations
The evidence reviewed indicates that As can induce changes in both primary and secondary metabolic pathways, and future research should integrate genomics, transcriptomics, proteomics, and metabolomics to elucidate the molecular basis of As tolerance and support modern crop breeding programs aimed at developing arsenic...
E. P. Trejo-Nava, C. Ozuna, J. Salas-Leiva et al.· Horticulturae· 0 citations
critical insights are provided into these interdependent responses in plants to understand how they contribute to enhancing stress tolerance and improving crop productivity, which will be highly valuable for developing strategies to optimize plant responses under rising salinity levels and, consequently, improve crop y...
Apurva Ahlawat, N. Mishra, M. Bajpai· BIO Web of Conferences· 0 citations
Melatonin functions as a central signaling hub that integrates redox regulation, hormonal signaling, and multi-omics networks to enhance plant tolerance to heavy metal stress and offer promising strategies to improve crop resilience and phytoremediation efficiency in contaminated environments.
Si-Xi Zhu, Yu-Tian Lv, Shao-Xiong Lin et al.· Plant physiology and biochem...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.