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February 2, 2026Plants3 citationsOpen Access

Exogenous Melatonin Confers Salt-Alkali Tolerance in Fraxinus mandshurica by Orchestrating Resource Allocation and Activating Phenylpropanoid-Mediated Defenses

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JYJunqi YuZXZiye XuFHFan Huang

Key Points

  • This research aims to investigate how exogenous melatonin influences salt-alkali tolerance in Fraxinus mandshurica.
  • Seedlings exposed to 400 mmol L−1 saline-alkali stress and treated with foliar melatonin
  • Assessment of growth indicators like height, diameter, and dry biomass
  • Measurement of antioxidant enzyme activities using SOD and POD
  • Integrated analysis of transcriptome (RNA-seq) and metabolome data
  • Evaluation of photosynthetic rate and antioxidant capacity
  • Melatonin application increased dry biomass by 29% and height by 13%
  • Enhancements observed in net photosynthetic rate and antioxidant capacity
  • Melatonin activated key KEGG pathways related to stress adaptation
  • Coordinated upregulation of genes and metabolites supporting phenylpropanoid biosynthesis

Abstract

The physiological mechanism of melatonin in alleviating combined saline-alkali stress in Fraxinus mandshurica remains unclear. This study aimed to determine the efficacy of exogenous melatonin in enhancing salt tolerance and elucidate the underlying mechanisms through integrated physiological and multi-omics analyses. Seedlings were subjected to 400 mmol L−1 saline-alkali stress and treated with foliar melatonin. We quantified key growth indicators (height, diameter, dry biomass) and measured the activities of antioxidant enzymes (SOD, POD). Melatonin significantly alleviated growth inhibition, increasing biomass and height by 29% and 13%, respectively, while enhancing net photosynthetic rate and antioxidant capacity. To uncover the systemic regulation, conjoint analysis of transcriptome (RNA-seq) and metabolome data was performed. This integrated approach revealed that melatonin specifically activated common KEGG pathways pivotal for stress adaptation, including plant hormone signal transduction, phenylpropanoid biosynthesis, and starch and sucrose metabolism, with coordinated upregulation of associated genes and metabolites. Collectively, our integrated data demonstrate that melatonin enhances Fraxinus tolerance by synergistically improving photosynthesis and antioxidant defense, underpinned by a reconfigured molecular network. This study provides a theoretical basis for using melatonin as an eco-friendly biostimulant to improve woody plant resilience in saline-alkali soils.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/6980ff26c1c9540dea811f61https://doi.org/10.3390/plants15030438
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