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March 5, 2026Frontiers in Plant Science0 citationsOpen Access

Crosstalk between glutathione and melatonin in chromium detoxification in sweet potato revealed by high-throughput sequencing and physio-biochemical profiling

SKSunjeet KumarMIMuhammad IkramWFWei Fang

Key Points

  • The aim is to explore how glutathione and melatonin help sweet potato cope with chromium stress at the molecular level.
  • Used high-throughput sequencing to analyze the transcriptome of sweet potato under Cr stress and treatments with GSH and MT.
  • Identified differentially expressed genes (DEGs) related to oxidative stress and photosynthesis.
  • Conducted GO and KEGG enrichment analyses to reveal functional categories and pathways involved.
  • Performed cluster analysis of DEGs to categorize their expression patterns.
  • Identified 7,734 DEGs related to Cr stress and the mitigating effects of GSH and MT.
  • GSH enhanced expression of genes involved in ROS defense and metabolic processes, suggesting stronger redox control.
  • Highlighted 30 key hub genes that are potential targets for improving chromium tolerance in crops.

Abstract

Chromium (Cr) contamination severely inhibits plant productivity, primarily by disrupting photosynthetic performance, growth, and inducing oxidative stress. This study investigated the comparative molecular mechanisms by which exogenous glutathione (GSH) and melatonin (MT) confer tolerance to Cr stress in sweet potato using an integrated transcriptomic approach. Transcriptome analysis identified 7,734 differentially expressed genes (DEGs) across Cr stress and mitigator treatments. The GO and KEGG pathway enrichment analyses showed that DEGs were mainly enriched in GO terms, such as photosynthesis, carbon fixation, and cell-wall organization, as well as pathways including MAPK signaling, glutathione metabolism, plant hormone signal transduction, and membrane/vesicle transport. These DEGs were subjected to cluster analysis, and four major expression clusters (C1-C4) were identified, with DEGs ranging from 1,234 to 3,285. GSH-specific protection was associated with Cluster C4, enhancing genes involved in ROS defense, H 2 O 2 response, pyruvate metabolism, and ER protein processing, indicating improved redox and metabolic control Network analysis identified 30 potential key hub genes, including the growth regulator GA20OX1 , the chlorophyll synthesis enzyme HEMA1 , and the vacuolar transport aquaporin TIP2-1 . These results suggest that GSH induces a stronger transcriptional response by effectively mitigating Cr-induced damage and strengthening a redox-centered defensive metabolic network. This identifies actionable molecular targets for crop improvement through breeding and genetic engineering.

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Cite This Study

Kumar et al. (2026) studied this question.

synapsesocial.com/papers/69a91d21d6127c7a504bfee1https://doi.org/10.3389/fpls.2026.1767742
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