Aug 2026· Journal of Plant Biochemistry and Biotechnology· 0 citations· 114 references
TL;DR
This review synthesises current understanding of the biochemical, structural, and regulatory roles of redox molecules in heavy-metal tolerance, and highlights emerging avenues in omics-driven discovery, genetic enhancement, and microbial strategies.
Abstract
Heavy metal contamination poses a major constraint to plant growth and agricultural productivity by disrupting cellular metabolism and inducing oxidative stress. Exposure to toxic metals results in excessive accumulation of reactive oxygen species (ROS), which damage biomolecules and destabilise cellular homeostasis. Plants mitigate this challenge through a coordinated network of redox-mediated defence mechanisms that includes metal chelation and sequestration, enzymatic antioxidant detoxification, and metabolic adjustment. Beyond these direct responses, ROS also function as key signalling intermediates that activate stress-responsive transcriptional pathways, modulate ion transport, and remodel cell-wall architecture. Crosstalk between redox cues and phytohormones such as abscisic acid, ethylene and jasmonic acid further integrates environmental perception with long-term acclimation. This review synthesises current understanding of the biochemical, structural, and regulatory roles of redox molecules in heavy-metal tolerance, and highlights emerging avenues in omics-driven discovery, genetic enhancement, and microbial strategies. Improved insight into redox-centred defence systems will support the development of resilient crop varieties and sustainable approaches for agriculture in metal-polluted environments.
Heavy-metal contamination poses a serious threat to plant growth, productivity, and resilience, as it causes complex changes in cellular homeostasis, redox balance, element transport, and metabolism. This review summarizes current understanding of the molecular mechanisms by which plants adapt to heavy-metal stress, wi...
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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
This review synthesises current knowledge to elucidate the specific oxidative modification mechanisms by which ROS target core signalling components, biosynthetic enzymes, as well as transport proteins throughout all hormonal pathways and distils cross-pathway principles that define a coherent redox-guided regulatory a...
Wen Shi, Lingyan Wang, Weizhong Liu et al.· Plant, Cell and Environment· 0 citations
This review comprehensively synthesizes recent advances in abiotic stress perception, signal transduction and hormone‐mediated regulation, highlighting their roles in shaping plant stress tolerance and proposes an integrated multi‐scale framework to provide a holistic understanding of drought and salinity stress tolera...
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