
@Article{phyton.2026.087781,
AUTHOR = {Naila Shah, Muhammad Awais, Haiyan Li},
TITLE = {Co-Occurrence of Essential and Non-Essential Heavy Metal(loid)s in Plants: Physiological, Biochemical, and Molecular Perspectives for Soil Bioremediation},
JOURNAL = {Phyton-International Journal of Experimental Botany},
VOLUME = {},
YEAR = {},
NUMBER = {},
PAGES = {{pages}},
URL = {http://www.techscience.com/phyton/online/detail/28304},
ISSN = {1851-5657},
ABSTRACT = {The co-occurrence of essential and non-essential heavy metal(loid)s in agricultural soils intensifies land degradation by disrupting soil biochemical cycling, plant productivity, and ecosystem resilience. Essential metal(loid)s Zinc (Zn<sup>2</sup><sup>+</sup>), Copper (Cu<sup>2</sup><sup>+</sup>), Manganese (Mn<sup>2</sup><sup>+</sup>) and Iron (Fe<sup>2</sup><sup>+</sup>) are required as micronutrients but become phytotoxic above threshold concentrations, while non-essential metal(loid)s such as Cadmium (Cd<sup>2</sup><sup>+</sup>), Lead (Pb<sup>2</sup><sup>+</sup>), Mercury (Hg<sup>2</sup><sup>+</sup>), and Arsenic (As<sup>3</sup><sup>+</sup>/As<sup>5</sup><sup>+</sup>) have no biological function and are toxic even at trace levels. Their coexistence amplifies stress through shared transporter-mediated uptake, ionic competition, nutrient imbalance, and excessive production of reactive oxygen species. This review synthesizes current knowledge on the comparative uptake, toxicity, and detoxification mechanisms of essential versus non-essential metal(loid)s, with emphasis on co-contamination scenarios. Unresolved contradictions in the literature are identified, including concentration-dependent and species-specific interactions that determine whether metal mixtures act synergistically or antagonistically. Significant knowledge gaps remain in understanding which transporters dominate under multi-metal exposure and how plant-microbe-metal networks influence land restoration outcomes. The link between metal co-occurrence and quantitative indicators of land degradation is further advanced, covering soil enzyme suppression, microbial biomass decline, and disrupted carbon-nitrogen-phosphorus cycling. While phytoremediation and microbial-assisted strategies show promise, integration with soil physicochemical management is needed for sustainable restoration. The review concludes by proposing a systems-level framework that integrates multi-omics, CRISPR-based gene editing, and predictive modeling to develop metal-tolerant crops and remediate degraded lands under increasing environmental pressures.},
DOI = {10.32604/phyton.2026.087781}
}



