Life· 2026Q1
Selenium Alleviates Mercury Toxicity in Ophiocordyceps sinensis: Mechanistic Insights from Integrated Phenotypic and Transcriptomic Analyses
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- Q1SCImago
- 2026year
Short summary
Selenium (Se) mitigates mercury (Hg) toxicity in Ophiocordyceps sinensis, increasing mycelial dry weight by up to 60% and reducing ROS accumulation by 37% compared to Hg alone, by forming stable Hg-Se complexes and regulating genes involved in metabolism.
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Key points
- Hg stress reduced O. sinensis fresh weight by 38% at 1 mg/L, while Hg + Se treatment increased mycelial dry weight and ameliorated damage.
- Spectroscopic analyses confirmed the formation of stable Hg-Se complexes (HgSe, HgSeO3, HgSeO4) as the basis for Se-mediated Hg detoxification.
- Exogenous Se reduced Hg-induced O2−· accumulation by 37% and normalized soluble sugar and protein levels.
- Transcriptome analysis revealed Se modulates genes in tyrosine metabolism, peroxisome function, and glucose metabolism to counteract Hg toxicity.
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Abstract
Ophiocordyceps sinensis, a valuable medicinal and nutritional resource, faces significant mercury (Hg) contamination risks. Total Hg content in some samples from key producing regions exceeds the 0.2 mg/kg limit set by the Chinese Pharmacopoeia, raising ecological and food safety concerns. To investigate whether and how sodium selenite (Na2SeO3) alleviates mercury (II) chloride (HgCl2) toxicity, this study established various concentrations for Hg, Se, and combined Hg + Se treatments. Results showed that Hg stress significantly inhibited mycelial growth, reducing fresh weight by 38% at 1 mg/L and by up to 98% at high concentrations, whereas Hg + Se treatment increased mycelial dry weight and ameliorated morphological damage relative to Hg treatment alone. Furthermore, Fourier Transform Infrared Spectroscopy (FT-IR), X-ray Diffraction (XRD), and X-ray Photoelectron Spectroscopy (XPS) analyses confirmed the formation of Hg-Se bonds and stable complexes such as HgSe, HgSeO3, and HgSeO4 in the Hg + Se group, constituting the key material basis for Se-mediated Hg detoxification. Hg stress induced ROS accumulation, with O2−· peaking at 3.96 nmol/g and GSH at 4.86 μg/g under 2 mg/L Hg; exogenous Se reduced O2−· accumulation by 37%. Soluble sugar increased continuously with Hg concentration, while soluble proteins increased continuously under Hg + Se treatment. Transcriptome analysis indicated that Se alleviated Hg-induced transcriptomic disturbances by modulating genes associated with tyrosine metabolism (TYR), peroxisome function (CAT), and glucose metabolism (tktA, rpiA). In conclusion, Se alleviates Hg toxicity in O. sinensis through the synergistic actions of chemical chelation and metabolic regulation, offering new insights into Hg mitigation in artificial cultivation.
The authors' abstract, as published at the source. Life, 2026 · DOI ↗
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Field: Nutrition and Dietetics
Nutrition and DieteticsNursing