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Integrated multi-omics reveal the multidimensional mechanisms of Penicillium sp. in selenite biodegradation

作者:Yexing Tao, Dandan Yi, Yubo Wu, Guangai Deng, Zhiyong Wang, Mugen Peng · 发表于:Ecotoxicology and Environmental Safety · 年份:2025 · DOI:10.1016/j.ecoenv.2025.119588 · 被引用次数:3 · 研究领域:Selenium in Biological Systems、Arsenic contamination and mitigation、Organoselenium and organotellurium chemistry

. High-throughput RNA-Seq and TMT-based proteomics revealed 6175 differentially expressed genes and 695 differentially expressed proteins enriched in carbohydrate and amino acid metabolism, the tricarboxylic acid cycle, glutathione metabolism, redox processes, selenocompound/sulfur metabolism, and lipid remodeling. Key antioxidant enzymes, glutathione and thioredoxin systems, Fe-S cluster assembly proteins, oxidoreductases, and membrane transporters were significantly upregulated under Se(IV) stress. Four major metabolic modules-glutathione, thioredoxin, iron-sulfur cluster, and lipid metabolism-coordinated to maintain redox homeostasis, mitigate oxidative damage, and drive Se(IV) detoxification. While core redox responses are conserved across microbes, our multi-omics integration in a filamentous fungus reveals a dose-stratified deployment of fungal wall/lipid remodeling and transporter control that refines existing models. This study provides a mechanistic basis for the application of PM2 in selenium bioremediation and the green biosynthesis of Se nanoparticles (SeNPs).