Oyster Mushroom · 2025 · Research Article
Medium relevanceBiocatalytic Detoxification of Ochratoxins A/B by a Fungal Dye-Decolorizing Peroxidase: Mechanistic Insights and Toxicity Assessment.
Pleurotus ostreatus
Key points
- Mycotoxin contamination in agricultural products poses severe global health risks, with ochratoxins (particularly OTA and OTB) exhibiting marked nephrotoxicity and classified as Group 2B carcinogens by IARC. Conventional physical/chemical detoxification methods often impair food nutritional quality, highlighting the need for enzymatic alternatives
- Herein, we systematically investigated the degradation mechanisms of ochratoxin A (OTA) and ochratoxin B (OTB) using Pleurotus ostreatus dye-decolorizing peroxidase ( Po DyP4) coupled with redox mediators
- Remarkably, hydroxybenzotriazole (HBT) enhanced degradation efficiency 26.7-fold for OTA and 10.6-fold for OTB compared to mediator-free systems, establishing it as the optimal catalytic enhancer
- Through LC-MS/MS analysis, we identified five key degradation products, including 6-OH-OTA and OTB-quinone, elucidating a putative oxidative degradation pathway
- In vitro cytotoxicological evaluation in HK-2 cells demonstrated that Po DyP4-treated ochratoxins significantly attenuated cytotoxicity, reducing malondialdehyde (MDA) levels by 48.7% (OTA) and 42.3% (OTB) ( p < 0.01) and suppressing ROS generation
- Molecular docking revealed strong binding affinities between Po DyP4 and ochratoxins, with calculated binding energies of -7.6 kcal/mol (OTA) and -8.6 kcal/mol (OTB), stabilized by hydrogen bond networks (1.9-3.4 Å)
Metadata-grounded summary
Citation abstract
Mycotoxin contamination in agricultural products poses severe global health risks, with ochratoxins (particularly OTA and OTB) exhibiting marked nephrotoxicity and classified as Group 2B carcinogens by IARC. Conventional physical/chemical detoxification methods often impair food nutritional quality, highlighting the need for enzymatic alternatives. Herein, we systematically investigated the degradation mechanisms of ochratoxin A (OTA) and ochratoxin B (OTB) using Pleurotus ostreatus dye-decolorizing peroxidase ( Po DyP4) coupled with redox mediators. Remarkably, hydroxybenzotriazole (HBT) enhanced degradation efficiency 26.7-fold for OTA and 10.6-fold for OTB compared to mediator-free systems, establishing it as the optimal catalytic enhancer. Through LC-MS/MS analysis, we identified five key degradation products, including 6-OH-OTA and OTB-quinone, elucidating a putative oxidative degradation pathway. In vitro cytotoxicological evaluation in HK-2 cells demonstrated that Po DyP4-treated ochratoxins significantly attenuated cytotoxicity, reducing malondialdehyde (MDA) levels by 48.7% (OTA) and 42.3% (OTB) ( p < 0.01) and suppressing ROS generation. Molecular docking revealed strong binding affinities between Po DyP4 and ochratoxins, with calculated binding energies of -7.6 kcal/mol (OTA) and -8.6 kcal/mol (OTB), stabilized by hydrogen bond networks (1.9-3.4 Å). These findings position Po DyP4 as a promising biocatalyst for mycotoxin mitigation in food systems, offering a sustainable alternative to traditional detoxification methods.
Citation
Xia W, Zhu N, Mei J, Peng Y, Song F, Ding S, et al. (2025). Biocatalytic Detoxification of Ochratoxins A/B by a Fungal Dye-Decolorizing Peroxidase: Mechanistic Insights and Toxicity Assessment. Toxins https://doi.org/10.3390/toxins17090438 PMID: 41003502
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