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May 31, 2026Applied Food Research0 citationsOpen Access

Elucidating the Synergistic Enzymatic Activity of Mushrooms Against Multi-Mycotoxin Contamination: Efficacy, Mechanism, and Bioinformatic Insights

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JGJing GaoJXJiayu XuHZHan Zhu

Key Points

  • This study aims to explore the degradation capabilities of mushroom extracts against various mycotoxins and understand the underlying mechanisms.
  • Evaluated extracts from four mushroom species: Lentinus edodes, Stropharia rugosoannulata, Pleurotus ostreatus, and Pleurotus citrinopileatus.
  • Optimized parameters such as extraction oscillation (2500 rpm) and incubation conditions (28°C, pH 7-8).
  • Conducted in silico analysis to assess molecular interactions between enzymes and mycotoxins.
  • P. ostreatus achieved up to 98.6% degradation of OTA in 48 hours, with varying efficiencies for ZEN (74%), AFB 1 (61%), and DON (49%).
  • Activity enhanced by 15–70% through optimal conditions, indicating significant improvement in degradation rates.
  • Docking studies showed that DON had poor enzyme fit, contributing to its lower degradation efficiency.

Abstract

Extensive multi-mycotoxin contamination threatens the agro-food system, mushrooms with their high biodiversity represent an underexploited agricultural resource possessing excellent enzymatic potential for mycotoxin degradation. This study evaluated the simultaneous degradation of aflatoxin B 1 (AFB 1 ), ochratoxin A (OTA), deoxynivalenol (DON), and zearalenone (ZEN) by crude enzyme extracts from four mushrooms: Lentinus edodes, Stropharia rugosoannulata, Pleurotus ostreatus and Pleurotus citrinopileatus. Key operational parameters were optimized, revealing that oscillation extraction (2500 rpm) significantly enhanced activity, improving degradation rates by 15–70% across different mushroom-mycotoxin combinations. Optimal incubation conditions were identified as 28°C and pH 7-8. Degradation efficiencies varied by mushroom species, with P. ostreatus extract achieving up to 98.6% OTA degradation within 48 h, followed by ZEN (up to 74%), AFB 1 (up to 61%), and DON (up to 49%). In silico analyses elucidated the molecular basis of these observations, revealing a complex structure-activity relationship: strong predicted binding affinity correlated with high degradation rates for some enzyme-mycotoxin pairs, while for other, efficient degradation likely involved factors beyond strong initial binding. Docking confirmed the recalcitrance of DON due to poor enzyme fit. This integrated study provides a practical framework for optimizing mushroom-based bioremediation and delivers novel mechanistic insights, positioning mushroom enzymatic consortia as a promising multi-target solution for combating complex mycotoxin contamination.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd1f65783ba022b6fd5ddhttps://doi.org/10.1016/j.afres.2026.102230
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