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白腐菌漆酶对偶氮化合物的降解作用及其代谢途径和毒性分析。

Effective degradation of zearalenone by dye-decolorizing peroxidases from Pleurotus ostreatus and its metabolic pathway and toxicity analysis.

机构信息

Department of Bioengineering, School of Chemistry and Chemical Engineering, Wuhan University of Science and Technology, Wuhan 430081, China.

R & D Center of Yunnan Yuntianhua Co., Ltd., Yunnan 650100, China.

出版信息

Sci Total Environ. 2024 Jan 15;908:168500. doi: 10.1016/j.scitotenv.2023.168500. Epub 2023 Nov 10.

Abstract

The widespread detection of zearalenone (ZEN) in cereal crops and feeds poses a significant threat to both humans and animals. Consequently, the urgency for the international community to address this issue is evident in the demand for safe and effective measures to mitigate zearalenone contamination and explore detoxification methods. In this study, a dye-decolorizing peroxidase (PoDyP4) from Pleurotus ostreatus is characterized for its impressive ZEN degradation effectiveness. PoDyP4 was demonstrated that the ability to almost completely degrade ZEN at pH 6.0 and 40 °C for 2 h, even at high concentrations of 1 mM. The promotion of enzymatic degradation of ZEN was most pronounced in the presence of Mg, while Cu and Fe exhibited a notable inhibitory effect. The degradation mechanism elucidated the detoxification of ZEN by PoDyP4 through hydroxylation and polymerization reactions. The resulting metabolic products displayed significantly reduced toxicity and minimal impact on the viability and apoptosis of mouse spermatocytes GC-2 cells, in comparison to the original ZEN. Hydrophobic contacts and hydrogen bonds were found to be crucial for ZEN-PoDyP4 stability via molecular docking. This finding suggests that PoDyP4 may have a promising application in the field of food and feed for zearalenone detoxification.

摘要

玉米赤霉烯酮(ZEN)在谷物作物和饲料中的广泛检测对人类和动物都构成了重大威胁。因此,国际社会显然迫切需要采取安全有效的措施来减轻 ZEN 污染,并探索解毒方法。在这项研究中,来自糙皮侧耳(Pleurotus ostreatus)的一种染料脱色过氧化物酶(PoDyP4)因其对 ZEN 具有令人印象深刻的降解效果而被表征。PoDyP4 被证明在 pH 6.0 和 40°C 下,即使在 1mM 的高浓度下,也能在 2 小时内几乎完全降解 ZEN。在存在 Mg 的情况下,酶促降解 ZEN 的能力得到了最大程度的促进,而 Cu 和 Fe 则表现出显著的抑制作用。通过阐明 PoDyP4 对 ZEN 的解毒机制,揭示了 ZEN 通过羟化和聚合反应进行解毒。与原始 ZEN 相比,所得代谢产物的毒性显著降低,对小鼠精原细胞 GC-2 细胞的活力和凋亡几乎没有影响。通过分子对接发现,疏水性接触和氢键对于 ZEN-PoDyP4 的稳定性至关重要。这一发现表明,PoDyP4 可能在食品和饲料领域具有很大的应用潜力,可以用于 ZEN 的解毒。

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