Zhang Yawei, Ren Xianfeng, Xu Baocheng, Fan Lixia, Guo Changying, Zhang Bingchun, Ning Mingxiao
Laboratory of Quality and Safety Risk Assessment for Agro-Products of the Ministry of Agriculture (Jinan), Institute of Quality Standard and Testing Technology for Agro-Products, Shandong Academy of Agricultural Sciences, Jinan 250100, China.
International Joint Laboratory of Food Green Processing and Safety Control, College of Food and Bioengineering, Henan University of Science and Technology, Luoyang 471000, China.
Foods. 2025 Aug 28;14(17):3010. doi: 10.3390/foods14173010.
Zearalenone (ZEN), a mycotoxin produced by species, widely contaminates grains and feed, posing a serious threat to animal and human health. Traditional physical and chemical detoxification methods face challenges, including low efficiency, high costs, and nutrient loss. In contrast, enzymatic biodegradation has emerged as a research hotspot due to its high efficiency, specificity, and environmental friendliness. Lactone hydrolase can specifically hydrolyze the lactone ring of ZEN, converting it into a low-toxicity or non-toxic degradation product, thereby demonstrating significant potential for application in ensuring the safety of food, feed, and agricultural products. In recent years, with advancements in enzyme engineering and various biological technologies, remarkable progress has been made in ZEN-degrading enzyme research. Novel and highly efficient enzyme genes have been discovered through gene mining, while directed evolution and rational design have improved catalytic efficiency and stability. Additionally, immobilization techniques and formulation optimization have enhanced industrial applicability. This review, based on practical application needs, establishes a comprehensive evaluation system integrating enzyme characteristics, modification technologies, and process applicability, aiming to provide actionable theoretical guidance for the large-scale application of biological detoxification technologies.
玉米赤霉烯酮(ZEN)是由某些物种产生的一种霉菌毒素,广泛污染谷物和饲料,对动物和人类健康构成严重威胁。传统的物理和化学解毒方法面临挑战,包括效率低、成本高和营养成分损失。相比之下,酶促生物降解因其高效、特异性和环境友好性而成为研究热点。内酯水解酶可以特异性地水解ZEN的内酯环,将其转化为低毒或无毒的降解产物,从而在确保食品、饲料和农产品安全方面显示出巨大的应用潜力。近年来,随着酶工程和各种生物技术的进步,ZEN降解酶的研究取得了显著进展。通过基因挖掘发现了新型高效的酶基因,同时定向进化和理性设计提高了催化效率和稳定性。此外,固定化技术和配方优化提高了工业适用性。本综述基于实际应用需求,建立了一个综合评估体系,整合了酶的特性、修饰技术和工艺适用性,旨在为生物解毒技术的大规模应用提供可操作的理论指导。