Department of Ichthyology and Aquatic Environment-Aquaculture Laboratory, School of Agricultural Sciences, University of Thessaly, 38446 Volos, Greece.
Institute of Marine Biology, Biotechnology and Aquaculture, Hellenic Centre for Marine Research, 46.7 km Athens-Sounion, 19013 Attiki, Greece.
Molecules. 2023 Mar 9;28(6):2519. doi: 10.3390/molecules28062519.
Low-cost plant-based sources used in aquaculture diets are prone to the occurrence of animal feed contaminants, which may in certain conditions affect the quality and safety of aquafeeds. Mycotoxins, a toxic group of small organic molecules produced by fungi, comprise a frequently occurring plant-based feed contaminant in aquafeeds. Mycotoxin contamination can potentially cause significant mortality, reduced productivity, and higher disease susceptibility; thus, its timely detection is crucial to the aquaculture industry. The present review summarizes the methodological advances, developed mainly during the past decade, related to mycotoxin detection in aquafeed ingredients, namely analytical, chromatographic, and immunological methodologies, as well as the use of biosensors and spectroscopic methods which are becoming more prevalent. Rapid and accurate mycotoxin detection is and will continue to be crucial to the food industry, animal production, and the environment, resulting in further improvements and developments in mycotoxin detection techniques.
低成本的水产养殖饲料植物源易受到动物饲料污染物的影响,而这些污染物在某些情况下可能会影响水产饲料的质量和安全。真菌产生的一类有毒小分子有机化合物——霉菌毒素,是水产饲料中一种常见的植物源饲料污染物。霉菌毒素污染可能会导致大量死亡、生产力下降和更高的疾病易感性;因此,及时检测对于水产养殖业至关重要。本综述总结了过去十年中主要发展起来的霉菌毒素在水产饲料成分中的检测方法,包括分析、色谱和免疫方法,以及越来越流行的生物传感器和光谱方法。快速准确地检测霉菌毒素对于食品工业、动物生产和环境至关重要,这将促使霉菌毒素检测技术得到进一步的改进和发展。