Université de Pau et des Pays de l'Adour, E2S UPPA, CNRS, IPREM, Institut des Sciences Analytiques et de Physico-chimie pour l'Environnement et les matériaux, Pau, France.
Departamento de Química Analítica, Facultad de Ciencias Químicas, Universidad Complutense de Madrid, 28040 Madrid, Spain.
J Hazard Mater. 2024 Dec 5;480:135779. doi: 10.1016/j.jhazmat.2024.135779. Epub 2024 Sep 12.
Exposure to mercury (Hg) through fish consumption poses significant environmental and public health risks, given its status as one of the top ten hazardous chemicals. Aquaculture is expanding, driving a surge in demand for sustainable aquafeeds. Tuna byproducts, which are rich in protein, offer potential for aquafeed production, yet their use is challenged by the high content of heavy metals, particularly Hg. However, these byproducts also contain elevated levels of selenium (Se), which may counteract Hg adverse effects. This study examines the fate of dietary Hg and Se in an aquaculture model fish. Biomolecular speciation analyses through hyphenated analytical approaches were conducted on the water-soluble protein fraction of key organs of juvenile rainbow trout (Oncorhynchus mykiss) exposed to various combinations of Hg and Se species, including diets containing tuna byproducts, over a six-month period. The findings shed light on the dynamics of Hg and Se compounds in fish revealing potential Hg detoxification mechanisms through complexation with Hg-biomolecules, such as cysteine, glutathione, and metallothionein. Furthermore, the trophic transfer of selenoneine is demonstrated, revealing novel opportunities for sustainable aquafeed production. Understanding the interactions between Hg and Se in aquaculture systems is crucial for optimizing feed formulations and mitigating environmental risks. This research contributes to the broader goal of advancing sustainable practices in aquaculture while addressing food security challenges.
由于汞(Hg)是十大危险化学品之一,通过食用鱼类接触汞会对环境和公共健康造成重大风险。水产养殖正在扩张,对可持续水产饲料的需求激增。金枪鱼副产品富含蛋白质,为水产饲料生产提供了潜力,但由于重金属,尤其是汞含量高,其使用受到挑战。然而,这些副产品还含有高水平的硒(Se),可能会抵消 Hg 的不利影响。本研究探讨了膳食 Hg 和 Se 在水产养殖模式鱼中的命运。通过联用分析方法对暴露于不同 Hg 和 Se 物种组合(包括含金枪鱼副产品的饮食)的幼年虹鳟(Oncorhynchus mykiss)关键器官的水溶性蛋白质部分进行生物分子形态分析,为期六个月。研究结果揭示了 Hg 和 Se 化合物在鱼类中的动态,发现了通过与 Hg-生物分子(如半胱氨酸、谷胱甘肽和金属硫蛋白)形成复合物来解毒 Hg 的潜在机制。此外,还证明了 selenoneine 的营养转移,为可持续水产饲料生产提供了新的机会。了解水产养殖系统中 Hg 和 Se 之间的相互作用对于优化饲料配方和减轻环境风险至关重要。这项研究有助于推进水产养殖可持续实践的更广泛目标,同时应对粮食安全挑战。