用汞形态和同位素组成测定labrax双颌鱼饮食中汞的动态

Marianna Pinzone, Alice Cransveld, G. De Boeck, J. Shrivastava, E. Tessier, S. Bérail, Joseph G. Schnitzler, D. Amouroux, K. Das
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引用次数: 2

摘要

海鲜对人类和野生动物社区具有巨大的生态和营养价值。然而,鱼类中汞的积累是动物和人类健康的一个问题。迫切需要通过控制饲养实验来了解海洋生物中汞的物种形成。这项研究首次评估了可能影响汞在海洋掠食性鱼类中的生物累积和动态的生物过程。我们进行了一项饲养实验,以研究圈养幼年鲈鱼(Dicentrarchus labrax)肝脏和肌肉中甲基汞和汞的动态,以及汞同位素。在3周的驯化和6周的实验期间,三组幼年鲈鱼被圈养喂养。每组喂食含有环境相关甲基汞浓度的颗粒(对照组,200和500 ng g−1 dw)。我们监测了肝脏和肌肉中甲基汞和iHg浓度的演变以及汞同位素值。我们确定了汞与鱼类饮食中污染水平的关系。肌肉δ202Hg和Δ199Hg的转换率在33和14天(低日粮)到5和9天(Mod日粮)之间。肝脏δ202Hg和Δ199Hg的转换率分别在3和7天(低日粮)到3和2天(Mod日粮)之间。汞物种浓度和δ202Hg在饮食组和组织之间随时间变化,显示出内部质量依赖性分馏(MDF)的发生。未观察到显著的组织内和时间内汞质量无关分级(MIF)。我们的实验结果强烈支持暴露于中低浓度环境汞的沿海掠食性鱼类存在甲基汞去甲基化。随着时间的推移,受污染最严重的饮食中鲈鱼肌肉中δ202Hg的减少伴随着iHg的暂时增加,这表明当饮食中汞暴露量高时,该组织可能会发生汞解毒过程。暴露于500 ng Hg g−1的鲈鱼不存在汞MDF,肌肉和肝脏之间的周转率不同,这证实了幼鱼体内汞的物种形成和生物累积受其饮食中汞水平和物种形成的控制。
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Dynamics of Dietary Mercury Determined by Mercury Speciation and Isotopic Composition in Dicentrarchus labrax
Seafood has a great ecological and nutritional value for human and wildlife communities. However, accumulation of mercury (Hg) in fish is a concern to animal and human health. There is a crucial need to understand Hg speciation in marine organisms through controlled feeding experiments. This study represents a first assessment of the biological processes that may influence Hg bioaccumulation and dynamics in a marine predatory fish. We conducted a feeding experiment to investigate the dynamics of MeHg and iHg, as well as Hg isotopes in the liver and muscles of captive juvenile seabass (Dicentrarchus labrax). Three groups of juvenile seabass were fed in captivity during 3 weeks of acclimatization and 6 weeks of experiment. Each group was fed with pellets containing environmentally relevant MeHg concentrations (Control, 200 and 500 ng g−1 dw). We monitored the evolution of MeHg and iHg concentrations as well as Hg isotopic values in liver and muscle. We determined Hg dynamics with respect to the contamination level in the fish diet. Muscle δ202Hg and Δ199Hg turnover rates ranged between 33 and 14 days (Low diet) to 5 and 9 days (Mod diet). Liver δ202Hg and Δ199Hg turnover rates ranged between 3 and 7 days (Low diet) to 3 and 2 days (Mod diet), respectively. Hg species concentrations and δ202Hg varied over time between diet groups and tissues, showing the occurrence of internal mass-dependent fractionation (MDF). No significant intra-tissue and temporal Hg mass-independent fractionation (MIF) was observed. The results of our experiment are strongly in favor of the existence of MeHg demethylation in a coastal predatory fish exposed to low to moderate concentrations of environmental Hg. The decrease over time of δ202Hg in muscle of seabass from the most contaminated diet was accompanied by a temporal increase in iHg, pointing to possible Hg detoxification processes occurring in this tissue when dietary Hg exposure is high. The absence of Hg MDF and different turnover between muscle and liver in seabass exposed to 500 ng Hg g−1 confirmed that Hg speciation and bioaccumulation in juvenile fish are controlled by Hg levels and speciation in their diet.
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