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深海贻贝 Bathymodiolus platifrons 对镉和铜暴露的生化和代谢反应。

Biochemical and metabolic responses of the deep-sea mussel Bathymodiolus platifrons to cadmium and copper exposure.

机构信息

Center of Deep Sea Research, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China; Center for Ocean Mega-Science, Chinese Academy of Sciences, Qingdao 266071, China.

Center of Deep Sea Research, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China; CAS Key Laboratory of Marine Ecology and Environmental Sciences, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China; University of Chinese Academy of Sciences, Beijing 10049, China.

出版信息

Aquat Toxicol. 2021 Jul;236:105845. doi: 10.1016/j.aquatox.2021.105845. Epub 2021 May 2.

DOI:10.1016/j.aquatox.2021.105845
PMID:33984608
Abstract

Greater interest in commercial deep-sea mining has been accompanied by mounting environmental concerns, including metal contamination resulting from mining activities. However, little is known about the toxic effects of metal exposure on deep-sea life. Given its ability to accumulate metals from the surrounding environment, its wide distribution at both vents and seeps, and its high abundance, the deep-sea mussel Bathymodiolus platifrons could serve as an ideal model to investigate the toxicological responses of deep-sea organisms to metal exposure. Here, we evaluated metal accumulation, traditional metal-related biomarkers, namely acid phosphatase (ACP), alkaline phosphatase (AKP), superoxide dismutase, catalase, reduced glutathione, metallothioneins, and malondialdehyde, as well as metabolic profiles in the gills of B. platifrons after a 7-day exposure to copper (100 μg/L), cadmium (500 μg/L), or copper-plus-cadmium treatments (100 μg/L Cu and 500 μg/L Cd). Metal exposure concentrations selected in this study can be found in deep-sea hydrothermal environments. Metal exposure resulted in significant metal accumulation in the gills of the mussel, indicating that B. platifrons has promise for use as an indicator of deep-sea metal pollution levels. Traditional biomarkers (AKP, ACP, and measured antioxidants) revealed cellular injury and oxidative stress in mussels following metal exposure. Metabolic responses in the three treatment groups indicated that metal exposure perturbed osmoregulation, energy metabolism, and nucleotide metabolism in mussels, in a response marked by differentially altered levels of amino acids, hypotaurine, betaine, succinate, glucose 6-phosphate, fructose 6-phosphate, guanosine, guanosine 5'-monophosphate, and inosine. Nevertheless, several uniquely altered metabolites were found in each treatment exposure group, suggesting dissimilar modes of toxicity between the two metal types. In the Cd-exposed group, the monosaccharide D-allose, which is involved in suppressing mitochondrial ROS production, was downregulated, a response consistent with oxidative stress in Cd-exposed B. platifrons. In the Cu-exposed group, the detected alterations in dopamine, dopamine-related, and serotonin-related metabolites together suggest disturbed neurotransmission in Cu-exposed B. platifrons. In the Cu-plus-Cd group, we detected a decline in fatty acid levels, implying that exposure to both metals jointly exerted a negative influence on the physiological functioning of the mussel. To the best of our knowledge, this is the first study to investigate changes in metabolite profiles in Bathymodiolus mussels exposed to metal. The findings reported here advance our understanding of the adverse impact of metal exposure on deep-sea life and can inform deep-sea mining assessments through the use of multiple biomarkers.

摘要

随着人们对商业深海采矿的兴趣日益浓厚,环境问题也日益受到关注,其中包括采矿活动造成的金属污染。然而,对于金属暴露对深海生物的毒性影响,我们知之甚少。鉴于深海贻贝 Bathymodiolus platifrons 从周围环境中积累金属的能力、在喷口和渗漏处的广泛分布以及丰富的数量,它可以作为一个理想的模型,用于研究深海生物对金属暴露的毒理学反应。在这里,我们评估了在铜(100μg/L)、镉(500μg/L)或铜加镉处理(100μg/L Cu 和 500μg/L Cd)暴露 7 天后,贻贝鳃中金属积累、传统金属相关生物标志物(酸性磷酸酶(ACP)、碱性磷酸酶(AKP)、超氧化物歧化酶、过氧化氢酶、还原型谷胱甘肽、金属硫蛋白和丙二醛)以及代谢谱的变化。本研究中选择的金属暴露浓度可以在深海热液环境中找到。金属暴露导致贻贝鳃中金属的显著积累,这表明 B. platifrons 有望成为深海金属污染水平的指示物。传统生物标志物(AKP、ACP 和测定的抗氧化剂)表明,贻贝在金属暴露后出现细胞损伤和氧化应激。三组处理组的代谢反应表明,金属暴露扰乱了贻贝的渗透调节、能量代谢和核苷酸代谢,其特征是氨基酸、次牛磺酸、甜菜碱、琥珀酸、葡萄糖 6-磷酸、果糖 6-磷酸、鸟苷、鸟苷 5'-单磷酸和肌苷的水平发生差异变化。然而,在每个处理组中都发现了一些独特改变的代谢物,这表明两种金属类型的毒性模式不同。在镉暴露组中,参与抑制线粒体 ROS 产生的单糖 D-艾杜糖被下调,这与镉暴露的 B. platifrons 中的氧化应激反应一致。在铜暴露组中,检测到多巴胺、多巴胺相关和 5-羟色胺相关代谢物的改变共同表明铜暴露的 B. platifrons 中神经传递受到干扰。在铜加镉组中,我们检测到脂肪酸水平下降,这表明两种金属共同暴露对贻贝的生理功能产生了负面影响。据我们所知,这是第一项研究金属暴露对 Bathymodiolus 贻贝代谢物谱变化的研究。本研究结果加深了我们对金属暴露对深海生物的不利影响的认识,并可以通过使用多种生物标志物为深海采矿评估提供信息。

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