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首页> 外文期刊>Science of the total environment >Salinity influences on the response of Mytilus galloprovincialis to the rare-earth element lanthanum
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Salinity influences on the response of Mytilus galloprovincialis to the rare-earth element lanthanum

机译:盐度对米尔肠道胰岛素蛋白对稀土元素镧镧的影响影响

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摘要

The multiplicity and wide variety of applications of electrical and electronic equipment has largely increased with the technological and economic progress and, in consequence, the amount of generated waste of electrical and electronic equipment (WEEE). Due to inappropriate processing and disposal of WEEE, different chemical elements and compounds, including rare-earth elements such as Lanthanum (La) have been released in the environment. Nevertheless, the environmental risks resulting from La presence are almost unknown, especially in marine systems, which may be challenged by foreseen climate changes such as water salinity shifts. Within this context, the present study aimed to understand the combined effects of salinity and La by assessing biochemical alterations in mussels Mytilus galloprovincialis exposed to La (0 and 10 μg/L) at different salinity levels (20,30 and 40). A decrease in salinity caused a wide range of biochemical changes to both non-contaminated and contaminated organisms, such as metabolism, antioxidant and biotransformation defenses activation, associated to hypotonic stress. Furthermore, the decrease in salinity enhanced the effects of La exposure seen as an increase on lipid and protein cellular damage in those exposed, probably due to free metal ions increase at lower salinities, resulting in a higher bioaccumulation and toxicity. In general, La exposure caused cellular damage and inhibition of antioxidant defenses in contaminated mussels when compared to non-contaminated ones, with cellular damages being higher at the lowest salinity. Overall, the present study highlights the need to investigate the presence and impacts of emerging contaminants of WEEE source at environmental relevant concentrations, not just at present but also under forecasted climate change scenarios, thus providing a more realistic environmental risk assessment.
机译:电气和电子设备的多样性和各种各样的应用在很大程度上增加了技术和经济进展,因此,电气和电子设备的产生量(WEEE)。由于WEEE的不适当的处理和处理,在环境中释放了不同的化学元素和包括稀土元素(如镧(LA)的稀土元素)。尽管如此,LA存在导致的环境风险几乎是未知的,特别是在海洋系统中,可能受到预见的气候变化如水盐度变化的挑战。在这种情况下,本研究旨在通过评估在不同盐度水平(20,30和40)下暴露于La(0和10μg/ L)的贻贝霉菌血液incoprovincialis的生物化学改变来了解盐度和La的组合效果。盐度降低导致非污染和受污染的生物的广泛的生化变化,例如代谢,抗氧化剂和生物转化防御激活,与低声应力相关。此外,盐度的降低增强了La暴露的效果,随着脂质和蛋白质细胞损伤的增加而被暴露在暴露的那些中,可能是由于游离金属离子在较低盐度下增加,导致更高的生物累积和毒性。通常,当与非污染物相比,La暴露导致细胞损伤和抑制污染贻贝中的抗氧化剂防御,细胞损伤在最低盐度下更高。总体而言,本研究强调了需要调查WEEE源在环境相关浓度下的新兴污染物的存在和影响,而不仅目前,而且在预测的气候变化方案下,因此提供了更现实的环境风险评估。

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