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水酸化加剧了锂诱导的毒性,表现在能源供应、氧化应激和大弹涂鱼幼体的细胞命运上。

Water acidification aggravates lithium-induced toxicity represented by energy supply, oxidative stress, and cell fate in Daphnia magna neonates.

作者信息

Zhao Yufei, Duan Chunni, Xiao Yuanyuan, Gong Weibo, Wang Yimeng, Zhang Huiyu, Ku Peijia, Nie Xiangping

机构信息

Department of Ecology, Jinan University, Guangzhou 510632, China.

Department of Ecology, Jinan University, Guangzhou 510632, China; Guangdong Laboratory Animals Monitoring Institute, Guangzhou 510663, China.

出版信息

Sci Total Environ. 2024 Dec 10;955:177143. doi: 10.1016/j.scitotenv.2024.177143. Epub 2024 Oct 29.

Abstract

Lithium is extensively utilized in industrial energy production, particularly in lithium-ion batteries, and in pharmaceuticals for the treating clinical mood disorders. Consequently, lithium is frequently detected in various environmental matrices. It has been reported to cause a range of toxic effects on aquatic organisms including oxidative stress, neurological disorders, and reproductive suppression. Water acidification is a global issue with numerous negative impacts on aquatic organisms. It can alter the physio-chemical properties and bioavailability of metal ions. The acidic leaching process during lithium battery treatment and global water acidification both suggest that lithium contamination often occurs in acidic environments. In the present study, Daphnia magna neonates were exposed to four treatments (control, lithium alone, low pH, and combined) to investigate whether an acidic environment exacerbates the toxic effects of lithium on aquatic organisms and to explore potential toxic action mechanisms. The results indicated that low pH posed a significant threat to the growth and reproduction of D. magna. When exposed to both lithium and low pH, there was increased lithium accumulation and an energy trade-off response, leading to increased energy allocation to reproduction and reduced energy for growth. Lithium exposure stimulated D. magna activity, while low pH inhibited it, suggesting that an imbalance in energy consumption and supply. Combined exposure to lithium and low pH resulted in severe oxidative stress due to mitochondrial dysfunction, under-utilization of energy substances, and increased ionic homeostasis disturbances. Consequently, the exposed organism altered apoptosis and autophagy processes to maintain homeostasis. The present study demonstrated that lithium and water acidification posed a population-level threat to D. magna, and their combined exposure significantly largely exacerbated the toxic effects.

摘要

锂在工业能源生产中得到广泛应用,特别是在锂离子电池和用于治疗临床情绪障碍的药物中。因此,锂经常在各种环境基质中被检测到。据报道,它会对水生生物造成一系列毒性影响,包括氧化应激、神经紊乱和生殖抑制。水酸化是一个全球性问题,对水生生物有许多负面影响。它会改变金属离子的理化性质和生物利用度。锂电池处理过程中的酸性浸出和全球水酸化都表明,锂污染经常发生在酸性环境中。在本研究中,使用 Daphnia magna 幼体进行了四项处理(对照、单独锂、低 pH 值和组合)实验,以研究酸性环境是否会加剧锂对水生生物的毒性影响,并探索潜在的毒性作用机制。结果表明,低 pH 值对 D. magna 的生长和繁殖构成了重大威胁。当同时暴露于锂和低 pH 值时,锂的积累增加,出现能量权衡反应,导致更多的能量分配给繁殖,而用于生长的能量减少。锂暴露刺激了 D. magna 的活动,而低 pH 值则抑制了它,表明能量消耗和供应之间的失衡。由于线粒体功能障碍、能量物质利用不足和离子内稳态紊乱增加,联合暴露于锂和低 pH 值会导致严重的氧化应激。因此,暴露的生物体改变了细胞凋亡和自噬过程以维持体内平衡。本研究表明,锂和水酸化对 D. magna 种群构成了威胁,它们的联合暴露大大加剧了毒性影响。

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