Cadmium stress alleviates lipid accumulation caused by chiral penthiopyrad through regulating endoplasmic reticulum stress and mitochondrial dysfunction in zebrafish liver.

Journal of hazardous materials Pub Date : 2024-10-05 Epub Date: 2024-08-17 DOI:10.1016/j.jhazmat.2024.135560
Xinquan Wang, Weixuan Di, Zhiwei Wang, Peipei Qi, Zhenzhen Liu, Huiyu Zhao, Wei Ding, Shanshan Di
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Abstract

The coexistence of cadmium (Cd) can potentiate (synergism) or reduce (antagonism) the pesticide effects on organisms, which may change with chiral pesticide enantiomers. Previous studies have reported the toxic effects of chiral penthiopyrad on lipid metabolism in zebrafish (Danio rerio) liver. The Cd effects and toxic mechanism on lipid accumulation were investigated from the perspective of endoplasmic reticulum (ER) stress and mitochondrial dysfunction. The coexistence of Cd increased the concentrations of penthiopyrad and its metabolites in zebrafish. Penthiopyrad exposure exhibited significant effects on lipid metabolism and mitochondrial function-related indicators, which were verified by lipid droplets and mitochondrial damage in subcellular structures. Moreover, penthiopyrad activated the genes of ER unfolded protein reaction (UPR) and Ca2+ permeable channels, and S-penthiopyrad exhibited more serious effects on ER stress with ER hyperplasia than R-penthiopyrad. As a mitochondrial uncoupler, the coexistence of Cd could decrease lipid accumulation by alleviating ER stress and mitochondrial dysfunction, and these effects were the most significant for R-penthiopyrad. There were antagonistic effects between Cd and penthiopyrad, which could reduce the damage caused by penthiopyrad in zebrafish, thus increasing the bioaccumulation of penthiopyrad in zebrafish. These findings highlighted the importance and necessity of evaluating the ecological risks of metal-chiral pesticide mixtures.

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镉胁迫通过调节斑马鱼肝脏的内质网胁迫和线粒体功能障碍,缓解手性吡噻菌胺引起的脂质积累。
镉(Cd)的共存会增强(协同)或降低(拮抗)农药对生物的影响,这可能会随手性农药对映体的变化而改变。以往的研究曾报道过手性戊硫磷对斑马鱼(Danio rerio)肝脏脂质代谢的毒性作用。本研究从内质网(ER)应激和线粒体功能障碍的角度研究了镉对脂质积累的影响和毒性机制。镉的共存增加了斑马鱼体内倍硫磷及其代谢物的浓度。暴露于苯噻菌胺会对脂质代谢和线粒体功能相关指标产生显著影响,亚细胞结构中的脂滴和线粒体损伤证实了这一点。此外,苯噻菌胺还激活了ER未折叠蛋白反应(UPR)基因和Ca2+通透性通道,S-苯噻菌胺对ER应激的影响比R-苯噻菌胺更严重,并伴有ER增生。作为线粒体解偶联剂,镉的共存可通过缓解ER应激和线粒体功能障碍来减少脂质积累,而这些效应对R-苯噻菌胺的影响最为显著。镉与苯噻菌胺之间存在拮抗作用,可以减轻苯噻菌胺对斑马鱼的伤害,从而增加苯噻菌胺在斑马鱼体内的生物累积。这些发现凸显了评估金属手性农药混合物生态风险的重要性和必要性。
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