Bioconcentration, oxidative stress and molecular mechanism of the toxic effect of acetamiprid exposure on Xenopus laevis tadpoles

IF 4.3 2区 环境科学与生态学 Q1 MARINE & FRESHWATER BIOLOGY
Hong Chen, Ya Yang, Lina Ai, Lanying Li, Renyue Ming, Ping Lu
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引用次数: 0

Abstract

Acetamiprid is a neonicotinoid commonly detected in aquatic ecosystems, with residual concentrations of up to 0.41 mg/L in surface water, posing a threat to the health of nontarget aquatic organisms. However, studies on the potential toxicity and underlying mechanisms of action of acetamiprid on nontarget aquatic organisms are limited. This study investigated the acute and short-term toxicity of acetamiprid to Xenopus laevis tadpoles. A 96-h acute toxicity test determined the LC50 of acetamiprid to be 32.1 mg/L. After 28 days of exposure to 1/10 and 1/100 LC50 concentrations, tadpole samples were collected for bioconcentration elimination analysis, biochemical analyses, transcriptomics, and metabolomics studies to comprehensively evaluate the toxic effects of acetamiprid and its underlying mechanisms. The results, indicating bioconcentration factors (BCFs) < 1, suggest that acetamiprid has a low bioconcentration in tadpoles. Additionally, oxidative stress was observed in treated Xenopus laevis tadpoles. Transcriptomic and nontargeted metabolomic analyses identified 979 differentially expressed genes (DEGs) and 95 differentially metabolites in the 0.321 mg/L group. The integrated analysis revealed that disruption of purine and amino acid metabolic pathways potentially accounts for acetamiprid-induced toxic effects in tadpoles. The disruptive effects of acetamiprid on valine, leucine and isoleucine biosynthesis; and aminoacyl-tRNA biosynthesis metabolic pathways in tadpoles were validated through targeted metabolomics analysis. These findings are crucial for assessing the risk of acetamiprid to nontarget aquatic organisms.

啶虫脒暴露对蝌蚪的生物浓缩、氧化应激和毒性作用的分子机制
啶虫脒是水生生态系统中常见的一种新烟碱,在地表水中的残留浓度高达 0.41 毫克/升,对非目标水生生物的健康构成威胁。然而,有关啶虫脒对非目标水生生物的潜在毒性和基本作用机制的研究十分有限。本研究调查了啶虫脒对爪蟾蝌蚪的急性和短期毒性。经 96 小时急性毒性试验测定,啶虫脒的半数致死浓度为 32.1 毫克/升。在1/10和1/100 LC50浓度下暴露28天后,收集蝌蚪样本进行生物富集消除分析、生化分析、转录组学和代谢组学研究,以全面评估啶虫脒的毒性效应及其内在机制。研究结果表明,啶虫脒在蝌蚪体内的生物富集因子(BCFs)为1,表明啶虫脒在蝌蚪体内的生物富集度较低。此外,在处理过的爪蟾蝌蚪体内观察到了氧化应激。转录组学和非靶标代谢组学分析在 0.321 mg/L 组中发现了 979 个差异表达基因(DEGs)和 95 个差异代谢产物。综合分析表明,嘌呤和氨基酸代谢途径的破坏可能是啶虫脒诱导蝌蚪毒性效应的原因。通过靶向代谢组学分析,验证了啶虫脒对蝌蚪体内缬氨酸、亮氨酸和异亮氨酸生物合成以及氨基酰-tRNA生物合成代谢途径的破坏作用。这些发现对于评估啶虫脒对非目标水生生物的风险至关重要。
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来源期刊
Aquatic Toxicology
Aquatic Toxicology 环境科学-毒理学
CiteScore
7.10
自引率
4.40%
发文量
250
审稿时长
56 days
期刊介绍: Aquatic Toxicology publishes significant contributions that increase the understanding of the impact of harmful substances (including natural and synthetic chemicals) on aquatic organisms and ecosystems. Aquatic Toxicology considers both laboratory and field studies with a focus on marine/ freshwater environments. We strive to attract high quality original scientific papers, critical reviews and expert opinion papers in the following areas: Effects of harmful substances on molecular, cellular, sub-organismal, organismal, population, community, and ecosystem level; Toxic Mechanisms; Genetic disturbances, transgenerational effects, behavioral and adaptive responses; Impacts of harmful substances on structure, function of and services provided by aquatic ecosystems; Mixture toxicity assessment; Statistical approaches to predict exposure to and hazards of contaminants The journal also considers manuscripts in other areas, such as the development of innovative concepts, approaches, and methodologies, which promote the wider application of toxicological datasets to the protection of aquatic environments and inform ecological risk assessments and decision making by relevant authorities.
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