AI Article Synopsis

  • Thimerosal (THI), a source of mercury pollution, has been studied for its effects on zebrafish embryos, revealing its potential neurobehavioral toxicity even at low concentrations.
  • Exposure to THI increased swimming speed and decreased exploratory behavior in zebrafish larvae while altering amino acid and monoamine levels, indicating that THI impacts the fish's nervous system.
  • The study suggests that THI can disrupt amino acid balance and influence gene expression related to dopamine, calling for deeper examination into the environmental risks posed by THI to aquatic species.

Article Abstract

Thimerosal (THI) has become a significant source of organic mercury pollutants in aquatic ecosystems, but there is limited information regarding its adverse effects on fish. In this study, zebrafish embryos were exposed to THI at 0 (control), 5.0, and 50 ng/L from 0-5 days post fertilization (dpf), and variations in their survival, development, behavior, free amino acid contents, and the biochemical responses involved in monoaminergic systems were examined. Although THI exposure did not significantly affect the survival, heart rate, or hatching time of zebrafish embryos, it substantially increased swimming velocity (136-154 % of the control) and reduced exploratory behavior (141-142 % of the control) in zebrafish larvae at 5 dpf. Exposure also significantly altered the amino acid contents (51-209 % of the control) and monoamine levels (70-154 % of the control) in zebrafish larvae, some of which displayed significant correlations with behavioral traits. THI significantly elevated dopamine receptor gene expression and monoamine oxidase activity in zebrafish larvae. Adding extra phenylalanine or tryptophan to the E3 medium facilitates the recovery of zebrafish larvae from the abnormal behaviors induced by THI. These findings reveal for the first time that THI exposure at the level of ng/L is sufficient to induce neurobehavioral toxic effects in the early life stages of zebrafish, and disrupting amino acid homeostasis is a critical underlying mechanism. This study provides valuable insights into the toxicity of THI to fish and highlights the importance of assessing its potential risks to aquatic ecosystems.

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http://dx.doi.org/10.1016/j.jhazmat.2024.135548DOI Listing

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