| Literature DB >> 29269611 |
Fan Wang1,2, Ruijie Xu1, Fangfang Zheng1, Haifang Liu3.
Abstract
Triclosan (TCS) is used as an antimicrobial agent and has been widely dispersed and detected in the aquatic environment. However, it remains uncertain whether TCS is genotoxic or not. In this study, the acute toxicity of TCS in goldfish (Carassius auratus) was studied. Then, based on the results for acute toxicity, other goldfish were exposed to various concentrations of TCS (control, DMSO control, and 1/4, 1/2, and 1/8 LC50) for 14 days, and the effects on genetic toxicity were evaluated using micronucleus (MN) and nuclear abnormalities (NA) frequencies in peripheral blood and the comet assay in the liver of the goldfish. In addition, malondialdehyde (MDA), reduced glutathione (GSH), catalase (CAT), and total antioxidant capacity (T-AOC) in the liver were assayed to evaluate oxidative stress and the possible mechanism of genotoxicity. The 96 h median lethal concentration of TCS was 1111.9 µg/l. After 14 days of exposure, the MN and NA frequencies were significantly increased in peripheral blood of the TCS-treated groups compared with the solvent control, and the comet tail moment and MDA in the liver in the highest dose of TCS groups were also significantly high. Meanwhile, an evident change in GSH, CAT, and T-AOC of the liver was found as the TCS exposure concentration increased. The results showed that TCS caused oxidative stress and a genotoxic response in goldfish, suggesting that it presents a potential ecotoxicological risk to aquatic ecosystems.Entities:
Keywords: comet assay; micronucleus; nuclear abnormalities; oxidative stress; triclosan
Mesh:
Substances:
Year: 2017 PMID: 29269611 PMCID: PMC5955753 DOI: 10.1538/expanim.17-0101
Source DB: PubMed Journal: Exp Anim ISSN: 0007-5124
Fig. 1.Erythrocytes with normal and abnormal nuclei. (A) Mature nuclei, (B) immature nuclei, (C) cell-cleavage stage nuclei, (D) equally constricted nuclei, (E) small micronuclei, (F) large micronuclei, (G) double micronuclei, (H) unequally constricted nuclei, (I) abnormal location of nuclei, (J) vacuolated nuclei, (K) double nuclei, (L) irregular nuclei, (M) bulging nuclei, (N) notched nuclei, and (O) fragmented nuclei
MN and NA frequencies in peripheral blood erythrocytes of goldfish exposed to TCS
| Group | MN rate (%) | NA rate (%) |
|---|---|---|
| Control | 0.48 ± 0.11 | 0.83 ± 0.09 |
| Solvent control | 0.59 ± 0.14 | 0.91 ± 0.13 |
| 0.1399 mg/l | 1.22 ± 0.18** | 1.81 ± 0.08** |
| 0.2798 mg/l | 1.63 ± 0.22** | 2.34 ± 0.16** |
| 0.5596 mg/l | 1.81 ± 0.11** | 2.88 ± 0.26** |
Asterisks indicate statistically significant differences from the solvent control group (**P<0.01). Data are presented as the mean ± SD (n=5).
Fig. 2.DNA damage determined by tail moment of the hepatocytes in goldfish exposed to TCS for 14 days. Asterisks indicate statistically significant differences from the control group (*P<0.05). Data are presented as the mean ±SD (n=5).
Fig. 3.MDA levels in the liver of goldfish exposed to TCS for 14 days. Asterisks indicate statistically significant differences from the control group (**P<0.01). Data are presented as the mean ± SD (n=5).
Fig. 4.Antioxidant system markers in the liver of goldfish exposed to TCS for 14 days. (A) T-AOC, (B) CAT, and (C) GSH. Asterisks indicate statistically significant differences from the control group (*P<0.05; **P<0.01). Data are presented as the mean ± SD (n=5).