Literature DB >> 29169085

Combined toxicity of triclosan, 2,4-dichlorophenol and 2,4,6-trichlorophenol to zebrafish (Danio rerio).

Yuhuan Zhang1, Mi Liu1, Jinfeng Liu1, Xuedong Wang2, Caihong Wang1, Weiming Ai1, Shaobo Chen1, Huili Wang3.   

Abstract

Triclosan (TCS), 2,4,6-trichlorophenol (2,4,6-TCP) and 2,4-dichlorophenol (2,4-DCP) are the most prevalent chlorinated phenolic pollutants in aquatic environments. Our results showed LC50 and EC50 values of 0.51, 1.11, 2.45mg/L, and 0.36, 0.74, 1.53mg/L for TCS, 2,4,6-TCP and 2,4-DCP, respectively, to 120hpf zebrafish. The highest TCSD (the mixture of TCS, 2,4,6-TCP and 2,4-DCP) toxicity was observed at a TCS:2,4,6-TCP:2,4-DCP concentration ratio of 1:2:4. LC50 and EC50 values of TCSD mixtures for 120-hpf zebrafish were 2.28 and 1.16mg/L, respectively. Two toxicity assessment methods (Toxic Unit and Mixture Toxicity Index) indicated that TCSD interactions produced partly additive toxicity. TCSD exposure decreased zebrafish hatching rate and led to a series of malformations. Following alkaline phosphatase staining, a large area of vascular ablation was observed with almost complete disappearance of vascular branches and a smaller coverage range. Prominent reddening of the yolk sac and visceral mass after oil red O staining implied that TCSD exposure severely affected fat metabolism. Following acridine orange staining, cell death occurred in eyes while high TCSD concentrations (0.84mg/L) induced cardiovascular circulation dysfunction. Alcian blue staining increased the α angle between Meckel's cartilages and β angle between two ceratobranchial. Basihyal and palatoquadrate became shorter and developmental abnormality or defects occurred in the fifth ceratobranchial. Overall, these results provide a theoretical basis for systematically evaluating the combined toxicity of the prevalent chlorinated phenolic pollutants in real-world aquatic environments.
Copyright © 2017 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  2,4-Dichlorophenol and 2,4,6-trichlorophenol; Joint toxicity; Mixtures of triclosan; Partly additive effect; Staining and histopathological observation; Triclosan

Mesh:

Substances:

Year:  2017        PMID: 29169085     DOI: 10.1016/j.etap.2017.11.006

Source DB:  PubMed          Journal:  Environ Toxicol Pharmacol        ISSN: 1382-6689            Impact factor:   4.860


  8 in total

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2.  Electrochemical degradation of triclosan in aqueous solution. A study of the performance of an electro-Fenton reactor.

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3.  1,2,4-Oxadiazole-Based Bio-Isosteres of Benzamides: Synthesis, Biological Activity and Toxicity to Zebrafish Embryo.

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4.  PPARγ Regulates Triclosan Induced Placental Dysfunction.

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Journal:  Cells       Date:  2021-12-28       Impact factor: 6.600

5.  Association of urinary triclosan, methyl triclosan, triclocarban, and 2,4-dichlorophenol levels with anthropometric and demographic parameters in children and adolescents in 2020 (case study: Kerman, Iran).

Authors:  Habibeh Nasab; Saeed Rajabi; Moghaddameh Mirzaee; Majid Hashemi
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6.  Synthesis, biological activity and toxicity to zebrafish of benzamides substituted with pyrazole-linked 1,2,4-oxadiazole.

Authors:  Yingying Shao; Minting Tu; Sen Yang; Yingying Wang; Binlong Sun; Jianjun Shi; Chengxia Tan; Xuedong Wang
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Review 7.  Adsorption and Photocatalytic Degradation of Pesticides into Nanocomposites: A Review.

Authors:  Franciele S Bruckmann; Carlos Schnorr; Leandro R Oviedo; Salah Knani; Luis F O Silva; William L Silva; Guilherme L Dotto; Cristiano R Bohn Rhoden
Journal:  Molecules       Date:  2022-09-23       Impact factor: 4.927

8.  Novel Pyridyl-Oxazole Carboxamides: Toxicity Assay Determination in Fungi and Zebrafish Embryos.

Authors:  Shu Chen; Dong-Lin Zhang; Chao-Li Ren; Wen-Qian Zou; Xiao-Yu Tian; Xiao-Hua Du; Cheng-Xia Tan
Journal:  Molecules       Date:  2021-06-25       Impact factor: 4.411

  8 in total

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