4.5 Article

Concentration Addition, Independent Action, and Quantitative Structure-Activity Relationships for Chemical Mixture Toxicities of the Disinfection By products of Haloacetic Acids on the Green Alga Raphidocelis subcapitata

期刊

ENVIRONMENTAL TOXICOLOGY AND CHEMISTRY
卷 40, 期 5, 页码 1431-1442

出版社

WILEY
DOI: 10.1002/etc.4995

关键词

Disinfection by products; Haloacetic acids; Mixture toxicity; Quantum descriptors

资金

  1. National Natural Science Foundation of China [21866010, 21667013]
  2. Provincial Natural Science Foundation of Guangxi [2017GXNSFAA198346]
  3. Science Research and Technology Development Project of Guilin [2016012505]
  4. Special Funding for Guangxi BaGui Scholar Construction Projects
  5. Guangxi Science and Technology Planning Project [GuiKe-AD18126018]

向作者/读者索取更多资源

The study investigated the toxicological interactions of HAA mixtures in green algae and predicted DBP mixture toxicities based on different models. Results showed that mixture effects were synergistic in 47.1% and antagonistic in 25%, while additive effects were only observed in 27.9% of experiments. Predictive models failed to accurately predict mixture toxicity.
The potential toxicity of haloacetic acids (HAAs), common disinfection by products (DBPs), has been widely studied; but their combined effects on freshwater green algae remain poorly understood. The present study was conducted to investigate the toxicological interactions of HAA mixtures in the green alga Raphidocelis subcapitata and predict the DBP mixture toxicities based on concentration addition, independent action, and quantitative structure-activity relationship (QSAR) models. The acute toxicities of 6 HAAs (iodoacetic acid [IAA], bromoacetic acid [BAA], chloroacetic acid [CAA], dichloroacetic acid [DCAA], trichloroacetic acid [TCAA], and tribromoacetic acid [TBAA]) and their 68 binary mixtures to the green algae were analyzed in 96-well microplates. Results reveal that the rank order of the toxicity of individual HAAs is CAA > IAA approximate to BAA > TCAA > DCAA > TBAA. With concentration addition as the reference additive model, the mixture effects are synergetic in 47.1% and antagonistic in 25%, whereas the additive effects are only observed in 27.9% of the experiments. The main components that induce synergism are DCAA, IAA, and BAA; and CAA is the main component that causes antagonism. Prediction by concentration addition and independent action indicates that the 2 models fail to accurately predict 72% mixture toxicity at an effective concentration level of 50%. Modeling the mixtures by QSAR was established by statistically analyzing descriptors for the determination of the relationship between their chemical structures and the negative logarithm of the 50% effective concentration. The additive mixture toxicities are accurately predicted by the QSAR model based on 2 parameters, the octanol-water partition coefficient and the acid dissociation constant (pK(a)). The toxicities of synergetic mixtures can be interpreted with the total energy (E-T) and pK(a) of the mixtures. Dipole moment and E-T are the quantum descriptors that influence the antagonistic mixture toxicity. Therefore, in silico modeling may be a useful tool in predicting disinfection by-product mixture toxicities. Environ Toxicol Chem 2021;00:1-12. (c) 2021 SETAC

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