Integration of Nontarget Screening and QSPR Models to Identify Novel Organophosphate Esters of High Priority in Aquatic Environment.
Ying ZhangZixuan LvXiao-Yong YuYanfeng ZhangLingyan ZhuPublished in: Environmental science & technology (2024)
With the development of large numbers of novel organophosphate esters (OPEs) alternatives, it is imperative to screen and identify those with high priority. In this study, surface water, biofilms, and freshwater snails were collected from the flow-in rivers of Taihu Lake Basin, China. Screened by target, suspect, and nontarget analysis, 11 traditional and 14 novel OPEs were identified, of which 5 OPEs were first discovered in Taihu Lake Basin. The OPE concentrations in surface water ranged from 196 to 2568 ng/L, with the primary homologue tris(2,4-di tert -butylphenyl) phosphate (TD t BPP) being newly identified, which was likely derived from the transformation of tris(2,4-di tert -butylphenyl) phosphite. The majority of the newly identified OPEs displayed substantially higher bioaccumulation and biomagnification potentials in the biofilm-snail food chain than the traditional ones. Quantitative structure-property relationship models revealed both hydrophobicity and polarity influenced the bioaccumulation and biomagnification of the OPEs, while electrostatic attraction also had a contribution to the bioaccumulation in the biofilm. TD t BPP was determined as the utmost priority by toxicological priority index scheme, which integrated concentration, bioaccumulation, biomagnification, acute toxicity, and endocrine disrupting potential of the identified OPEs. These findings provide novel insights into the behaviors of OPEs and scientific bases for better management of high-risk pollutants in aquatic ecosystem.
Keyphrases
- human health
- risk assessment
- heavy metals
- climate change
- candida albicans
- health risk assessment
- staphylococcus aureus
- pseudomonas aeruginosa
- health risk
- water quality
- epithelial mesenchymal transition
- liver failure
- high throughput
- oxidative stress
- single cell
- cystic fibrosis
- escherichia coli
- mass spectrometry
- drinking water
- respiratory failure
- molecular dynamics simulations
- acute respiratory distress syndrome