Resumo
This paper presents a methodology based on multivariate data analysis for characterizing potential source contributions of emerging contaminants (ECs) detected in 26 river water samples across multi-scape regions during dry and wet seasons. Based on this methodology, we unveil an approach toward potential source contributions of ECs, a concept we refer to as the “Pharmaco-signature.” Exploratory analysis of data points has been carried out by unsupervised pattern recognition (hierarchical cluster analysis, HCA) and receptor model (principal component analysis-multiple linear regression, PCA-MLR) in an attempt to demonstrate significant source contributions of ECs in different land-use zone. Robust cluster solutions grouped the database according to different EC profiles. PCA-MLR identified that 58.9% of the mean summed ECs were contributed by domestic impact, 9.7% by antibiotics application, and 31.4% by drug abuse. Diclofenac, ibuprofen, codeine, ampicillin, tetracycline, and erythromycin-H2O have significant pollution risk quotients (RQ>1), indicating potentially high risk to aquatic organisms in Taiwan.
| Idioma original | English |
|---|---|
| Revista | PLoS ONE |
| Volume | 10 |
| Número de emissão | 4 |
| DOIs | |
| Estado da publicação | Published - 15 abr. 2015 |
ODS da ONU
Este resultado contribui para o(s) seguinte(s) Objetivo(s) de Desenvolvimento Sustentável
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Good health and well being
Impressão digital
Mergulhe nos tópicos de investigação de “Source Apportionment and Risk Assessment of Emerging Contaminants: An Approach of Pharmaco-Signature in Water Systems“. Em conjunto formam uma impressão digital única.Perfis
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Stuart Gibb
- Environmental Research Institute - Director of ERI
Pessoa: Academic - Research and Teaching or Research only
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