Child exposure to organophosphate and pyrethroid insecticides measured in urine, wristbands, and household dust and its implications for child health in South Africa: A panel study

Author:

Veludo Adriana Fernandes12ORCID,Röösli Martin12ORCID,Dalvie Mohamed Aqiel3ORCID,Stuchlík Fišerová Petra4ORCID,Prokeš Roman45,Přibylová Petra4,Šenk Petr4,Kohoutek Jiří4ORCID,Mugari Mufaro3ORCID,Klánová Jana4,Huss Anke6ORCID,Figueiredo Daniel Martins6ORCID,Mol Hans7ORCID,Dias Jonatan7,Degrendele Céline48ORCID,Fuhrimann Samuel12ORCID

Affiliation:

1. Swiss Tropical and Public Health Institute (Swiss TPH), Allschwil, Switzerland

2. University of Basel, Basel, Switzerland

3. Centre for Environmental and Occupational Health Research, School of Public Health, University of Cape Town, Cape Town, South Africa

4. Masaryk University, Faculty of Science, RECETOX, Brno, Czech Republic

5. Global Change Research Institute of the Czech Academy of Sciences, Brno, Czech Republic

6. Institute for Risk Assessment Sciences, Utrecht University, Utrecht, the Netherlands

7. Wageningen Food Safety Research, part of Wageningen University & Research, Wageningen, The Netherlands

8. Aix-Marseille University, CNRS, LCE, Marseille, France

Abstract

Background: Children in agricultural areas are exposed to organophosphate (OP) and pyrethroid (PYR) insecticides. This explorative study investigated child exposure to OPs and PYRs, comparing temporal and spatial exposure variability within and among urine, wristbands, and dust samples. Methods: During spraying season 2018, 38 South African children in two agricultural areas (Grabouw/Hex River Valley) and settings (farm/village) participated in a seven-day study. Child urine and household dust samples were collected on days 1 and 7. Children and their guardians were wearing silicone wristbands for seven days. Intraclass correlation coefficients (ICCs) evaluated temporal agreements between repeated urine and dust samples, Spearman rank correlations (Rs) evaluated the correlations among matrices, and linear mixed-effect models investigated spatial exposure predictors. A risk assessment was performed using reverse dosimetry. Results: Eighteen OPs/PYRs were targeted in urine, wristbands, and dust. Levels of chlorpyrifos in dust (ICC = 0.92) and diethylphosphate biomarker in urine (ICC = 0.42) showed strong and moderate temporal agreement between day 1 and day 7, respectively. Weak agreements were observed for all others. There was mostly a weak correlation among the three matrices (Rs = −0.12 to 0.35), except for chlorpyrifos in dust and its biomarker 3,5,6-trichloro-2-pyridinol in urine (Rs = 0.44). No differences in exposure levels between living locations were observed. However, 21% of the urine biomarker levels exceeded the health-risk threshold for OP exposure. Conclusions: Observed high short-term variability in exposure levels during spraying season highlights the need for repeated sampling. The weak correlation between the exposure matrices points to different environmental and behavioral exposure pathways. Exceeding risk thresholds for OP should be further investigated.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Health, Toxicology and Mutagenesis,Public Health, Environmental and Occupational Health,Pollution,Global and Planetary Change,Epidemiology

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