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Published on: June 5, 2020
A simplified model for simulating lifetime accumulation of persistent organic pollutants in humans with steady-state
Pei Wang1, Xinyi Huang1, Yu Wang2
1Key Laboratory of Ministry of Education for Coastal and Wetland Ecosystems and Fujian Institute for Sustainable Oceans, College of the Environment and Ecology, Xiamen University, Xiamen 361102, China.
Abstract:
Persistent organic pollutants (POPs) have posed a significant threat to global public health for decades. The ongoing exposure in the pre-and postban periods has created significant knowledge gaps in assessing the long-term health effects of POPs. In this study, we developed a simplified human accumulation load (HAL) model to simulate POP accumulation across general, individual, and intergenerational levels through seven scenarios. The steady-state was rigorously quantified by knee point (the point of maximum curvature in accumulation curves), reached in 6.11 years, and a ΔHAL: IAMT (intake amount) ratio < 1 %, reached in 6.64 years, for a POP with 1-year half-life at 10 ng daily intake. General-level simulations over 100 years showed that the timing of steady-state is determined solely by the half-life of POPs, while accumulation levels are shaped by intake amount, frequency and half-life. Individual-level simulations revealed that changes in intake or half-life result in accumulation curves converging to the same values. Intergenerational simulations for perfluorooctanoic acid (PFOA) revealed peak offspring serum concentrations of 4.48 ng mL⁻¹ (boys) and 4.36 ng mL⁻¹ (girls) after lactation. Over a decade was required to reach 0.2 ng mL⁻¹ , a safe biomonitoring equivalent. The model effectively elucidated the impact of background and ongoing exposure on biases in deriving POP half-life values in humans. The HAL model provides a robust tool for predicting stabilization post-emission reductions, aiding global strategies to manage these persistent contaminants effectively.
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