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How Digestive Processes Can Affect the Bioavailability of PCBs Associated with Microplastics: A Modeling Study
Nur Hazimah Mohamed Nor1, Zhiyue Niu1, Marie Hennebelle2
1Aquatic Ecology and Water Quality Management Group, Wageningen University & Research, P.O. Box 47, 6700 AA Wageningen, The Netherlands.
Environmental Science & Technology
|July 28, 2023
Summary
Digestive processes significantly increase chemical concentrations on microplastics, reducing overall chemical bioavailability in the gut. This finding is crucial for understanding human health risks associated with microplastic ingestion.
Area of Science:
- Environmental Chemistry
- Toxicology
- Gastroenterology
Background:
- The transfer of chemicals adsorbed onto microplastics within the human gastrointestinal tract is not well understood.
- Hydrophobic organic chemicals, such as polychlorinated biphenyls (PCBs), can adsorb to microplastics and pose health risks.
- The influence of digestive processes on the release and bioavailability of these chemicals from microplastics requires investigation.
Purpose of the Study:
- To investigate how digestive processes affect the kinetics of chemical exchange on microplastics.
- To quantify the impact of digestion on chemical concentrations and bioavailability in the human upper intestinal tract.
- To develop a model that incorporates digestion to predict chemical transfer from microplastics.
Main Methods:
- Utilized an in vitro gut fluid digestive model simulating the human upper intestinal tract.
- Measured chemical exchange kinetics of 10 PCBs on microplastics under varying digestive enzyme activities, using olive oil as a food proxy.
- Determined micelle-water and oil-water partition coefficients for PCBs to assess sorption contributions.
Main Results:
- A novel biphasic, reversible chemical exchange model incorporating digestion accurately fitted empirical data.
- Digestive processes increased microplastic chemical concentrations by 10-20 times compared to a non-digestion scenario.
- Higher enzyme activity led to increased chemical release from digested food, resulting in higher microplastic chemical concentrations.
Conclusions:
- Digestive processes substantially alter chemical transfer kinetics on microplastics, reducing overall chemical bioavailability in the gastrointestinal tract.
- The developed modeling tool and understanding of reduced bioavailability mechanisms have broad relevance for risk assessment.
- These findings necessitate the consideration of digestive processes in human health risk assessments of microplastics and in understanding aquatic food web biomagnification.

