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Updated: Jul 20, 2025

In vitro Digestion of Emulsions in a Single Droplet via Multi Subphase Exchange of Simulated Gastrointestinal Fluids
Published on: November 18, 2022
Small polystyrene microplastics interfere with the breakdown of milk proteins during static in vitro simulated human
Maria Krishna de Guzman1, Dragana Stanic-Vucinic2, Nikola Gligorijevic3
1Department of Food Technology, Safety, and Health, Faculty of Bioscience Engineering, Ghent University, Ghent, Belgium; Center for Food Chemistry and Technology, Ghent University Global Campus, Incheon, Republic of Korea.
Abstract:
Human ingestion of microplastics (MPs) is common and inevitable due to the widespread contamination of food items, but implications on the gastric digestion of food proteins are still unknown. In this study, the interactions between pepsin and polystyrene (PS) MPs were evaluated by investigating enzyme activity and conformation in a simulated human gastric environment in the presence or absence of PS MPs. The impact on food digestion was also assessed by monitoring the kinetics of protein hydrolysis through static in vitro gastric digestion of cow's milk contaminated with PS. The binding of pepsin to PS showed that the surface chemistry of MPs dictates binding affinity. The key contributor to pepsin adsorption seems to be π-π interactions between the aromatic residues and the PS phenyl rings. During quick exposure (10 min) of pepsin to increasing concentrations (222, 2219, 22188 particles/mL) of 10 μm PS (PS10) and 100 μm PS (PS100), total enzymatic activities were not affected remarkably. However, upon prolonged exposure at 1 and 2 h, preferential binding of pepsin to the small, low zeta-potential PS caused structural changes in the protein which led to a significant reduction of its activity. Digestion of cow's milk mixed with PS10 resulted in transient accumulation of larger peptides (10-35 kDa) and reduced bioavailability of short peptides (2-9 kDa) in the gastric phase. This, however, was only observed at extremely high PS10 concentration (0.3 mg/mL or 5.46E+05 particles/mL). The digestion of milk peptides, bound preferentially over pepsin within the hard corona on the PS10 surface, was delayed up to 15 min in comparison to bulk protein digestion. Intact caseins, otherwise rapidly digested, remained bound to PS10 in the hard corona for up to 15 min. This work presents valuable insights regarding the interaction of MPs, food proteins, and pepsin, and their dynamics during gastric digestion.
Insights
Human ingestion of microplastics (MPs) can affect gastric digestion. Prolonged exposure to polystyrene MPs alters pepsin structure and activity, impacting protein breakdown and nutrient bioavailability.
Area of Science:
- Environmental Science
- Biochemistry
- Food Science
Background:
- Microplastic (MP) contamination is pervasive in food, raising concerns about human health.
- The impact of ingested MPs on gastric digestion, particularly protein breakdown, remains largely unknown.
Purpose of the Study:
- To investigate the interaction between pepsin and polystyrene (PS) MPs in a simulated gastric environment.
- To assess the effect of PS MPs on the enzymatic activity of pepsin and the in vitro digestion of food proteins.
Main Methods:
- Enzyme activity and conformation assays of pepsin in the presence of varying concentrations of PS MPs (10 μm and 100 μm).
- In vitro static gastric digestion of cow's milk contaminated with PS MPs.
- Analysis of peptide kinetics and bioavailability during simulated gastric digestion.
Main Results:
- Pepsin binding to PS MPs is influenced by surface chemistry, with π-π interactions being key.
- Prolonged exposure to smaller PS MPs (PS10) reduced pepsin activity due to structural changes.
- High concentrations of PS10 transiently altered milk protein digestion, delaying peptide release and reducing bioavailability of smaller peptides.
Conclusions:
- Microplastics can interact with digestive enzymes like pepsin, potentially altering protein digestion.
- The surface properties of microplastics influence their interaction with pepsin and food proteins.
- Further research is needed to understand the long-term health implications of microplastic ingestion on nutrient absorption.
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