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Published on: February 28, 2018
Oral exposure to polyethylene microplastics alters gut morphology, immune response, and microbiota composition in
Madjid Djouina1, Cécile Vignal1, Alexandre Dehaut2
1Univ. Lille, Inserm, CHU Lille, U1286- INFINITE - Institute for Translational Research in Inflammation, F-59000, Lille, France.
Abstract:
The ubiquitous and growing presence of microplastics (MPs) in all compartments of the environment raises concerns about their possible harmful effects on human health. Human exposure to MPs occurs largely through ingestion. Polyethylene (PE) is widely employed for reusable bags and food packaging and found to be present in drinking water and food. It is also one of the major polymers detected in human stool. The aim of this study was to characterize the effects of intestinal exposure to PE MPs on gut homeostasis. Mice were orally exposed for 6 weeks to PE microbeads of 2 different sizes, 36 and 116 μm, that correspond to those found in human stool. They were administrated either individually or as a mixture at a dose of 100 μg/g of food. Both PE microbead sizes were detected in mouse stool. Different parameters related to major intestinal functions were compared between control mice, mice exposed to each type of microbead, or co-exposed to the 2 types of microbeads. Intestinal disturbances were observed after individual exposure to each size of PE microbead, and the most marked deleterious effects were found in co-exposed mice. At the histomorphological level, crypt depth was increased throughout the intestinal tissues. Significant variations of gene expression related to epithelial, permeability, and inflammatory biomarkers were quantified. Defective recruitment of some intestinal immune cells was observed from the proximal portion of the small intestine to the colon. Several bacterial taxa at the order level were found to be affected by exposure to the MPs by metagenomic analysis of cecal microbiota. These results show that ingestion of PE microbeads induces significant alterations of crucial intestinal markers in mice and underscores the need to further study the health impact of MP exposure in humans.
Insights
Ingesting polyethylene microplastics (MPs) disrupts gut homeostasis in mice, affecting intestinal structure, gene expression, immune cells, and gut bacteria. Further research is needed to understand human health impacts.
Area of Science:
- Environmental Science
- Toxicology
- Gastroenterology
Background:
- Microplastics (MPs) are increasingly prevalent in the environment.
- Human exposure to MPs, particularly polyethylene (PE), occurs through ingestion via food and water.
- PE MPs are detected in human stool, raising health concerns.
Purpose of the Study:
- To investigate the effects of intestinal exposure to PE microplastics (MPs) on gut homeostasis in a mouse model.
- To characterize the impact of different sizes and combinations of PE MPs on intestinal function.
Main Methods:
- Mice were orally exposed to two sizes of PE microbeads (36 and 116 μm) individually or as a mixture for 6 weeks.
- Intestinal function was assessed by comparing histomorphology, gene expression (epithelial, permeability, inflammatory biomarkers), immune cell recruitment, and cecal microbiota composition between exposed and control groups.
- PE microbead presence was confirmed in mouse stool.
Main Results:
- Both PE microbead sizes were detected in mouse stool.
- Intestinal disturbances, including increased crypt depth, were observed after PE MP exposure.
- Significant alterations in gene expression related to epithelial integrity, permeability, and inflammation were quantified.
- Impaired recruitment of intestinal immune cells and changes in cecal bacterial taxa were noted.
- Co-exposure to both sizes of PE MPs resulted in the most pronounced deleterious effects.
Conclusions:
- Ingestion of PE microbeads induces significant alterations in key intestinal markers in mice.
- PE MP exposure impacts gut homeostasis, affecting structure, function, immune response, and microbiota.
- These findings highlight the need for further investigation into the human health implications of microplastic exposure.
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