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Published on: July 25, 2017
Polystyrene microplastics induce gut microbiota dysbiosis and hepatic lipid metabolism disorder in mice
Liang Lu1, Zhiqin Wan1, Ting Luo1
1College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou 310032, China.
Abstract:
Microplastic (MP) has become a concerning global environmental problem. It is toxic to aquatic organisms and can spread through the food chain to ultimately pose a threat to humans. In the environment, MP can interact with microbes and act as a microbial habitat. However, effects of polystyrene MP on the gut microbiota in mammals remain unclear. Here, male mice were exposed to two different sizes of polystyrene MP for 5 weeks to explore its effect. We observed that oral exposure to 1000 μg/L of 0.5 and 50 μm polystyrene MP decreased the body, liver and lipid weights in mice. Mucus secretion in the gut decreased in both sizes of polystyrene MP-treated groups. Regarding the gut microbiota, at the phylum level, polystyrene MP exposure decreased the relative abundances of Firmicutes and α-Proteobacteria in the feces. Furthermore, high throughput sequencing of the V3-V4 region of the 16S rRNA gene revealed significant changes in the richness and diversity of the gut microbiota in the cecums of polystyrene MP-treated mice. At the genus level, a total of 6 and 8 types of bacteria changed in the 0.5 and 50 μm polystyrene MP-treated groups, respectively. Furthermore, an operational taxonomic unit (OTU) analysis identified that 310 and 160 gut microbes were changed in the 0.5 and 50 μm polystyrene MP-treated groups, respectively. In addition, the hepatic triglyceride (TG) and total cholesterol (TCH) levels decreased in both 1000 μg/L 0.5 and 50 μm polystyrene MP-treated groups. Correspondingly, the relative mRNA levels of some key genes related to lipogenesis and TG synthesis decreased in the liver and epididymal fat. These results indicated that polystyrene MP could modify the gut microbiota composition and induce hepatic lipid disorder in mice; while the mouse is a common mammal model, consequently, the health risks of MP to animals should not be ignored.
Insights
Polystyrene microplastics (MP) alter gut microbiota and decrease lipid levels in mice. This study highlights potential health risks of microplastic exposure in mammals, impacting gut health and metabolism.
Area of Science:
- Environmental Science
- Microbiology
- Toxicology
Background:
- Microplastics (MP) are a growing environmental concern, posing risks to aquatic life and potentially humans through the food chain.
- MPs can serve as habitats for microbes, but their impact on mammalian gut microbiota is not well understood.
- Polystyrene MP, a common plastic pollutant, warrants investigation into its effects on mammalian health.
Purpose of the Study:
- To investigate the effects of oral exposure to different sizes of polystyrene microplastics (MP) on the gut microbiota and host metabolism in male mice.
- To determine if polystyrene MP exposure alters gut microbial composition, mucus secretion, and hepatic lipid profiles.
Main Methods:
- Male mice were orally exposed to 0.5 μm and 50 μm polystyrene MP at 1000 μg/L for 5 weeks.
- Body, liver, and lipid weights were measured. Gut mucus secretion was assessed.
- Gut microbiota composition was analyzed using 16S rRNA gene sequencing (V3-V4 region) and OTU analysis. Hepatic triglyceride (TG) and total cholesterol (TCH) levels were quantified.
Main Results:
- Polystyrene MP exposure reduced body, liver, and lipid weights, and decreased gut mucus secretion.
- Microbial analysis revealed decreased relative abundances of Firmicutes and α-Proteobacteria. Significant changes in gut microbiota richness and diversity were observed in the cecum.
- Hepatic TG and TCH levels decreased, with corresponding reductions in lipogenesis-related gene expression in the liver and fat tissue.
Conclusions:
- Polystyrene microplastics can alter gut microbiota composition in mice.
- Exposure to polystyrene MP induces hepatic lipid disorders, indicated by decreased lipid levels and altered gene expression.
- These findings suggest potential health risks associated with microplastic ingestion in mammals, underscoring the need for further research.
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