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Hepatic Mitochondrial Dysfunction and Gut Dysbiosis Induced by Polyethylene Microplastics in FVB/n Mice: A
Mónica G Silva1, Beatriz Medeiros-Fonseca2, Adelina Gama3,4
1Chemistry Research Centre (CQ-VR), University of Trás-os-Montes and Alto Douro (UTAD), 5000-801 Vila Real, Portugal.
Abstract:
The emerging problem that microplastics pose to our society is reflected in the exponential growth in investigations devoted to uncovering their toxicological potential in humans. However, these studies present several limitations, one of the most significant being the use of microplastics that do not represent their environmental counterparts. In this study, we evaluated the impact of two types of polyethylene microplastics (27-32 µm)-non-fluorescent and fluorescent-on the liver and intestine, targeting mitochondria. FVB/n mice were subjected to a subacute exposure to two concentrations representative of human exposure (0.002% (w/w) and 0.006% (w/w)). Both types of microplastics impaired mitochondrial respiration through disruption of NADH-linked pathways, with more pronounced effects at the highest concentration of fluorescent MPs. Electron transport chain complexes, particularly CIII and CIV, were affected, partially explaining the observed alterations in mitochondrial respiratory capacity. An increased SOD and GPx activity supported the link between mitochondrial dysfunction and increased reactive oxygen species overproduction under MPs exposure. Hepatic mitochondrial lipid remodelling was detected following exposure to fluorescent microplastics, while intestinal epithelial cells displayed impaired mitochondrial activity together with compromised cellular integrity, indicative of stress response. In parallel, shifts in gut composition suggest that PE MPs may contribute to intestinal barrier dysfunction. Overall, fluorescent MPs induced more severe mitochondrial and biochemical disturbances in both the liver and the intestine than their non-fluorescent counterparts. Our findings highlight mitochondria as central targets for microplastic-induced toxicity and underscore the need for improved MPs models in toxicological research.
Insights
Polyethylene microplastics (MPs) harm liver and intestinal mitochondria, impacting respiration and cellular integrity. Fluorescent MPs caused more severe toxicity, highlighting mitochondria as key targets in microplastic research.
Area of Science:
- Environmental Toxicology
- Mitochondrial Biology
- Human Health Risk Assessment
Background:
- Microplastics (MPs) pose emerging risks, but studies often lack realistic environmental counterparts.
- Understanding MP toxicological potential, especially on human organs like the liver and intestine, is crucial.
Purpose of the Study:
- To evaluate the impact of non-fluorescent and fluorescent polyethylene microplastics (PE MPs) on mouse liver and intestine mitochondria.
- To investigate the effects of environmentally relevant MP concentrations on mitochondrial function and cellular integrity.
Main Methods:
- Subacute exposure of FVB/n mice to two concentrations (0.002% and 0.006% w/w) of 27-32 µm PE MPs (non-fluorescent and fluorescent).
- Assessment of mitochondrial respiration, electron transport chain complex activity, oxidative stress markers (SOD, GPx), hepatic lipid remodelling, and intestinal epithelial integrity.
- Analysis of gut microbiota composition shifts.
Main Results:
- Both PE MP types impaired mitochondrial respiration and affected electron transport chain complexes (CIII, CIV).
- Increased SOD and GPx activity indicated MPs-induced oxidative stress and mitochondrial dysfunction.
- Fluorescent MPs induced more severe hepatic mitochondrial lipid remodelling and intestinal cellular stress, alongside gut composition shifts, suggesting barrier dysfunction.
Conclusions:
- Mitochondria are central targets of PE MP toxicity in the liver and intestine.
- Fluorescent MPs exhibit greater toxicity than non-fluorescent counterparts at equivalent concentrations.
- Improved MP models representing environmental forms are essential for accurate toxicological assessment.

