Micro- and Nanoplastics as Disruptors of Digestive and Hepatopancreatic Homeostasis: Insights into the Plastic-Gut-Liver Axis
Abstract
1. Introduction
2. MPs/NPs Primary Exposure Routes and Biological Impacts
2.1. Ingestion
2.2. Inhalation
2.3. Dermal Contact
2.4. Transplacental Transport
3. MPs/NPs Tissue Accumulation in the Human Body
4. Mechanisms of MPs/NPs Uptake and Organ-Specific Translocation Effects: Focus on Digestive System
4.1. Intestinal Absorption and Barrier Integrity Alteration
4.2. Hepatobiliary and Pancreatic Metabolic Disruption
5. Impact of MPs/NPs on the Gut Microbiome
6. MPs/NPs Systemic Effects: Impact of Gut Dysbiosis on Multiorgan Axes
6.1. The Gut–Lung Axis
6.2. The Gut–Liver Axis
6.3. The Gut–Brain Axis
7. MPs/NPs Biological Impact on the Liver from In Vitro Models to Epidemiological Data
8. MPs/NPs-Induced Immune Molecular Pattern Activation Along the Gut–Liver Axis
9. Strategies for Primary Prevention and Exposure Mitigation
9.1. Water Treatment and Point-of-Use (POU) Mitigation
9.2. Food Processing, Packaging, and Dietary Exposure
9.3. Occupational and Medical Exposure Mitigation
9.4. Regulation, Standardization, and Biomonitoring
10. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| MPs/NPs | Micro- and nanoplastics |
| GI | Gastrointestinal tract |
| DDT | Dichlorodiphenyltrichloroethane |
| PBDEs | Polybrominated diphenyl ethers |
| PMMA | Poly(methyl methacrylate) |
| PP | Polypropylene |
| PVC | Polyvinyl chloride |
| PE | Polyethylene |
| PU | Polyurethane |
| EVA | Ethylene vinyl acetate |
| PA | Polyamide |
| PET | Polyethylene terephthalate |
| PAN | Polyacrylonitrile |
| Py-GC-MS | Pyrolysis–gas chromatography–mass spectrometry |
| ROS | Reactive oxygen species |
| PEG | Polyethylene glycol |
| Deff | Effective diffusion coefficient |
| LPS | Lipopolysaccharide |
| BPA | Bisphenol A |
| FAT2 | Fatty acid transport protein 2 |
| NAFLD | Nonalcoholic fatty liver disease |
| GAPDH | Glyceraldehyde-3-phosphate dehydrogenase |
| SOD2 | Superoxidedismutase 2 |
| CAT | Catalase |
| Caco-2 | Human colorectal carcinoma |
| HepaRG | Human hepatic carcinoma |
| PLA | Polylactic acid |
| MF | Melamine-formaldehyde resin |
| ASCs | Adult stem cells |
| HNF4A | Hepatocyte nuclear factor 4 alpha |
| CYP2E1 | Cytochrome P4502E1 |
| GLOC | Gut–liver-on-a-chip |
| ALT | Alanine aminotransferase |
| AST | Aspartate aminotransferase |
| ALP | Alkaline phosphatase |
| MDA | Malondialdehyde |
| ATP | Adenosinetryphosphate |
| GPx | Glutathione peroxidase |
| ZO-1 | Zonulin |
| ASL | Angiosarcoma of the liver |
| HCC | Hepatocellular carcinoma |
| VC | Vinyl chloride |
| F/B | Firmicutes/Bacteroidetes |
| SCFAs | Short-chain fatty acids |
| PAMPs | Pathogen-associated molecular patterns |
| TLR4 | Toll-like receptor 4 |
| PGA | Polyglycolic acid |
| BA | Bile acid |
| FMT | Fecal microbiota transplantation |
| HFD | High-fat diets |
| TMAO | Trimethylamine N-oxide |
| SIMGI | SIMulator of the GastroIntestinal tract |
| SHIME | SIMulator of the Human Intestinal Microbial Ecosystem |
| BBB | Blood–brain barrier |
| OFT | Open field test |
| Ox-MPs | Oxidized MPs |
| LDPE-MPs | Low-density polyethylene MPs |
| Ox-LDPE-MPs | Oxidized low-density polyethylene MPs |
| N-Ox-LDPE-MPs | Non-oxidized low-density polyethylene MPs |
| GALT | Gut-associated lymphatic tissue |
| LDPE-NPs | Low-density polyethylene NP |
| HDPE-NPs | High-density polyethylene NP |
| LDLR | Low-density lipoprotein receptors |
| GSDMD | Gasdermin protein family member |
| NK | Natural killer |
| POU | Point-of-use |
| NWM | Non-woven membranes |
| GAC | Granular activated carbon |
| IX | Ion exchange |
| CFS | Coagulation/flocculation with sedimentation |
| DEHP | Di(2-ethylhexyl)phthalate |
| NIAS | Non-intentionally added substances |
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| In Vitro/In Vivo Model | Type of MPs/NPs and Size | Treatment/Dose/Time Exposure | Effects | Ref. |
|---|---|---|---|---|
| C57BL/6J mice | PS MPs, 0.5 µm | Orally, 0.5 mg/day, 4 weeks | NK and macrophage infiltration to non-parenchymal liver cells, ↑ IFN-γ, TNF-α, IL-1β, IL-6 and IL-33 mRNA | [145] |
| Male ICR mice | Pristine PS MPs or UV-aged PS MPs, 4–5 µm | Intratracheally, 1 mg/day, 1 week | Gut and liver morphological damage, ↑ Nrf2 and HO-1 levels in the liver | [148] |
| Human intestinal organoids | Fluorescent PS NPs, 50 nm | 10 μg/mL, 14 days | ↑ ROS production, ↑ IL-8 release; NF-κB p65 translocation | [127] |
| 3D human liver microtissue model | PS MPs, 1 µm | 3.125–25 μg/mL up to 504 h | Increase in IL-6, and TNF-α | [104] |
| Mouse liver Kupffer cells and Gsdmd KO Kupffer cells | PS MPs < 10 µm | 1 mg/L, 24 h | Induction of pyroptosis; ↑ of IL-6, IL-1β, and TNF-α in LPS + nigericin treated groups. ↓ inflammation upon GSDMD KO treatment | [147] |
| C57BL/6 and Gsdmd KO mice | PS MPs < 15 µm | Subcutaneous administration, 10 mg/kg, 20 days | Induction of pyroptosis; ↑ of IL-6, IL-1β, and TNF-α and liver injuries; Inflammatory response was mitigated in GSDMD KO mice | [147] |
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Capuano, N.; Lombardi, M.; Cafà, N.; Marino, M.; Salzano, F.; Scalia, F.; Marfella, R.; Villone, G.; Cappello, F.; Szychlinska, M.A.; et al. Micro- and Nanoplastics as Disruptors of Digestive and Hepatopancreatic Homeostasis: Insights into the Plastic-Gut-Liver Axis. Int. J. Mol. Sci. 2026, 27, 3272. https://doi.org/10.3390/ijms27073272
Capuano N, Lombardi M, Cafà N, Marino M, Salzano F, Scalia F, Marfella R, Villone G, Cappello F, Szychlinska MA, et al. Micro- and Nanoplastics as Disruptors of Digestive and Hepatopancreatic Homeostasis: Insights into the Plastic-Gut-Liver Axis. International Journal of Molecular Sciences. 2026; 27(7):3272. https://doi.org/10.3390/ijms27073272
Chicago/Turabian StyleCapuano, Nicoletta, Martina Lombardi, Noemi Cafà, Marianna Marino, Flora Salzano, Federica Scalia, Raffaele Marfella, Giovanni Villone, Francesco Cappello, Marta Anna Szychlinska, and et al. 2026. "Micro- and Nanoplastics as Disruptors of Digestive and Hepatopancreatic Homeostasis: Insights into the Plastic-Gut-Liver Axis" International Journal of Molecular Sciences 27, no. 7: 3272. https://doi.org/10.3390/ijms27073272
APA StyleCapuano, N., Lombardi, M., Cafà, N., Marino, M., Salzano, F., Scalia, F., Marfella, R., Villone, G., Cappello, F., Szychlinska, M. A., Franci, G., Santoro, A., & Rinaldi, L. (2026). Micro- and Nanoplastics as Disruptors of Digestive and Hepatopancreatic Homeostasis: Insights into the Plastic-Gut-Liver Axis. International Journal of Molecular Sciences, 27(7), 3272. https://doi.org/10.3390/ijms27073272

