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April 3, 2026Advanced Healthcare Materials2 citations

Inflammatory Microenvironment Reshapes the Protein Corona of Polystyrene Nanoplastics to Exacerbate Periodontitis Progression

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CCChao ChenQYQi YangWWWeidong Wang

Key Points

  • This research aims to explore how the inflammatory microenvironment influences the protein corona of polystyrene nanoplastics and their toxicity in periodontitis.
  • Examined protein corona formation in saliva from periodontitis patients
  • Assessed macrophage uptake and inflammatory responses in vitro
  • Conducted in vivo studies using a periodontitis mouse model
  • Identified a disease-specific protein corona enriched with apolipoproteins, complement, and coagulation proteins
  • Enhanced macrophage uptake of nanoplastics linked to increased phagocytosis and endocytosis pathways
  • Elevated levels of reactive oxygen species, M1 macrophage polarization, and pro-inflammatory cytokine secretion
  • Increased alveolar bone loss and systemic inflammation in mice exposed to nanoplastics

Abstract

Nanoplastics (NPs) are emerging environmental pollutants with widespread human exposure and potential health risks. Once entering biological systems, NPs readily acquire a protein corona (PC) that governs their biological identity and toxicity. However, how disease-associated microenvironments reshape PC and modulate NPs toxicity remains poorly understood. Here, we investigated the effects of the oral inflammatory microenvironment on PC and the biological behavior of polystyrene (PS) NPs using periodontitis as a model disease. We identified a disease-specific PC formed in the saliva of periodontitis patients, characterized by enrichment of apolipoproteins, complement, and coagulation proteins. Compared with the normal PC, this disease-specific PC markedly enhanced macrophage uptake of PS NPs via increased phagocytosis and lipid raft/caveolin-mediated endocytosis, and triggered stronger pro-inflammatory responses, including elevated reactive oxygen species production, M1 macrophage polarization, and cytokine secretion. In vivo, oral exposure to PS NPs exacerbated alveolar bone loss and inflammation in a periodontitis mouse, accompanied by enhanced macrophage M1 polarization and systemic inflammatory responses. Mechanistically, these effects were closely associated with the complement-enriched disease-specific PC that amplified NPs-immune cell interactions. Overall, this study demonstrates that inflammatory microenvironments can reshape the PC of NPs and intensify their toxicological outcomes, underscoring the need for health-dependent risk assessment of NPs.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69cf5d1f5a333a821460ac44https://doi.org/10.1002/adhm.71098
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