We can't find the internet
Attempting to reconnect
Something went wrong!
Hang in there while we get back on track
Mucin corona delays intracellular trafficking and alleviates cytotoxicity of nanoplastic-benzopyrene combined contaminant
AI summary Read the abstract
Polystyrene-benzopyrene combined contaminant nanoparticles formed a mucin corona when encountering the respiratory mucus layer, which slowed intracellular trafficking and reduced cytotoxicity in lung epithelial cells — suggesting mucin acts as a protective barrier that delays but does not prevent cellular internalization.
Nanoplastics have recently become a worldwide concern as newly emerging airborne pollutants, which can associate with polycyclic aromatic hydrocarbons (PAHs) and form combined contaminant nanoparticles (CCNPs). After being inhaled in the respiratory system, the CCNPs would first encounter the mucous gel layer being rich in mucin. Herein, polystyrene-benzopyrene (PS@Bap) NPs were prepared as CCNPs model and their interaction with mucin and the resultant biological responses were studied. It was observed that mucin corona stably attached to the CCNPs surface, which significantly altered the fate of the CCNPs in lung epithelial cells (A 549 cell line). The mucin corona would 1) stably adsorbed on PS@Bap at the early stages of endocytosis until degraded during the lysosomal transport and maturation process, 2) delay intracellular trafficking of PS@Bap and the progress of Bap detached from PS, 3) enhance uptake of PS@Bap but reduce the cytotoxicity elicited by PS@Bap, as indicated by cell viability, generation of reactive oxygen species, impairment on mitochondrial function, and further cell apoptosis. In addition, in vivo study also verified the enhanced effect of PS on the development of an acute lung inflammatory response induced by Bap. This study highlights the significance of incorporating the effects of mucin for precisely assessing the respiratory system toxicity of nanoplastics based CCNPs in atmospheric environments.
More Papers Like This
The Opposite Roles of Benzo[ a ]pyrene Eco-Corona and Bronchoalveolar Lavage Fluid Biocorona in the Cytotoxicity of Polystyrene Microplastics
AI summary Read the abstract
Researchers found that when polystyrene microplastics carry adsorbed benzo[a]pyrene into the lungs, the lung fluid's protein corona enhances cellular uptake via caveolin-mediated endocytosis and partially protects against direct membrane damage — while the eco-corona from BaP adsorption simultaneously amplifies oxidative stress, cytotoxicity, and apoptosis, demonstrating opposing effects of the two surface coatings.
Cellular interactions with polystyrene nanoplastics—The role of particle size and protein corona
AI summary Read the abstract
Researchers investigated how polystyrene nanoplastics interact with mammalian cells, finding that particle size and the protein corona that forms around particles in biological fluids strongly influence cellular uptake and toxicity. Smaller nanoplastics penetrated cell membranes more readily and caused greater disruption, suggesting that the tiniest plastic particles may pose the greatest biological risk.
Impact of Protein Corona Formation and Polystyrene Nanoparticle Functionalisation on the Interaction with Dynamic Biomimetic Membranes Comprising of Integrin
AI summary Read the abstract
Researchers studied how polystyrene nanoparticles interact with blood proteins and cell membranes to understand potential health effects of nanoplastic exposure. They found that when blood proteins coat the nanoparticles, forming a so-called protein corona, it actually reduces the particles' ability to damage cell membranes. The study suggests that the body's natural protein coating of nanoplastics may offer some protection against membrane disruption, though the long-term implications remain unclear.
Lipid Corona Formation on Micro- and Nanoplastic Particles Modulates Uptake and Toxicity in A549 Cells
AI summary Read the abstract
Researchers found that lipid corona formation on micro- and nanoplastic particles significantly modulates their cellular uptake and toxicity in human lung cells, suggesting that biological coatings alter how plastic particles interact with human tissues.
The selective permeability of mucin hydrogels is modulated by nanoplastic contaminations
AI summary Read the abstract
Nanoplastic particles — especially cationic ones — adsorb to mucin hydrogel barriers lining the lungs, intestine, and stomach, altering their surface charge and introducing hydrophobic binding sites that compromise the barrier's selective permeability. This is a key mechanistic finding for microplastic health research because it explains how nanoplastics could facilitate the absorption of co-occurring toxins through the body's first line of chemical defense.
Research digests by email
When a large batch of papers lands in the Atlas, we read through it and send a short write-up of what stood out.