微塑料
聚乳酸
聚合物
聚苯乙烯
聚氯乙烯
聚乙烯
细胞毒性
聚丙烯
化学
化学工程
材料科学
环境化学
有机化学
体外
生物化学
工程类
作者
Julia Jasinski,Matthias Völkl,Magdalena V. Wilde,Valérie Jérôme,Thomas Fröhlich,Ruth Freitag,Thomas Scheibel
标识
DOI:10.1016/j.jhazmat.2023.133280
摘要
Due to global pollution derived from plastic waste, the research on microplastics is of increasing public interest. Until now, most studies addressing the effect of microplastic particles on vertebrate cells have primarily utilized polystyrene particles (PS). Other studies on polymer microparticles made, e.g., of polyethylene (PE), polyvinyl chloride (PVC), polypropylene (PP), or poly (ethylene terephthalate) (PET), cannot easily be directly compared to these PS studies, since the used microparticles differ widely in size and surface features. Here, effects caused by pristine microparticles of a narrow size range between 1 - 4 µm from selected conventional polymers including PS, PE, and PVC, were compared to those of particles made of polymers derived from biological sources like polylactic acid (PLA), and cellulose acetate (CA). The microparticles were used to investigate cellular uptake and assess cytotoxic effects on murine macrophages and epithelial cells. Despite differences in the particles' properties (e.g. ζ-potential and surface morphology), macrophages were able to ingest all tested particles, whereas epithelial cells ingested only the PS-based particles, which had a strong negative ζ-potential. Most importantly, none of the used model polymer particles exhibited significant short-time cytotoxicity, although the general effect of environmentally relevant microplastic particles on organisms requires further investigation. Our study contributes to a better understanding of microplastics toxicology, which appears to be dependent on cell type and also on the polarization state of such cells. This information is essential, as sound knowledge on the characteristics driving microplastic toxicity on organisms may explain the often contradictory results observed in effect studies on microplastics and will help to advance risk assessment for microplastic particles.
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