Van't Hoff Institute for Molecular Sciences, University of Amsterdam, Science Park 904, 1098XH, Amsterdam, the Netherlands.
Institute for Biodiversity and Ecosystem Dynamics, University of Amsterdam, Science Park 904, 1098XH, Amsterdam, the Netherlands.
Chemosphere. 2024 Oct;365:143277. doi: 10.1016/j.chemosphere.2024.143277. Epub 2024 Sep 10.
Despite our growing awareness of micro-and nanoplastics presence in food and beverages, the fate of nanoplastics (NPs) in the human gastrointestinal tract (GIT) remains poorly investigated. Changes of nanoplastics size upon digestive conditions influence the potential of absorption through the intestine. In this study, polymer nanoparticles with different physicochemical properties (size, surface and chemistry) were submitted to gastrointestinal digestion (GID) simulated in vitro. Their agglomeration behaviour was measured with a unique set of analytical approaches, allowing to study NPs' interactions with the digestive enzymes. Smaller NPs agglomerated more, narrowing the overall particle size distribution of smaller and larger NPs. NPs of different polymers exhibited heteroagglomeration. Digestive enzymes interact with the NPs, forming large but fragile agglomerates. In presence of the enzymes, even acid-functionalized NPs, typically stable in harsh conditions, agglomerated similarly to the non-functionalized PS NPs. These results highlight the role of the GID in increasing the effective size of ingested NPs, potentially reducing their ability to pass through the cell membranes. Our findings address a critical knowledge gap in nanoplastics oral uptake potential, providing a solid technical foundation for their characterization.
尽管我们越来越意识到微塑料和纳米塑料存在于食品和饮料中,但纳米塑料(NPs)在人体胃肠道(GIT)中的命运仍未得到充分研究。消化条件下纳米塑料尺寸的变化会影响通过肠道吸收的潜力。在这项研究中,具有不同物理化学性质(尺寸、表面和化学性质)的聚合物纳米颗粒在体外模拟的胃肠道消化(GID)中进行了处理。使用独特的一组分析方法测量了它们的团聚行为,该方法允许研究 NPs 与消化酶的相互作用。较小的 NPs 团聚得更多,从而缩小了较小和较大 NPs 的整体粒径分布。不同聚合物的 NPs 表现出异凝聚。消化酶与 NPs 相互作用,形成大但易碎的团聚体。即使在酶存在的情况下,通常在恶劣条件下稳定的酸功能化 NPs 也会与非功能化 PS NPs 类似地发生团聚。这些结果强调了 GID 在增加摄入 NPs 的有效尺寸方面的作用,这可能会降低它们穿过细胞膜的能力。我们的研究结果解决了纳米塑料口服摄取潜力的一个关键知识差距,为它们的表征提供了坚实的技术基础。