Interactions between polystyrene nanoparticles and human intestinal epithelial Caco-2 cells

IF 5.5 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES NanoImpact Pub Date : 2025-04-01 DOI:10.1016/j.impact.2025.100559
Yuan-Yuan Liu, Jie Liu, Yuan Guo, Qiangqiang Zhang, Aoneng Cao, Haifang Wang
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Abstract

Nanoplastics enter the human body mainly by ingestion through the gastrointestinal tract and thus the uptake and release of nanoplastics in intestinal cells have been studied. However, the fate of nanoplastics in intestinal cells remains poorly understood, particularly how they are exocytosed. Herein, we investigated the uptake, distribution, and exocytosis of nanoplastics in Caco-2 cells using 70 nm red fluorescent polystyrene (R70PS) as a nanoplastic model. The results show that R70PS readily enters Caco-2 cells and the content per cell peaks at around 24 h, but the total intracellular content in all cells increases continuously over 72 h. In addition, the uptake mechanisms change over incubation time, i.e. R70PS entered Caco-2 cells via both the energy-independent pathway and the energy-dependent caveolae-mediated endocytosis and macropinocytosis at 4 h incubation, but almost all R70PS entered cells in an energy-dependent manner via caveolae-mediated endocytosis, macropinocytosis, and clathrin-mediated endocytosis at 12 h incubation. Most of the intracellular R70PS accumulated in lysosomes, but R70PS also entered the mitochondria and its level increased over time. Approximately 45 % of the intracellular R70PS could be cleared from the cells within 12 h, mainly via the lysosomal pathway. Exocytosis was also associated with autophagy and was facilitated by the increase in the number of mitochondria and lysosomes, but inhibited by serum in the medium. Our findings deepen the understanding of the interaction between nanoplastics and intestinal cells, which is helpful for the risk assessment of nanoplastics.
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聚苯乙烯纳米颗粒与人肠道上皮细胞 Caco-2 之间的相互作用
纳米塑料主要通过胃肠道进入人体,因此研究了纳米塑料在肠细胞中的吸收和释放。然而,纳米塑料在肠细胞中的命运仍然知之甚少,特别是它们是如何胞外化的。本研究以70 nm红色荧光聚苯乙烯(R70PS)为纳米塑料模型,研究了纳米塑料在caco2细胞中的吸收、分布和胞吐。结果表明,R70PS易于进入Caco-2细胞,每个细胞的含量在24 h左右达到峰值,但在72 h内,所有细胞的细胞内总含量持续增加。此外,R70PS的摄取机制随孵育时间而变化,即在孵育4 h时,R70PS既通过能量非依赖性途径进入Caco-2细胞,也通过能量依赖性小泡介导的内吞和巨噬作用进入Caco-2细胞;但几乎所有的R70PS在孵育12 h时通过小泡介导的内吞作用、巨噬细胞作用和网格蛋白介导的内吞作用以能量依赖的方式进入细胞。细胞内的R70PS大部分积聚在溶酶体中,但R70PS也进入线粒体,并随着时间的推移而增加。大约45%的胞内R70PS可在12小时内被清除,主要通过溶酶体途径。胞吐也与自噬有关,线粒体和溶酶体数量的增加促进了胞吐,但培养基中的血清抑制了胞吐。我们的发现加深了对纳米塑料与肠道细胞相互作用的理解,有助于纳米塑料的风险评估。
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来源期刊
NanoImpact
NanoImpact Social Sciences-Safety Research
CiteScore
11.00
自引率
6.10%
发文量
69
审稿时长
23 days
期刊介绍: NanoImpact is a multidisciplinary journal that focuses on nanosafety research and areas related to the impacts of manufactured nanomaterials on human and environmental systems and the behavior of nanomaterials in these systems.
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