Internalization and toxicity of polystyrene nanoplastics on inmortalized human neural stem cells

被引:10
|
作者
González-Caballero M.C. [1 ]
de Alba González M. [1 ]
Torres-Ruiz M. [1 ]
Iglesias-Hernández P. [1 ,3 ]
Zapata V. [3 ]
Terrón M.C. [4 ]
Sachse M. [4 ]
Morales M. [2 ]
Martin-Folgar R. [2 ]
Liste I. [3 ]
Cañas-Portilla A.I. [1 ]
机构
[1] Área de Toxicología Ambiental, Centro Nacional de Sanidad Ambiental (CNSA), Instituto de Salud Carlos III (ISCIII), Ctra. Majadahonda-Pozuelo Km. 2,2, Madrid, Majadahonda
[2] Grupo de Biología y Toxicología Ambiental, Departamento de Física Matemática y de Fluidos, Facultad de Ciencias, UNED. Urbanización Monte Rozas, Avda, Esparta s/n. Ctra. de Las Rozas al Escorial Km 5, Madrid, Las Rozas
[3] Unidad Funcional de Enfermedades Crónicas, Instituto de Salud Carlos III (ISCIII), Ctra. Majadahonda-Pozuelo Km. 2,2., Madrid, Majadahonda
[4] Unidad de Microscopía Electrónica, Unidades Centrales Científico Técnicas, Instituto de Salud Carlos III (ISCIII), Ctra. Majadahonda-Pozuelo Km. 2,2., Madrid, Majadahonda
关键词
Cell death; Cell proliferation; Human neural stem cells; Nanoplastics; Uptake;
D O I
10.1016/j.chemosphere.2024.141815
中图分类号
学科分类号
摘要
Global plastic production has increased exponentially in recent decades, and a significant part of it persists in the environment, where it degrades into microplastics and nanoplastics (MPs and NPs). These can enter in humans by ingestion, inhalation, and dermal routes, and there is scientific evidence that they are able to reach the systemic circulation and penetrate and accumulate in various tissues and organs. Neurodevelopmental toxicity of NPs is one of the most worrying effects, as they can cross the blood-brain barrier. In the following study, we analyzed, by transmission electron microscopy, the in vitro uptake of 30-nm polystyrene nanoplastics (PS-NPs) into human neural stem cells (NSCs), their accumulation and subcellular localization within the cell. Furthermore, we studied the effects of different concentrations of PS-NPs on cell death, proliferation, and cell differentiation using immunocytochemistry and quantitative real time PCR for specific markers. This study demonstrated that PS-NPs were able to enter the cell, probably by endocytosis, accumulate, and aggregated in human NSCs, without being detected in the nucleus, causing cell death by apoptosis and decreased cell proliferation. This study provides new insights into the interaction and effects of PS-NPs in human NSC and supports the scientific evidence for the involvement of nanoplastic in neurodevelopmental disorders. © 2024 Elsevier Ltd
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