Laboratory of Transcriptional Regulation, Institute for Medical Biology, PAS, Lodowa 106 Street, 93-232 Lodz, Poland.
Laboratory of Virology, Institute for Medical Biology, PAS, Lodowa 106 Street, 93-232 Lodz, Poland.
Int J Mol Sci. 2021 Jan 22;22(3):1068. doi: 10.3390/ijms22031068.
Two immortalized brain microvascular endothelial cell lines (hCMEC/D3 and RBE4, of human and rat origin, respectively) were applied as an in vitro model of cellular elements of the blood-brain barrier in a nanotoxicological study. We evaluated the impact of CdSe/ZnS core-shell-type quantum dot nanoparticles on cellular homeostasis, using gold nanoparticles as a largely bioorthogonal control. While the investigated nanoparticles had surprisingly negligible acute cytotoxicity in the evaluated models, a multi-faceted study of barrier-related phenotypes and cell condition revealed a complex pattern of homeostasis disruption. Interestingly, some features of the paracellular barrier phenotype (transendothelial electrical resistance, tight junction protein gene expression) were improved by exposure to nanoparticles in a potential hormetic mechanism. However, mitochondrial potential and antioxidant defences largely collapsed under these conditions, paralleled by a strong pro-apoptotic shift in a significant proportion of cells (evidenced by apoptotic protein gene expression, chromosomal DNA fragmentation, and membrane phosphatidylserine exposure). Taken together, our results suggest a reactive oxygen species-mediated cellular mechanism of blood-brain barrier damage by quantum dots, which may be toxicologically significant in the face of increasing human exposure to this type of nanoparticles, both intended (in medical applications) and more often unintended (from consumer goods-derived environmental pollution).
两种永生化脑微血管内皮细胞系(hCMEC/D3 和 RBE4,分别来自人类和大鼠)被应用于纳米毒理学研究中,作为血脑屏障细胞成分的体外模型。我们评估了 CdSe/ZnS 核壳型量子点纳米颗粒对细胞内稳态的影响,并用金纳米颗粒作为一个广泛的生物正交对照。虽然在评估的模型中,所研究的纳米颗粒具有令人惊讶的轻微急性细胞毒性,但对屏障相关表型和细胞状态的多方面研究揭示了一种破坏内稳态的复杂模式。有趣的是,一些细胞旁屏障表型的特征(跨内皮电阻、紧密连接蛋白基因表达)在纳米颗粒暴露下得到了改善,这可能是一种潜在的适应机制。然而,在这些条件下,线粒体电势和抗氧化防御系统几乎崩溃,同时在相当一部分细胞中出现强烈的促凋亡转变(通过凋亡蛋白基因表达、染色体 DNA 片段化和膜磷脂酰丝氨酸暴露来证明)。总之,我们的结果表明,量子点通过活性氧介导的血脑屏障损伤的细胞机制,在人类越来越多地接触这种类型的纳米颗粒的情况下,无论是有意的(在医学应用中)还是更常见的无意的(来自消费品衍生的环境污染),都可能具有毒理学意义。