University of Parma, Department of Chemistry, Life Sciences and Environmental Sustainability, Parco Area delle Scienze 11/A, 43124 Parma, Italy.
University of Parma, Department of Medicine and Surgery, Laboratory of General Pathology, Via Volturno 39, 43125 Parma, Italy.
J Hazard Mater. 2020 Jul 5;393:122430. doi: 10.1016/j.jhazmat.2020.122430. Epub 2020 Feb 29.
Cadmium is toxic to humans, although Cd-based quantum dots exerts less toxicity. Human hepatocellular carcinoma cells (HepG2) and macrophages (THP-1) were exposed to ionic Cd, Cd(II), and cadmium sulfide quantum dots (CdS QDs), and cell viability, cell integrity, Cd accumulation, mitochondrial function and miRNome profile were evaluated. Cell-type and Cd form-specific responses were found: CdS QDs affected cell viability more in HepG2 than in THP-1; respective IC values were ∼3 and ∼50 μg ml. In both cell types, Cd(II) exerted greater effects on viability. Mitochondrial membrane function in HepG2 cells was reduced 70 % with 40 μg ml CdS QDs but was totally inhibited by Cd(II) at corresponding amounts. In THP-1 cells, CdS QDs has less effect on mitochondrial function; 50 μg ml CdS QDs or equivalent Cd(II) caused 30 % reduction or total inhibition, respectively. The different in vitro effects of CdS QDs were unrelated to Cd uptake, which was greater in THP-1 cells. For both cell types, changes in the expression of miRNAs (miR-222, miR-181a, miR-142-3p, miR-15) were found with CdS QDs, which may be used as biomarkers of hazard nanomaterial exposure. The cell-specific miRNome profiles were indicative of a more conservative autophagic response in THP-1 and as apoptosis as in HepG2.
镉对人体有毒,尽管基于镉的量子点的毒性较小。将人类肝癌细胞(HepG2)和巨噬细胞(THP-1)暴露于离子镉、Cd(II)和硫化镉量子点(CdS QDs),评估细胞活力、细胞完整性、镉积累、线粒体功能和 miRNA 组谱。发现细胞类型和 Cd 形态特异性反应:CdS QDs 在 HepG2 中对细胞活力的影响大于 THP-1;各自的 IC 值分别约为 3 和 50μg/ml。在这两种细胞类型中,Cd(II)对活力的影响更大。40μg/ml CdS QDs 可使 HepG2 细胞中线粒体膜功能降低 70%,而相应量的 Cd(II)则完全抑制。在 THP-1 细胞中,CdS QDs 对线粒体功能的影响较小;50μg/ml CdS QDs 或等效 Cd(II)分别导致 30%的减少或完全抑制。CdS QDs 的不同体外效应与 THP-1 细胞中摄取的 Cd 无关,该细胞中摄取的 Cd 更多。对于这两种细胞类型,都发现 CdS QDs 导致 miRNA(miR-222、miR-181a、miR-142-3p、miR-15)的表达发生变化,这些 miRNA 可作为纳米材料暴露危害的生物标志物。THP-1 中保守的自噬反应和 HepG2 中的细胞凋亡表明细胞特异性的 miRNome 谱。