Štampar Martina, Breznik Barbara, Filipič Metka, Žegura Bojana
Department of Genetic Toxicology and Cancer Biology, National Institute of Biology, 1000 Ljubljana, Slovenia.
Jozef Stefan International Postgraduate School, 1000 Ljubljana, Slovenia.
Cells. 2020 Nov 28;9(12):2557. doi: 10.3390/cells9122557.
In genetic toxicology, there is a trend against the increased use of in vivo models as highlighted by the 3R strategy, thus encouraging the development and implementation of alternative models. Two-dimensional (2D) hepatic cell models, which are generally used for studying the adverse effects of chemicals and consumer products, are prone to giving misleading results. On the other hand, newly developed hepatic three-dimensional (3D) cell models provide an attractive alternative, which, due to improved cell interactions and a higher level of liver-specific functions, including metabolic enzymes, reflect in vivo conditions more accurately. We developed an in vitro 3D cell model from the human hepatocellular carcinoma (HepG2) cell line. The spheroids were cultured under static conditions and characterised by monitoring their growth, morphology, and cell viability during the time of cultivation. A time-dependent suppression of cell division was observed. Cell cycle analysis showed time-dependent accumulation of cells in the G0/G1 phase. Moreover, time-dependent downregulation of proliferation markers was shown at the mRNA level. Genes encoding hepatic markers, metabolic phase I/II enzymes, were time-dependently deregulated compared to monolayers. New knowledge on the characteristics of the 3D cell model is of great importance for its further development and application in the safety assessment of chemicals, food products, and complex mixtures.
在遗传毒理学中,正如3R策略所强调的,存在一种反对增加体内模型使用的趋势,因此鼓励开发和应用替代模型。二维(2D)肝细胞模型通常用于研究化学品和消费品的不良反应,容易产生误导性结果。另一方面,新开发的肝脏三维(3D)细胞模型提供了一个有吸引力的替代方案,由于改善了细胞间相互作用以及包括代谢酶在内的更高水平的肝脏特异性功能,能更准确地反映体内情况。我们从人肝癌(HepG2)细胞系开发了一种体外3D细胞模型。球体在静态条件下培养,并通过在培养期间监测其生长、形态和细胞活力来进行表征。观察到细胞分裂的时间依赖性抑制。细胞周期分析显示细胞在G0/G1期的时间依赖性积累。此外,在mRNA水平上显示了增殖标志物的时间依赖性下调。与单层细胞相比,编码肝脏标志物、代谢I/II期酶的基因出现了时间依赖性失调。关于3D细胞模型特征的新知识对于其在化学品、食品和复杂混合物安全评估中的进一步开发和应用至关重要。