Second Hospital of Dalian Medical University, Dalian, 116023, People's Republic of China.
National Engineering Laboratory for Modern Silk, Soochow University, Suzhou, 215123, People's Republic of China.
J Biomed Mater Res A. 2018 Aug;106(8):2171-2180. doi: 10.1002/jbm.a.36421. Epub 2018 Apr 30.
A vigorous in vitro model of liver that could recapitulate hepatic phenotype and functionality in vivo would exclusively improve the efficiency of bioartificial liver, drug discovery, or even transplantation therapy. Owing to the indispensable role of three-dimensional (3D) microenvironment in supporting viability and function of hepatocytes in vitro, much effort recently has been focused on improving reproducibility and standardization of primary hepatocyte cultures with a paradigm shift to 3D culture system, In the present study, an improved 3D coculture system of hepatocytes was established in which rat primary hepatocytes were cocultured with hepatic stellate cells in silk porous scaffolds. Silk scaffolds with incorporated extracellular matrix provided a suitable microenvironment for maintaining the viability, morphology and gene expression of the primary hepatocyte in vitro. The presence of stromal cells promoted primary hepatocyte to generate cellular aggregates with well-organized 3D architecture after 3 days of coculture in vitro. These aggregates exhibited proper morphology similar to liver tissue in vivo. Consistent with their phenotypic appearance, well-maintained functionality of hepatocytes was also observed in the cocultures, where albumin secretion/expression, urea synthesis as well as messenger ribonucleic acid expression of multiple cytochrome Ps (CYPs) enzymes increased significantly compared to either the 3D monocultures or monolayer cultures. Additionally, this 3D multicellular coculture model displayed an improved metabolic activity of CYPs enzymes to the probe drugs treatment. Thus, this culture system would not only contribute to the construction of micro-organoid tissue of liver but also potentially provide a robust tool for drug metabolism evaluation in vitro. © 2018 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 106A: 2171-2180, 2018.
一种能够在体内重现肝表型和功能的活跃的体外肝脏模型,将专门提高生物人工肝、药物发现甚至移植治疗的效率。由于三维(3D)微环境在体外支持肝细胞活力和功能方面的不可或缺作用,最近人们努力将重点转移到改善原代肝细胞培养的重现性和标准化上,转向 3D 培养系统。在本研究中,建立了一种改良的 3D 肝细胞共培养系统,其中大鼠原代肝细胞与肝星状细胞在丝多孔支架中共培养。含有细胞外基质的丝支架为维持原代肝细胞的活力、形态和基因表达提供了合适的微环境。基质细胞的存在促进了原代肝细胞在体外共培养 3 天后生成具有良好 3D 结构的细胞聚集体。这些聚集体表现出与体内肝组织相似的适当形态。与它们的表型外观一致,共培养物中也观察到肝细胞的功能得到很好的维持,白蛋白分泌/表达、尿素合成以及多种细胞色素 P 酶(CYPs)信使核糖核酸的表达明显增加,与 3D 单核培养或单层培养相比。此外,这种 3D 多细胞共培养模型对探针药物治疗显示出 CYP 酶代谢活性的提高。因此,这种培养系统不仅有助于构建肝微器官组织,而且还可能为体外药物代谢评估提供一种强大的工具。©2018 年 Wiley 期刊公司。J 生物医学材料研究部分 A:106A:2171-2180,2018 年。