首页> 外文期刊>Journal of biomedical nanotechnology >Viability, Proliferation and Functionality of Hepatocytes Cultured on Self-Assembled Monolayers (SAMs)-Modified Indium Tin Oxide (ITO)
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Viability, Proliferation and Functionality of Hepatocytes Cultured on Self-Assembled Monolayers (SAMs)-Modified Indium Tin Oxide (ITO)

机译:自组装单分子膜(SAMs)修饰的铟锡氧化物(ITO)上培养的肝细胞的活力,增殖和功能

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摘要

Hepatocyte-based cell culture platforms find their use in diverse applications ranging from drug toxicity platforms to bioartificial livers. Maintenance of hepatocyte specific functions even for a short duration of time, in vitro, is a major challenge. In this report, we have cultured primary rat hepatocytes on indium tin oxide (ITO) substrates modified with organic self-assembled monolayers (SAMs) containing methyl (-CH3), amino (-NH2), thiol (-SH) terminating groups with different degrees of wettability and surface charge. SAM modified surfaces were characterized using water contact angle measurements and infrared spectroscopy, and the cells were assessed for their viability and functionality using standard assays. Morphological responses of hepatocyte cell culture indicate characteristic cell clustering and the presence of binucleate cells predominantly on ITO, ITO-NH2 and ITO-CH3, but not on ITO-SH surface. The initial attachment of the cells may be attributed to the charge and the hydrophobic nature of the SAM end groups under physiological conditions. Cells proliferate in the presence of L-glutamine and produce Type I collagen and other proteins with low release of lactate dehydrogenase (LDH). These results suggest that SAM-based cell culture platform may be used to have a better understanding of cell-substrate interactions and make a suitable choice of substrate for use in clinical research.
机译:基于肝细胞的细胞培养平台可在从药物毒性平台到生物人工肝的各种应用中使用。维持肝细胞特异性功能,即使在体外短时间内,也是一个重大挑战。在本报告中,我们在用有机自组装单层(SAM)修饰的氧化铟锡(ITO)基质上培养了原代大鼠肝细胞,这些有机单层包含甲基(-CH3),氨基(-NH2),硫醇(-SH)终止基,润湿度和表面电荷。使用水接触角测量和红外光谱对SAM改性的表面进行表征,并使用标准测定法评估细胞的生存力和功能性。肝细胞培养的形态学反应表明特征性的细胞聚集和主要存在于ITO,ITO-NH2和ITO-CH3上而不是ITO-SH表面的双核细胞的存在。细胞的初始附着可以归因于生理条件下SAM端基的电荷和疏水性质。在存在L-谷氨酰胺的情况下,细胞增殖并产生I型胶原蛋白和其他蛋白质,而乳酸脱氢酶(LDH)的释放较低。这些结果表明,基于SAM的细胞培养平台可用于更好地了解细胞与底物的相互作用,并为临床研究选择合适的底物。

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