Yang Celina, Bromma Kyle, Chithrani Devika
Department of Biomedical Physics, Ryerson University, Toronto, ON M5B 2K3, Canada.
Department of Physics and Astronomy, University of Victoria, Victoria, BC V8P 5C2, Canada.
Cancers (Basel). 2018 Mar 20;10(3):84. doi: 10.3390/cancers10030084.
Optimizing the interface between nanoparticles (NPs) and the biological environment at various levels should be considered for improving delivery of NPs to the target tumor area. For NPs to be successfully delivered to cancer cells, NPs needs to be functionalized for circulation through the blood vessels. In this study, accumulation of Polyethylene Glycol (PEG) functionalized gold nanoparticles (GNPs) was first tested using in vitro monolayer cells and multilayer cell models prior to in vivo models. A diameter of 10 nm sized GNP was selected for this study for sufficient penetration through tumor tissue. The surfaces of the GNPs were modified with PEG molecules, to improve circulation time by reducing non-specific uptake by the reticuloendothelial system (RES) in animal models, and with a peptide containing integrin binding domain, RGD (arginyl-glycyl-aspartic acid), to improve internalization at the cellular level. A 10-12% accumulation of the injected GNP dose within the tumor was observed in vivo and the GNPs remained within the tumor tissue up to 72 h. This study suggests an in vitro platform for optimizing the accumulation of NP complexes in cells and tissue structures before testing them in animal models. Higher accumulation within the tumor in vivo upon surface modification is a promising outcome for future applications where GNPs can be used for drug delivery and radiation therapy.
为了提高纳米颗粒(NPs)向靶肿瘤区域的递送效率,应考虑在各个层面优化纳米颗粒与生物环境之间的界面。为了使纳米颗粒成功递送至癌细胞,需要对纳米颗粒进行功能化修饰,以便其能够在血管中循环。在本研究中,在体内模型之前,首先使用体外单层细胞和多层细胞模型测试了聚乙二醇(PEG)功能化金纳米颗粒(GNPs)的积累情况。本研究选择了直径为10nm的GNPs,以便其能够充分穿透肿瘤组织。通过用PEG分子修饰GNPs的表面,在动物模型中减少网状内皮系统(RES)的非特异性摄取,从而延长循环时间;并用含有整合素结合域的肽RGD(精氨酰-甘氨酰-天冬氨酸)修饰,以提高细胞水平的内化作用。在体内观察到,注射剂量的GNPs在肿瘤内的积累量为10%-12%,并且GNPs在肿瘤组织内可保留长达72小时。本研究提出了一个体外平台,用于在动物模型中测试之前优化纳米颗粒复合物在细胞和组织结构中的积累。表面修饰后在体内肿瘤内的更高积累量,对于GNPs可用于药物递送和放射治疗的未来应用而言,是一个有前景的结果。