石墨烯
免疫系统
纳米毒理学
血小板活化
材料科学
生物物理学
巨噬细胞
共焦显微镜
细胞因子
表面改性
化学
血小板
纳米技术
细胞生物学
体外
免疫学
生物化学
生物
纳米颗粒
物理化学
作者
Abhilash Sasidharan,Leela S. Panchakarla,Aparna R. Sadanandan,Anusha Ashokan,Parwathy Chandran,Chundayil Madathil Girish,Deepthy Menon,Shantikumar V. Nair,C. N. R. Rao,Manzoor Koyakutty
出处
期刊:Small
[Wiley]
日期:2012-02-15
卷期号:8 (8): 1251-1263
被引量:330
标识
DOI:10.1002/smll.201102393
摘要
Abstract Graphene and its derivatives are being proposed for several important biomedical applications including drug delivery, gene delivery, contrast imaging, and anticancer therapy. Most of these applications demand intravenous injection of graphene and hence evaluation of its hemocompatibility is an essential prerequisite. Herein, both pristine and functionalized graphene are extensively characterized for their interactions with murine macrophage RAW 264.7 cells and human primary blood components. Detailed analyses of the potential uptake by macrophages, effects on its metabolic activity, membrane integrity, induction of reactive oxygen stress, hemolysis, platelet activation, platelet aggregation, coagulation cascade, cytokine induction, immune cell activation, and immune cell suppression are performed using optimized protocols for nanotoxicity evaluation. Electron microscopy, confocal Raman spectral mapping, and confocal fluorescence imaging studies show active interaction of both the graphene systems with macrophage cells, and the reactive oxygen species mediated toxicity effects of hydrophobic pristine samples are significantly reduced by surface functionalization. In the case of hemocompatibility, both types of graphene show excellent compatibility with red blood cells, platelets, and plasma coagulation pathways, and minimal alteration in the cytokine expression by human peripheral blood mononuclear cells. Further, both samples do not cause any premature immune cell activation or suppression up to a relatively high concentration of 75 μg mL −1 after 72 h of incubation under in vitro conditions. This study clearly suggests that the observed toxicity effects of pristine graphene towards macrophage cells can be easily averted by surface functionalization and both the systems show excellent hemocompatibility.
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