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In vitro and in vivo comparison of the immunotoxicity of single- and multi-layered graphene oxides with or without pluronic F-127

机译:有或没有普朗尼克F-127的单层和多层石墨烯氧化物的免疫毒性的体内外比较

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摘要

Graphene oxide (GO) has been a focus of research in the fields of electronics, energy, and biomedicine, including drug delivery. Thus, single- and multi-layered GO (SLGO and MLGO) have been produced and investigated. However, little information on their toxicity and biocompatibility is available. In the present study, we performed a comprehensive study of the size- and dose-dependent toxicity of GOs in the presence or absence of Pluronic F-127 on THP-1 cells by examining their viability, membrane integrity, levels of cytokine and ROS production, phagocytosis, and cytometric apoptosis. Moreover, as an extended study, a toxicity evaluation in the acute and chronic phases was performed in mice via intravenous injection of the materials. GOs exhibited dose- and size-dependent toxicity. Interestingly, SLGO induced ROS production to a lesser extent than MLGO. Cytometric analysis indicated that SLGO induced necrosis and apoptosis to a lesser degree than MLGO. In addition, cell damage and IL-1β production were influenced by phagocytosis. A histological animal study revealed that GOs of various sizes induced acute and chronic damage to the lung and kidney in the presence or absence of Pluronic F-127. These results will facilitate studies of GO prior to its biomedical application.
机译:氧化石墨烯(GO)一直是电子,能源和生物医学领域(包括药物输送)领域的研究重点。因此,已经生产并研究了单层和多层GO(SLGO和MLGO)。但是,关于其毒性和生物相容性的信息很少。在本研究中,我们通过检查GOS的活力,膜完整性,细胞因子水平和ROS的产生,对存在或不存在Pluronic F-127时GO的大小和剂量依赖性毒性进行了全面研究,吞噬作用和细胞凋亡。此外,作为一项扩展研究,通过静脉内注射该材料在小鼠中进行了急性和慢性期的毒性评估。 GO显示出剂量和大小依赖性的毒性。有趣的是,SLGO诱导ROS产生的程度低于MLGO。流式细胞仪分析表明SLGO诱导坏死和凋亡的程度低于MLGO。另外,吞噬作用影响细胞损伤和IL-1β产生。组织学动物研究显示,在存在或不存在Pluronic F-127的情况下,各种大小的GO都会对肺和肾脏造成急性和慢性损伤。这些结果将有助于GO在其生物医学应用之前的研究。

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