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Synthesis of Hematite and Maghemite Nanotubes and Study of Their Applications in Neuroscience and Drug Delivery

机译:赤铁矿和磁赤铁矿纳米管的合成及其在神经科学和药物输送中的应用研究

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This report discusses our work on synthesis of hematite and maghemite nanotubes, analysis of their biocompatibility with pheochromocytoma cells (PC 12 cells), and study of their applications in the culture of dorsal root ganglion (DRG) neurons and the delivery of ibuprofen sodium salt (ISS) drug model. Two methods, template-assisted thermal decomposition method and hydrothermal method, were used for synthesizing hematite nanotubes, and maghemite nanotubes were obtained from the synthesized hematite nanotubes by thermal treatment. The crystalline, morphology and magnetic properties of the hematite and maghemite nanotubes were characterized by X-ray diffraction (XRD), scanning electron microscope (SEM) and vibrating sample magnetometer (VSM), respectively. The biocompatibility of the synthesized hematite nanotubes was confirmed by the survival and differentiation of PC 12 cells in the presence of the hematite nanotubes coupled to nerve growth factor (NGF). To study the combined effects of the presence of magnetic nanotubes and external magnetic fields on neurite growth, laminin was coupled to hematite and maghemite nanotubes, and DRG neurons were cultured in the presence of the treated nanotubes with the application of external magnetic fields. It was found that neurons can better tolerate external magnetic fields when magnetic nanotubes were present. Close contacts between nanotubes and filopodia that were observed under SEM showed that the nanotubes and the growing neurites interacted readily. The drug loading and release capabilities of hematite nanotubes synthesized by hydrothermal method were tested by using ibuprofen sodium salt (ISS) as a drug model. Our experimental results indicate that hematite and maghemite nanotubes have good biocompatibility with neurons, could be used in regulating neurite growth, and are promising vehicles for drug delivery.
机译:本报告讨论了我们在赤铁矿和磁赤铁矿纳米管的合成,与嗜铬细胞瘤细胞(PC 12细胞)的生物相容性分析以及它们在背根神经节(DRG)神经元培养中的应用以及布洛芬钠盐( ISS)药物模型。采用模板辅助热分解法和水热法两种方法合成赤铁矿纳米管,并通过热处理从合成的赤铁矿纳米管中获得磁赤铁矿纳米管。分别通过X射线衍射(XRD),扫描电子显微镜(SEM)和振动样品磁强计(VSM)对赤铁矿和磁赤铁矿纳米管的晶体,形态和磁性进行了表征。合成的赤铁矿纳米管的生物相容性通过在与神经生长因子(NGF)偶联的赤铁矿纳米管的存在下PC 12细胞的存活和分化得以证实。为了研究磁性纳米管和外部磁场的存在对神经突生长的综合影响,层粘连蛋白与赤铁矿和磁赤铁矿纳米管偶联,并在存在外部磁场的情况下在处理过的纳米管存在下培养DRG神经元。发现存在磁性纳米管时,神经元可以更好地耐受外部磁场。在SEM下观察到纳米管和丝状伪足之间的紧密接触表明,纳米管和生长的神经突容易相互作用。以布洛芬钠盐(ISS)为药物模型,对水热法合成的赤铁矿纳米管的载药和释放能力进行了测试。我们的实验结果表明,赤铁矿和磁赤铁矿纳米管与神经元具有良好的生物相容性,可用于调节神经突的生长,并且是有希望的药物输送载体。

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