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Surface Enhanced Raman Scattering Traceable and Glutathione Responsive Nanocarrier for the Intracellular Drug Delivery

机译:表面增强拉曼散射可追溯和谷胱甘肽响应纳米载体的细胞内药物传递。

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A surface enhanced Raman scattering (SERS) traceable nanocarrier is presented through a simple strategy for the intracellular redox environment triggered drug delivery. Basically, the nanocarrier has a core-shell structure, with the Raman molecule tagged Au@Ag nanorods as the SERS active core and mesoporous silica (MS) as the drug containing shell. In the presented system, the locations of nanocarriers can be tracked by SERS signals while those of drugs can be monitored through their fluorescence, allowing the simultaneous investigation of the intracellular distribution of both the nanocarriers and the drugs. To endow the nanocarrier with the glutathione (GSH) responsive behavior, disulfide, which can be cleaved by GSH, is used to directly attach drug molecules to the MS. Compared with other disulfide based drug delivery strategies, this is a quite simple and efficient method. The experimental results confirmed that the drug release can be triggered by the stimuli. Moreover, after the cellular uptake of the nanocarriers, a gradual drug release from the nanocarriers was observed by monitoring both the fluorescence of the drug molecules and the SERS signals of the nanocarriers. Considering its stimuli-responsive properties, this kind of nanocarrier would have great potential in improving the efficacy of cancer chemotherapy by avoiding premature drug leakage. More importantly, this SERS based tracking method of the nanocarrier would be more powerful than that based only on the fluorescence of the drug in the studies of drug release dynamic processes.
机译:通过用于细胞内氧化还原环境触发药物递送的简单策略,提出了一种表面增强拉曼散射(SERS)可追踪纳米载体。基本上,纳米载体具有核-壳结构,其中标记为Au @ Ag纳米棒的拉曼分子为SERS活性核,中孔二氧化硅(MS)为含药壳。在提出的系统中,可以通过SERS信号跟踪纳米载体的位置,而可以通过其荧光监测药物的位置,从而可以同时研究纳米载体和药物的细胞内分布。为了赋予纳米载体谷胱甘肽(GSH)响应行为,可以被GSH裂解的二硫键可将药物分子直接连接到MS。与其他基于二硫键的药物递送策略相比,这是一种非常简单有效的方法。实验结果证实了刺激可以触发药物释放。此外,在纳米载体的细胞摄取之后,通过监测药物分子的荧光和纳米载体的SERS信号两者,观察到药物从纳米载体逐渐释放。考虑到其刺激响应特性,这种纳米载体通过避免药物过早泄漏,在提高癌症化学疗法的疗效方面具有巨大潜力。更重要的是,在药物释放动力学过程的研究中,这种基于SERS的纳米载体跟踪方法将比仅基于药物荧光的跟踪方法更强大。

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