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A nanoarchitecture of a gold cluster conjugated gold nanorod hybrid system and its application in fluorescence imaging and plasmonic photothermal therapy

机译:金团簇共轭金纳米棒杂化体系的纳米结构及其在荧光成像和等离子体光热治疗中的应用

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摘要

Engineering different nanomaterials into a single functional material can impart unique properties of the parental nanoparticles, especially in the field of bio imaging and therapy. Gold nanomaterials having different sizes, shapes and dimensionalities exhibit exceptional properties apart from their non-toxicity and hence are strong candidates in the biomedical field. Designing a hybrid nanomaterial of two gold nanostructures retaining the individual properties of the parental nanomaterials is challenging. Here, we demonstrate the synthesis of a hybrid nanomaterial (GQC@GNR), comprising an extremely small gold nanocluster and a representative of the asymmetric gold nanostructure, i.e., a gold nanorod, both having their own different exclusive optical properties like tuneable emission and NIR absorption characteristics, respectively. The hybrid system is designed to retain its emission and absorption in the NIR region to use it as an agent for simultaneous imaging and therapy. The formation of GQC@GNR and its architectonics heavily depend on the synthesis route and the parameters adopted which in turn have a direct influence on its properties. The architecture and its connection to the optical properties are explained using UV-Vis absorption and photoluminescence spectroscopy, zeta potential, transmission electron microscopy, etc. DFT-based computational modelling supports architectonics as explained by the experimental findings. The formation of the gold–gold hybrid system witnessed interesting science with a strong indication that materials with desired properties can be designed by appropriately modulating the architectonics of hybrid formation. Finally, folate conjugated GQC@GNR demonstrated its efficacy for targeted imaging and photothermal therapy in HeLa cells and tumor-bearing animal models. The detailed therapeutic efficacy of GQC@GNR is also explained based on Raman spectroscopy.
机译:不同纳米材料为一个工程功能材料可以传授独特的属性父母的纳米粒子,尤其是在生物成像和治疗领域。纳米材料有不同的大小,形状和表现出特殊的维度属性除了他们的无毒性,因此强有力的候选人在生物医学领域。设计一个混合纳米材料的两个黄金纳米结构保留个人父母的纳米材料的属性具有挑战性的。的混合纳米材料(GQC@GNR)组成的极其微小的金纳米和一个不对称的代表黄金纳米结构,即在金奈米棒各自不同的光学性质可协调的排放和近红外光谱的吸收分别为特征。是为了保持其发射和吸收在近红外光谱区域使用它作为一个代理同时成像和治疗。GQC@GNR及其建筑学的严重依赖采用的合成路线和参数进而直接影响其吗属性。光学性质的解释紫外可见吸收光致发光光谱学、电动电势、传播电子显微镜等。建模支持建筑学作为解释实验发现。黄金混合系统见证了有趣科学与一个强大的说明材料可以设计与所需的属性适当调节的建筑学混合形成。GQC@GNR证明其疗效为目标在海拉细胞成像和光热光谱分析治疗和肿瘤动物模型。治疗效果GQC@GNR也解释道基于拉曼光谱。

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