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Optimization of gold nanostructers for laser killing of cancer cells

机译:癌细胞激光杀伤金纳米结构的优化

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Recently, the first applications of gold nanoshells (Halas and co-workers, 2003), nanospheres and nanosphere clusters (Anderson and co-workers, 2003; Zharov and co-workers, 2003) to the cancer cell diagnostics and laser killing of cancer cells (LKCC) have been reported. However, to be clinically relevant, existing technologies must overcome fundamental problems related with limitations of current understanding the relationship between the nanoparticle/cluster parameters (size, shape, particle/cluster structure, etc.) and the efficiency of LKCC therapy, as well as with limitations of the available methods for synthesis and in situ characterization of new advanced nanoparticles and clusters with unique synergistic properties which are crucial for selective LKCC therapy. Here we report on preliminary simulation results aimed at finding the optimal cluster structures for maximal absorption efficiency of laser radiation. We consider also alternative possibilities related with using gold nanorods and nanoshells instead of spherical particles. Two types of nanostructures are studied: (1) bioconjugates of single nanoparticles (spheres, nanoshells, and nanorods); (2); linear chains, 2D lattice arrays, and 3D clusters of gold spheres or conjugates that mimic aggregation of nanoparticles on or within cancer cells. By using the generalized multiparticle Mie solution and different versions of the cluster T-matrix method, we calculated the absorption efficiency of nanostructures under study. The gold nanoshells and nanorods with tunable spectral resonances are shown to be more effective photothermal labels as compared to usual solid gold spheres. In the case of 1D-3D clusters, the interparticle separations and short linear chain fragments are the main structural parameters determining the absorption efficiency.
机译:最近,金纳米壳(哈拉斯和他的同事,2003年),纳米球和纳米球团(安德森和同事,2003; Zharov和他的同事,2003年)的第一个应用到癌细胞的癌细胞诊断和激光杀(LKCC)的报道。然而,在临床上相关的,现有技术必须克服与理解纳米颗粒/群集参数(大小,形状,颗粒/簇结构等),并且LKCC疗法的效率之间的关系的电流的限制有关的基本问题,以及与用于合成和在新的先进的纳米颗粒和簇具有独特的协同性能,这是用于选择性LKCC疗法至关重要原位表征可用的方法的限制。在这里,我们旨在寻找最佳簇结构的激光辐射的最大吸收效率的初步仿真结果的报告。我们还考虑用黄金纳米棒和纳米壳,而不是球形颗粒与选择的可能性。两种类型的纳米结构进行了研究:(1)单个纳米颗粒(球,纳米壳,纳米棒和)的生物缀合物; (2);直链,二维晶格阵列和金球的3D簇或结合物上或癌细胞内的纳米颗粒的模拟物聚集。通过使用群集T矩阵方法的广义多粒子三重溶液和不同版本中,我们计算出纳米结构的所研究的吸收效率。的金纳米壳和纳米棒具有可调谐光谱谐振被示出为更有效的光热标签相比,常用的固体金球体。在1D-3D簇的情况下,颗粒间的分离和短链线性片段是确定的吸收效率的主要结构参数。

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