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Endocytosis-driven gold nanoparticle fractal rearrangement in cells and its influence on photothermal conversion

机译:Endocytosis-driven黄金纳米颗粒分形重排在细胞和它的影响光热光谱分析转换

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Cellular endocytosis and intracellular trafficking of nanoparticles induce dynamic rearrangements that profoundly modify the physical properties of nanoparticle and govern their biological outcomes when activated by external fields. The precise structure, organization, distribution, and density of gold nanoparticles (AuNPs) confined within intracellular compartments such as lysosomes have not been studied comprehensively, hampering the derivation of predictive models of their therapeutic activity within the cells of interest. By using transmission electron microscopy and small-angle X-ray scattering, we have determined that canonical spherical citrate-coated AuNPs in the 3-30 nm size range form fractal clusters in endolysosomes of macrophages, endothelial cells, and colon cancer cells. Statistical analysis revealed that the cluster size and endolysosome size are correlated but do not depend on the size of AuNPs unless larger preformed aggregates of AuNPs are internalized. Smaller AuNPs are confined in greater numbers in loose aggregates covering a higher fraction of the endolysosomes compared to the largest AuNPs. The fractal dimensions of intracellular clusters increased with the particle size, regardless of the cell type. We thus analyzed how these intracellular structure parameters of AuNPs affect their optical absorption and photothermal properties. We observed that a 2(nd) plasmon resonance band was shifted to the near-infrared region when the nanoparticle size and fractal dimensions of the intracellular cluster increased. This phenomenon of intracellular plasmon coupling is not directly correlated to the size of the intralysosomal cluster or the number of AuNPs per cluster but rather to the compacity of the cluster and the size of the individual AuNPs. The intracellular plasmon-coupling phenomenon translates to an efficient heating efficiency with the excitation of the three cell types at 808 nm, transforming the NIR-transparent canonical AuNPs with sizes below 30 nm into NIR-absorbing clusters in the tumor microenvironment. Harnessing the spontaneous clustering of spherical AuNPs by cells might be a more valuable strategy for theranostic purposes than deploying complex engineering to derive NIR-absorbent nanostructures out of their environment. Our paper sheds light on AuNP intracellular reorganization and proposes a general method to link their intracellular fates to their in situ physical properties exploited in medical applications.
机译:细胞内吞作用和细胞内贩卖纳米粒子引起的动态重组深刻的修改的物理性质纳米颗粒和管理他们的生物的结果当激活外部字段。结构、组织分布、和金纳米粒子的密度(AuNPs)限制在细胞内的隔间等溶酶体尚未全面学习,阻碍了预测模型的推导他们治疗的细胞内活动的兴趣。显微镜和小角x射线散射,我们已经确定,典型球面citrate-coated AuNPs 3-30纳米尺寸范围分形endolysosomes集群的形式巨噬细胞、内皮细胞和结肠癌细胞。集群大小和endolysosome大小相关但是不要依赖AuNPs除非的大小更大的预制AuNPs的总量内化。在松散的聚合覆盖更大的数字更高比例的endolysosomes相比最大的AuNPs。细胞内的集群的增加颗粒大小,无论细胞类型。因此分析了这些细胞内结构AuNPs影响其光学参数吸收和光热光谱分析属性。观察到一个2 (nd)等离子体共振乐队转向时的近红外区域纳米粒子的大小和分形维数细胞内集群增加。细胞内的等离子体耦合不直接intralysosomal的大小相关集群或每个集群AuNPs但的数量而集群的compacity和个人AuNPs的大小。plasmon-coupling现象转化为一个高效的加热效率和激励808海里,三种细胞类型的转换NIR-transparent规范AuNPs与大小低于30 nm NIR-absorbing集群中肿瘤微环境。自发的球形AuNPs的集群细胞可能是一个更有价值的策略theranostic比部署复杂的目的工程获得NIR-absorbent纳米结构的环境。论文揭示了AuNP细胞内重组,提出了一种通用方法联系他们的细胞内原位命运利用在医学物理属性应用程序。

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