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金纳米蘑菇的合成 溶剂控制的电置换增强光疗效率。

Synthesis of gold nano-mushrooms solvent-controlled galvanic replacement to enhance phototherapeutic efficiency.

机构信息

Republic of Korea Department of Chemistry, Seoul National University, Seoul 08826, Republic of Korea.

Department of Chemistry, Kwangwoon University, 20, Gwangwoon-ro, Nowon-gu, Seoul 01897, Republic of Korea.

出版信息

Nanoscale. 2022 Jan 27;14(4):1409-1420. doi: 10.1039/d1nr06634j.

Abstract

In advanced galvanic replacement, variable factors such as the combination of two elements where actual redox reaction and post-synthetic structural transformation take place. Research on manufacturing distinctive nanostructures has mainly focused on the shape of the sacrificial nanotemplate, the presence or absence of additives, and the reaction temperature. Here, we have attempted to confirm the dependency on the solvent, which was considered to simply serve as a medium for a homogeneous chemical reaction to proceed by aiding the dispersion of the nanotemplate and reactants. Thus, we obtained mushroom-like Au nanoplates (mAuNPs) by comprehensive galvanic replacement reaction between solvents, additives, and adsorbents. The mAuNPs with a porous Au nanoplate head and a hollow nanotube tail structure were formed an optimization process in a 50 v/v% solvent comprising water and ethylene glycol. As a result of confirming the galvanic replacement in co-solvent conditions, in which various types of water miscible solvents were introduced, it was revealed that the most critical factors for regulating the surface polymeric environment of the nanoplate were the relative polarity index of the co-solvent and the hydrogen bonding type. These depend on the molecular structure of the solvent. The manufactured mAuNPs exhibited excellent absorbance in the near-infrared region, and efficient photothermal (PT) conversion-mediated heat dissipation under local laser irradiation. These results confirm the viability of the gene-thermo dual-modal combinatorial cancer therapy based on the surface loading of oligonucleotides and peptides, and the PT therapeutic approach and .

摘要

在高级电替换中,变量因素如两种元素的组合,其中实际的氧化还原反应和合成后的结构转化发生。制造独特纳米结构的研究主要集中在牺牲纳米模板的形状、添加剂的存在与否以及反应温度上。在这里,我们试图确认溶剂的依赖性,溶剂被认为只是通过帮助纳米模板和反应物的分散来促进均相化学反应进行的介质。因此,我们通过溶剂、添加剂和吸附剂之间的全面电替换反应获得了蘑菇状的 Au 纳米板(mAuNPs)。具有多孔 Au 纳米板头部和空心纳米管尾部结构的 mAuNPs 在包含水和乙二醇的 50 v/v%溶剂的优化过程中形成。在确认共溶剂条件下的电替换的过程中,引入了各种类型的水溶性溶剂,结果表明调节纳米板表面聚合环境的最关键因素是共溶剂的相对极性指数和氢键类型。这些取决于溶剂的分子结构。制造的 mAuNPs 在近红外区域表现出优异的吸光度,并且在局部激光照射下能够有效地进行光热(PT)转换介导的热耗散。这些结果证实了基于寡核苷酸和肽表面负载的基因-热双重模态组合癌症治疗以及 PT 治疗方法的可行性。

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