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基于盐介导的、等离子体场-场/场-晶格耦合增强的核壳型金纳米花生用于近红外二区光动力学治疗。

Salt-mediated, plasmonic field-field/field-lattice coupling-enhanced NIR-II photodynamic therapy using core-gap-shell gold nanopeanuts.

机构信息

Department of Chemistry, National Tsing Hua University, Hsinchu 30013, Taiwan, Republic of China.

Department of Breast Surgical Oncology, National Cancer Center/National Clinical Research Center for Cancer/Cancer Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, 100021, China.

出版信息

Nanoscale Horiz. 2022 May 31;7(6):589-606. doi: 10.1039/d1nh00631b.

Abstract

Plasmonic field-field coupling-induced enhancement of the optical properties of dye molecules in the nanogaps among metal nanoparticle clusters and thin films has attracted significant attention especially in disease-related theranostic applications. However, it is very challenging to synthesize plasmonic core-gap-shell nanostructures with a well-controlled nanogap, uniform shape, and distances to maximize the plasmonic field-field coupling between the core and the shell. Herein, we synthesized Au@gap@AuAg nanopeanut-shaped core-gap-shell nanostructures (Au NPN) and tuned their optical absorption from near-infrared region-I (NIR-I) to near-infrared region-II (NIR-II) by filling their nanogap with a high dielectric NaCl aqueous solution, which led to a dramatic redshift in the plasmonic absorption band by 320 nm from 660 to 980 nm and a 12.6-fold increase (at 1064 nm) in the extinction coefficient in the NIR region (1000-1300 nm). Upon filling the nanogap with NaCl aqueous solution, the Au NPN6.5(NaCl) (, ∼6.5 nm nanogap)-mediated NIR-II photodynamic therapy effect was dramatically enhanced, resulting in a much longer average lifespan of >55 days for the mice bearing a murine colon tumor and treated with Au NPN6.5(NaCl) plus 1064 nm light irradiation compared to the mice treated with Au NPN6.5 + 1064 nm light irradiation (without nanogap filled with dielectric NaCl, 40 d) and the doxorubicin-treated group (23 d). This study demonstrates a simple but effective method to tune and maximize the plasmonic field-field coupling between the metal shell and metal core of core-gap-shell nanostructures, the plasmonic field-lattice interactions, and biomedical applications for the treatment of tumors. Overall, our work presents a new way to enhance/maximize the plasmonic field-field and field-lattice coupling, and thus the performance/sensitivities in nanogap-based bioimaging, sensing, and theranostic nanomaterials and devices.

摘要

等离子体场-场耦合诱导金属纳米颗粒簇和薄膜中的染料分子的光学性质增强在与疾病相关的治疗应用中引起了极大的关注。然而,合成具有良好控制的纳米间隙、均匀形状和距离的等离子体核-壳纳米结构以最大化核和壳之间的等离子体场-场耦合非常具有挑战性。在此,我们合成了 Au@gap@AuAg 纳米花生形核-壳纳米结构(AuNPN),并通过在其纳米间隙中填充高介电 NaCl 水溶液将其光学吸收从近红外区-I(NIR-I)调谐到近红外区-II(NIR-II),导致等离子体吸收带从 660nm 到 980nm 发生了 320nm 的明显红移,在近红外区(1000-1300nm)的消光系数增加了 12.6 倍(在 1064nm 处)。当纳米间隙中填充 NaCl 水溶液时,AuNPN6.5(NaCl)(,约 6.5nm 纳米间隙)介导的 NIR-II 光动力治疗效果显著增强,导致携带鼠结肠肿瘤的小鼠的平均寿命延长至>55 天以上,并用 AuNPN6.5(NaCl)加 1064nm 光照射治疗,与用 AuNPN6.5+1064nm 光照射治疗(纳米间隙未填充介电 NaCl,40d)和多柔比星治疗组(23d)相比。这项研究展示了一种简单但有效的方法来调节和最大化核-壳纳米结构的金属壳和金属核之间的等离子体场-场耦合、等离子体场-晶格相互作用以及肿瘤治疗的生物医学应用。总的来说,我们的工作提出了一种新的方法来增强/最大化等离子体场-场和场-晶格耦合,从而提高基于纳米间隙的生物成像、传感和治疗纳米材料和器件的性能/灵敏度。

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