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Anisotropic Plasmonic Metal Heterostructures as Theranostic Nanosystems for Near Infrared Light‐Activated Fluorescence Amplification and Phototherapy

机译:各向异性等离子金属异质结构作为用于近红外光激活荧光放大和光疗的治疗论纳米系统

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摘要

The development of sophisticated theranostic systems for simultaneous near infrared (NIR) fluorescence imaging and phototherapy is of particular interest. Herein, anisotropic plasmonic metal heterostructures, Pt end‐deposited Au nanorods (PEA NRs), are developed to efficiently produce hot electrons under 808 nm laser irradiation, exhibiting the strong electric density. These hot electrons can release the heat through electron‐phonon relaxation and form reactive oxygen species through chemical transformation, as a result of potent photothermal and photodynamic performance. Simultaneously, the confined electromagnetic field of PEA NRs can transfer energy to adjacent polyethylene glycol (PEG)‐linked NIR fluorophores (CF) based on their energy overlap mechanism, leading to remarkable NIR fluorescence amplification in CF‐PEA NRs. Various PEG linkers (1, 3.4, 5.0, and 10 kD) are employed to regulate the distance between CF and PEA NRs of CF‐PEA NRs, and the maximum fluorescence intensity is achieved in CF 5k ‐PEA NRs. After further attachment with i‐motif DNA/Nrf2 siRNA chimera to simultaneously suppress both cellular antioxidant defense and hyperthermia resistance effects, the final biocompatible CF 5k ‐ b PEA@siRNA NRs present promising NIR fluorescence imaging ability and 808 nm laser‐activated photothermal and photodynamic therapeutic effect in MCF7 cells and tumor‐bearing mice, holding great potential for cancer therapy.
机译:特别需要开发用于同时近红外(NIR)荧光成像和光疗的精密治疗仪系统。在本文中,开发了各向异性等离子体金属异质结构(Pt末端沉积的Au纳米棒(PEA NRs)),以在808 nm激光辐照下有效产生热电子,表现出很强的电密度。这些热电子可以通过电子-声子弛豫释放热量,并通过化学转化形成活性氧,这是强光热和光动力性能的结果。同时,PEA NRs的局限电磁场可以基于其能量重叠机制将能量转移到相邻的聚乙二醇(PEG)连接的NIR荧光团(CF),从而在CF-PEA NRs中实现显着的NIR荧光放大。各种PEG接头(1、3.4、5.0和10 kD)用于调节CF‐PEA NRs的CF和PEA NR之间的距离,并且在CF 5k‐PEA NR中实现最大荧光强度。在与i-motif DNA / Nrf2 siRNA嵌合体进一步附着以同时抑制细胞抗氧化防御和热疗抗药性效应后,最终的生物相容性CF 5k-b PEA @ siRNA NRs展现出令人鼓舞的NIR荧光成像能力以及808 nm激光激活的光热和光动力MCF7细胞和荷瘤小鼠具有良好的治疗效果,具有巨大的癌症治疗潜力。

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