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基于磷脂胶束的磁等离子体纳米制剂用于磁场导向、成像引导的光诱导癌症治疗。

Phospholipid micelle-based magneto-plasmonic nanoformulation for magnetic field-directed, imaging-guided photo-induced cancer therapy.

机构信息

Institute for Lasers, Photonics and Biophotonics, SUNY at Buffalo, Buffalo, NY, USA.

出版信息

Nanomedicine. 2013 Nov;9(8):1192-202. doi: 10.1016/j.nano.2013.05.012. Epub 2013 Jun 6.

Abstract

UNLABELLED

We present a magnetoplasmonic nanoplatform combining gold nanorods (GNR) and iron-oxide nanoparticles within phospholipid-based polymeric nanomicelles (PGRFe). The gold nanorods exhibit plasmon resonance absorbance at near infrared wavelengths to enable photoacoustic imaging and photothermal therapy, while the Fe3O4 nanoparticles enable magnetophoretic control of the nanoformulation. The fabricated nanoformulation can be directed and concentrated by an external magnetic field, which provides enhancement of a photoacoustic signal. Application of an external field also leads to enhanced uptake of the magnetoplasmonic formulation by cancer cells in vitro. Under laser irradiation at the wavelength of the GNR absorption peak, the PGRFe formulation efficiently generates plasmonic nanobubbles within cancer cells, as visualized by confocal microscopy, causing cell destruction. The combined magnetic and plasmonic functionalities of the nanoplatform enable magnetic field-directed, imaging-guided, enhanced photo-induced cancer therapy.

FROM THE CLINICAL EDITOR

In this study, a nano-formulation of gold nanorods and iron oxide nanoparticles is presented using a phospholipid micelle-based delivery system for magnetic field-directed and imaging-guided photo-induced cancer therapy. The gold nanorods enable photoacoustic imaging and photothermal therapy, while the Fe3O4 nanoparticles enable magnetophoretic control of the formulation. This and similar systems could enable more precise and efficient cancer therapy, hopefully in the near future, after additional testing.

摘要

未加标签

我们提出了一个结合了金纳米棒(GNR)和氧化铁纳米粒子的磁等离子体纳米平台,该平台位于磷脂基聚合物胶束(PGRFe)内。金纳米棒在近红外波长处表现出等离子体共振吸收,从而实现光声成象和光热治疗,而 Fe3O4 纳米粒子则使纳米制剂能够进行磁泳控制。所制备的纳米制剂可以通过外部磁场进行定向和浓缩,从而增强光声信号。施加外部场还会导致磁等离子体制剂在体外被癌细胞更有效地吸收。在金纳米棒吸收峰波长的激光照射下,PGRFe 制剂在癌细胞内有效地产生等离子体纳米气泡,如共聚焦显微镜所示,导致细胞破坏。纳米平台的组合磁和等离子体功能使癌症治疗能够进行磁场导向、成像引导、增强光诱导。

临床编辑按

在这项研究中,提出了一种使用基于磷脂胶束的递药系统的金纳米棒和氧化铁纳米粒子的纳米制剂,用于磁场导向和成像引导的光诱导癌症治疗。金纳米棒能够进行光声成象和光热治疗,而 Fe3O4 纳米粒子则使制剂能够进行磁泳控制。在经过进一步的测试后,希望在不久的将来,此类系统能实现更精确、更高效的癌症治疗。

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