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共包裹光敏药物和聚集增强型双光子吸收荧光染料聚集体的有机改性二氧化硅纳米颗粒用于双光子光动力疗法。

Organically modified silica nanoparticles co-encapsulating photosensitizing drug and aggregation-enhanced two-photon absorbing fluorescent dye aggregates for two-photon photodynamic therapy.

作者信息

Kim Sehoon, Ohulchanskyy Tymish Y, Pudavar Haridas E, Pandey Ravindra K, Prasad Paras N

机构信息

Institute for Lasers, Photonics and Biophotonics, Department of Chemistry, State University of New York, Buffalo, NY 14260-3000, USA.

出版信息

J Am Chem Soc. 2007 Mar 7;129(9):2669-75. doi: 10.1021/ja0680257. Epub 2007 Feb 9.

Abstract

We report energy-transferring organically modified silica nanoparticles for two-photon photodynamic therapy. These nanoparticles co-encapsulate two-photon fluorescent dye nanoaggregates as an energy up-converting donor and a photosensitizing PDT drug as an acceptor. They combine two features: (i) aggregation-enhanced two-photon absorption and emission properties of a novel two-photon dye and (ii) nanoscopic fluorescence resonance energy transfer between this nanoaggregate and a photosensitizer, 2-devinyl-2-(1-hexyloxyethyl)pyropheophorbide. Stable aqueous dispersions of the co-encapsulating nanoparticles (diameter < or = 30 nm) have been prepared in the nonpolar interior of micelles by coprecipitating an organically modified silica sol with the photosensitizer and an excess amount of the two-photon dye which forms fluorescent aggregates by phase separation from the particle matrix. Using a multidisciplinary nanophotonic approach, we show: (i) indirect excitation of the photosensitizer through efficient two-photon excited intraparticle energy transfer from the dye aggregates in the intracellular environment of tumor cells and (ii) generation of singlet oxygen and in vitro cytotoxic effect in tumor cells by photosensitization under two-photon irradiation.

摘要

我们报道了用于双光子光动力疗法的能量转移有机修饰二氧化硅纳米颗粒。这些纳米颗粒共包裹双光子荧光染料纳米聚集体作为能量上转换供体和光敏光动力疗法药物作为受体。它们结合了两个特性:(i)新型双光子染料的聚集增强双光子吸收和发射特性,以及(ii)该纳米聚集体与光敏剂2-脱乙烯基-2-(1-己氧基乙基)焦脱镁叶绿酸之间的纳米级荧光共振能量转移。通过将有机修饰的硅溶胶与光敏剂和过量的双光子染料共沉淀,在胶束的非极性内部制备了共包裹纳米颗粒(直径≤30nm)的稳定水分散体,该双光子染料通过从颗粒基质中相分离形成荧光聚集体。使用多学科纳米光子学方法,我们展示了:(i)在肿瘤细胞的细胞内环境中通过染料聚集体的高效双光子激发颗粒内能量转移间接激发光敏剂,以及(ii)在双光子照射下通过光敏化在肿瘤细胞中产生单线态氧和体外细胞毒性作用。

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