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载吲哚菁绿的上转换纳米颗粒稳定化:用于双模态上转换和光声成像联合光热治疗的硅核/壳介孔诊疗纳米平台。

Stable ICG-loaded upconversion nanoparticles: silica core/shell theranostic nanoplatform for dual-modal upconversion and photoacoustic imaging together with photothermal therapy.

机构信息

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

Engineering Research Center of Molecular and Neuro Imaging, Ministry of Education, School of Life Science and Technology, Xidian University, Xi'an, Shanxi, 710071, China.

出版信息

Sci Rep. 2017 Nov 16;7(1):15753. doi: 10.1038/s41598-017-16016-x.

Abstract

We report here the design and multiple functions of a new hierarchical nanotheronostic platform consisting of an upconversion nanoparticle (UCNP) core: shell with an additional mesoporous silica (mSiO) matrix load shell containing sealed, high concentration of ICG molecules. We demonstrate that this UCNP@mSiO-ICG nanoplatform can perform the following multiple functions under NIR excitation at 800 nm: 1) Light harvesting by the UCNP shell containing Nd and subsequent energy transfer to Er in the Core to produce efficient green and red upconversion luminescence for optical imaging; 2) Efficient nonradiative relaxation and local heating produced by concentration quenching in aggregated ICG imbedded in the mesopourous silica shell to enable both photoacoustic imaging and photothermal therapy. Compared to pure ICG, sealing of mesoporous silica platforms prevents the leak-out and improves the stability of ICG by protecting from rapid hydrolysis. Under 800 nm laser excitation, we performed both optical and photoacoustic (PA) imaging in vitro and in vivo. Our results demonstrated that UCNP@mSiO-ICG with sealed structures could be systemically delivered to brain vessels, with a long circulation time. In addition, these nanoplatforms were capable of producing strong hyperthermia efforts to kill cancer cells and hela cells under 800 nm laser irradiation.

摘要

我们在此报告了一种新的层次纳米诊断平台的设计和多种功能,该平台由上转换纳米粒子(UCNP)核:壳组成,具有额外的介孔硅(mSiO)基质负载壳,其中包含密封的、高浓度的 ICG 分子。我们证明,在 800nm 的近红外激发下,这种 UCNP@mSiO-ICG 纳米平台可以执行以下多种功能:1)UCNP 壳中包含的 Nd 吸收光,随后能量转移到 Core 中的 Er,产生高效的绿色和红色上转换发光,用于光学成像;2)嵌入介孔硅壳中的聚集 ICG 产生的非辐射弛豫和局部加热,使光声成像和光热疗都成为可能。与纯 ICG 相比,介孔硅平台的密封防止了 ICG 的泄漏,并通过保护其免受快速水解来提高其稳定性。在 800nm 激光激发下,我们在体外和体内进行了光学和光声(PA)成像。我们的结果表明,具有密封结构的 UCNP@mSiO-ICG 可以系统地递送到脑血管中,并具有较长的循环时间。此外,这些纳米平台能够在 800nm 激光照射下产生强烈的热疗作用,杀死癌细胞和 hela 细胞。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fadd/5691150/77a5c9277d6e/41598_2017_16016_Fig1_HTML.jpg

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