Temperature responsive porous silicon nanoparticles for cancer therapy - spatiotemporal triggering through infrared and radiofrequency electromagnetic heating

被引:50
|
作者
Tamarov, Konstantin [1 ,2 ]
Xu, Wujun [1 ]
Osminkina, Liubov [2 ,3 ]
Zinovyev, Sergey [3 ,4 ]
Soininen, Pasi [5 ]
Kudryavtsev, Andrey [6 ]
Gongalsky, Maxim [2 ]
Gaydarova, Azha [7 ]
Narvanen, Ale [5 ]
Timoshenko, Victor [2 ,3 ]
Lehto, Vesa-Pekka [1 ]
机构
[1] Univ Eastern Finland, Dept Appl Phys, Kuopio 70211, Finland
[2] Moscow MV Lomonosov State Univ, Fac Phys, Moscow 119991, Russia
[3] Natl Res Nucl Univ MEPhI, Moscow 115409, Russia
[4] Russian Canc Res Blokhin Ctr, Moscow 115478, Russia
[5] Univ Eastern Finland, Sch Pharm, Kuopio 70211, Finland
[6] RAS, Inst Theoret & Expt Biophys, Pushchino 142290, Russia
[7] Russian Sci Ctr Med Rehabil & Balneol, Moscow 121099, Russia
基金
俄罗斯科学基金会;
关键词
porous silicon; temperature responsive polymer; infrared heating; radiofrequency heating; triggered drug release; MESOPOROUS SILICON; DRUG-DELIVERY; GOLD NANOPARTICLES; ABLATION; RELEASE; POLYMERS; BIOCOMPATIBILITY; DESTRUCTION; NANOSHELLS; PARTICLES;
D O I
10.1016/j.jconrel.2016.09.028
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
One critical functionality of the carrier system utilized in targeted drug delivery is its ability to trigger the release of the therapeutic cargo once the carrier has reached its target. External triggering is an alluring approach as it can be applied in a precise spatiotemporal manner. In the present study, we achieved external triggering through the porous silicon (PSi) nanoparticles (NPs) by providing a pulse of infrared or radiofrequency radiation. The NPs were grafted with a temperature responsive polymer whose critical temperature was tailored to be slightly above 37 degrees C. The polymer coating improved the biocompatibility of the NPs significantly in comparison with their uncoated counterparts. Radiation induced a rapid temperature rise, which resulted in the collapse of the polymer chains facilitating the cargo release. Both infrared and radiofrequency radiation were able to efficiently trigger the release of the encapsulated drug in vitro and induce significant cell death in comparison to the control groups. Radiofrequency radiation was found to be more efficient in vitro, and the treatment efficacy was verified in vivo in a lung carcinoma (3LL) mice model. After a single intratumoral administration of the carrier system combined with radiofrequency radiation, there was clear suppression of the growth of the carcinoma and a prolongation of the survival time of the animals. TOC image: The temperature responsive (TR) polymer grafted on the surface of porous silicon nanoparticles (PSi NPs) changes its conformation in response to the heating induced by infrared or radiofrequency radiation. The conformation change allows the loaded doxorubicin to escape from the pores, achieving controlled drug release from TR PSi NPs, which displayed efficacy against malignant cells both in vitro and in vivo. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:220 / 228
页数:9
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