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基于纳米颗粒的X射线诱导癌症光动力疗法

X-ray-induced nanoparticle-based photodynamic therapy of cancer.

作者信息

Zou Xiaoju, Yao Mingzhen, Ma Lun, Hossu Marius, Han Xiumei, Juzenas Petras, Chen Wei

机构信息

Department of Physics & the Center for Security Advances via Applied Nanotechnology, The University of Texas at Arlington, TX 76019-0059, USA.

出版信息

Nanomedicine (Lond). 2014 Oct;9(15):2339-51. doi: 10.2217/nnm.13.198. Epub 2014 Jan 28.


DOI:10.2217/nnm.13.198
PMID:24471504
Abstract

AIM: In this study, Ce(3+)-doped lanthanum(III) fluoride (LaF3:Ce(3+)) nanoparticles were synthesized by a wet-chemistry method in dimethyl sulfoxide (DMSO) and their application as an intracellular light source for photodynamic activation was demonstrated. MATERIALS & METHODS: The LaF3:Ce(3+)/DMSO nanoparticles have a strong green emission with a peak at approximately 520 nm, which is effectively overlapped with the absorption of protoporphyrin IX (PPIX). The nanoparticles were encapsulated into poly(D,L-lactide-co-glycolide (PLGA) microspheres along with PPIX. Upon irradiation with x-rays (90 kV), energy transfer from the LaF3:Ce(3+)/DMSO nanoparticles to PPIX occurs and singlet oxygen is generated for cancer cell damage. RESULTS: The LaF3:Ce(3+)/DMSO/PLGA or LaF3:Ce(3+)/DMSO/PPIX/PLGA microspheres alone caused only sublethal cytotoxicity to the cancer cells. Upon x-ray irradiation, the LaF3:Ce(3+)/DMSO/PPIX/PLGA microspheres induced oxidative stress, mitochondrial damage and DNA fragmentation on prostate cancer cells (PC3). DISCUSSION: The results indicate that x-rays can activate LaF3:Ce(3+) and PPIX nanocomposites, which can be a novel method for cancer destruction.

摘要

目的:在本研究中,通过湿化学方法在二甲基亚砜(DMSO)中合成了铈(Ce(3+))掺杂的氟化镧(LaF3:Ce(3+))纳米颗粒,并展示了其作为光动力激活的细胞内光源的应用。 材料与方法:LaF3:Ce(3+)/DMSO纳米颗粒具有强烈的绿色发射,峰值约为520nm,与原卟啉IX(PPIX)的吸收有效重叠。纳米颗粒与PPIX一起被封装到聚(D,L-丙交酯-共-乙交酯)(PLGA)微球中。在用X射线(90kV)照射时,发生从LaF3:Ce(3+)/DMSO纳米颗粒到PPIX的能量转移,并产生单线态氧以损伤癌细胞。 结果:单独的LaF3:Ce(3+)/DMSO/PLGA或LaF3:Ce(3+)/DMSO/PPIX/PLGA微球仅对癌细胞造成亚致死细胞毒性。在X射线照射下,LaF3:Ce(3+)/DMSO/PPIX/PLGA微球对前列腺癌细胞(PC3)诱导氧化应激、线粒体损伤和DNA片段化。 讨论:结果表明X射线可激活LaF3:Ce(3+)和PPIX纳米复合材料,这可能是一种新型的癌症破坏方法。

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X-ray-induced nanoparticle-based photodynamic therapy of cancer.

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[5]
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[6]
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[8]
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[9]
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[10]
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