Huang Chen-Xi, Chen Hua-Jian, Li Fei, Wang Wan-Ni, Li Dong-Dong, Yang Xian-Zhu, Miao Zhao-Hua, Zha Zheng-Bao, Lu Yang, Qian Hai-Sheng
School of Biological and Medical Engineering, Hefei University of Technology, Hefei, 230009, P. R. China.
J Mater Chem B. 2017 Dec 28;5(48):9487-9496. doi: 10.1039/c7tb02733h. Epub 2017 Nov 30.
Synergistic photodynamic and photothermal therapy of cancer cells is of considerable scientific and technological interest. In this work, we demonstrate a sacrificial template strategy to fabricate yolk-shell nanoparticles combining upconversion nanoparticles (UCNPs) and CuS nanoparticles. Lanthanide-doped upconversion nanoparticles of NaYF:30% Yb,1% Nd,0.5% Er@NaYF:20% Nd (also denoted as UCNPs) have been prepared as 808 nm light excited remote-controlled nanotransducers for in vitro cancer cell treatment. The upconversion fluorescence of the as-prepared UCNPs@CuS yolk-shell nanoparticles is completely quenched under the excitation of an 808 nm laser, which demonstrates that the energy transfer between the UCNPs and CuS is very efficient. In addition, the as-prepared UCNPs@CuS nanoparticles show higher production ability for hydroxyl radicals (˙OH) and singlet oxygen (O) compared to CuS hollow nanospheres of similar size. In particular, the excited shell layer (CuS) showed an enhanced photothermal effect while producing reactive oxygen species (ROS) including singlet oxygen (O) and hydroxyl radicals (˙OH) after being exposed to near infrared (NIR) light. Thus, the as-prepared UCNPs@CuS yolk-shell nanoparticles exhibited the synergistic effect of photothermal and photodynamic therapy of cancer cells, which resulted in significant cell death after exposure to an 808 nm laser. The synthetic strategy will provide an alternative method to fabricate other UCNP based core-shell nanoparticles for potential and important applications in bionanotechnology including theranostics, multimodal treatment, magnetic resonance imaging-guided photodynamic therapy, etc.
癌细胞的协同光动力和光热疗法具有相当大的科学和技术研究价值。在这项工作中,我们展示了一种牺牲模板策略,用于制备结合了上转换纳米粒子(UCNPs)和硫化铜(CuS)纳米粒子的蛋黄壳纳米粒子。已制备出NaYF:30% Yb、1% Nd、0.5% Er@NaYF:20% Nd的镧系掺杂上转换纳米粒子(也表示为UCNPs),作为用于体外癌细胞治疗的808 nm光激发远程控制纳米换能器。所制备的UCNPs@CuS蛋黄壳纳米粒子的上转换荧光在808 nm激光激发下完全猝灭,这表明UCNPs和CuS之间的能量转移非常高效。此外,与类似尺寸的CuS空心纳米球相比,所制备的UCNPs@CuS纳米粒子对羟基自由基(˙OH)和单线态氧(O)具有更高的产生能力。特别地,被激发的壳层(CuS)在暴露于近红外(NIR)光后产生包括单线态氧(O)和羟基自由基(˙OH)在内的活性氧物种(ROS)时,表现出增强的光热效应。因此,所制备的UCNPs@CuS蛋黄壳纳米粒子表现出癌细胞光热和光动力疗法的协同效应,在暴露于808 nm激光后导致显著的细胞死亡。该合成策略将为制备其他基于UCNP的核壳纳米粒子提供一种替代方法,用于生物纳米技术中的潜在重要应用,包括治疗诊断、多模态治疗、磁共振成像引导的光动力疗法等。