Zhou Xi, Lv Xiaolin, Zhao Wen, Zhou Tiantian, Zhang Shupeng, Shi Zhan, Ye Shefang, Ren Lei, Chen Zhiwei
Key Laboratory of Biomedical Engineering of Fujian Province University/Research Center of Biomedical Engineering Technology of Xiamen, Department of Biomaterials, College of Materials, Xiamen University Xiamen 361005 P. R. China
Department of Electronic Science, Fujian Provincial Key Laboratory of Plasma and Magnetic Resonance Research, Xiamen University Xiamen 361005 P. R. China
RSC Adv. 2018 May 22;8(33):18647-18655. doi: 10.1039/c8ra02946f. eCollection 2018 May 17.
This study reports a multifunctional core/shell nanoparticle (NP) that can be used for amplified magnetic resonance image (MRI), enhanced photothermal therapy (PTT) and magnetic hyperthermia therapy (MHT) due to its surface coating with a porous shell. Importantly, by means of introducing the surface coating of a porous shell, it helps entrap large quantities of water around NPs and allow more efficient water exchange, leading to greatly improved MR contrast signals. Besides, the porous shell helps the near-infrared (NIR) absorbance of the core, and then the extremely enhanced thermal effect can be obtained under synergistic combination of PTT and MHT. By synthesizing multifunctional porous MnFeO/PB as an example, we found that the transversal relaxivity ( ) of MnFeO NPs might improve from 112.11 to 123.46 mM s, and the specific absorption rate (SAR) of MnFeO/PB nanoparticles reached unprecedented levels of up to 4800 W g compared with the SAR 1182 W g of PTT under an 808 nm laser and 180 W g of MHT under an external AC magnetic field. Meanwhile, when MnFeO was decorated on PB nanoparticles, the magnetic properties became lower slightly, but the synergistic photothermal/magnetic hyperthermia conversion was enhanced greatly. Subsequently, - dual-modal MRI, PTT and MHT results verified that MnFeO/PB could serve as an excellent MRI/PTT/MHT theranostic agent. Furthermore, the MnFeO/PB NPs were applied as a - dual-modal MRI, PTT and MHT theranostic agent for MRI-guided photothermal and magnetic hyperthermia ablation of tumors by intratumoral injection in 4T1 tumor-bearing mice. The - dual-modal MR imaging result shows a significantly contrast in the tumor site. The MPB-mediated PTT and MHT result shows high therapeutic efficiency as a result of high photothermal and magnetic hyperthermia conversion efficiency. The multifunctional NPs have a great potential application for future clinical tumorous diagnosis and treatment.
本研究报道了一种多功能核/壳纳米颗粒(NP),由于其表面包覆有多孔壳,可用于增强磁共振成像(MRI)、强化光热疗法(PTT)和磁热疗法(MHT)。重要的是,通过引入多孔壳表面涂层,有助于在纳米颗粒周围截留大量水分并实现更高效的水交换,从而极大地改善磁共振对比信号。此外,多孔壳有助于核的近红外(NIR)吸收,进而在PTT和MHT协同作用下可获得极强的热效应。以合成多功能多孔MnFeO/PB为例,我们发现MnFeO纳米颗粒的横向弛豫率( )可能从112.11提高到123.46 mM s,与808 nm激光下PTT的比吸收率(SAR)1182 W g和外部交流磁场下MHT的比吸收率180 W g相比,MnFeO/PB纳米颗粒的比吸收率达到了前所未有的高达4800 W g的水平。同时,当MnFeO修饰在PB纳米颗粒上时,磁性略有降低,但光热/磁热协同转换大大增强。随后, - 双模态MRI、PTT和MHT结果证实MnFeO/PB可作为一种优异的MRI/PTT/MHT诊疗剂。此外,MnFeO/PB纳米颗粒通过瘤内注射应用于4T1荷瘤小鼠,作为一种 - 双模态MRI、PTT和MHT诊疗剂用于MRI引导的肿瘤光热和磁热消融。 - 双模态MR成像结果显示肿瘤部位有明显对比。MPB介导的PTT和MHT结果显示出高治疗效率,这得益于高光热和磁热转换效率。这种多功能纳米颗粒在未来临床肿瘤诊断和治疗中具有巨大的潜在应用价值。