Department of Radiology, University of Wisconsin-Madison, WI 53705, United States.
Department of Medical Physics, University of Wisconsin-Madison, WI 53705, United States.
Biomaterials. 2018 May;165:56-65. doi: 10.1016/j.biomaterials.2018.02.043. Epub 2018 Feb 23.
Mesoporous silica nanoshell (MSN) coating has been demonstrated as a versatile surface modification strategy for various kinds of inorganic functional nanoparticles, such as gold nanorods (GNRs), to achieve not only improved nanoparticle stability but also concomitant drug loading capability. However, limited drug loading capacity and low tumor accumulation rate in vivo are two major challenges for the biomedical applications of MSN-coated GNRs (GNR@MSN). In this study, by coating uniformly sized GNRs with MSN in an oil-water biphase reaction system, we have successfully synthesized a new bacteria-like GNR@MSN (i.e., bGNR@MSN) with a significantly enlarged pore size (4-8 nm) and surface area (470 m/g). After PEGylation and highly efficient loading of doxorubicin (DOX, 40.9%, w/w), bGNR@MSN were used for positron emission tomography (PET, via facile and chelator-free Zr-labeling) and photoacoustic imaging-guided chemo-photothermal cancer therapy in vivo. PET imaging showed that Zr-labeled bGNR@MSN(DOX)-PEG can passively target to the 4T1 murine breast cancer-bearing mice with high efficiency (∼10 %ID/g), based on enhanced permeability and retention effect. Significantly enhanced chemo-photothermal combination therapy was also achieved due to excellent photothermal effect and near-infrared-light-triggered drug release by bGNR@MSN(DOX)-PEG at the tumor site. The promising results indicate great potential of bGNR@MSN-PEG nanoplatforms for future cancer diagnosis and therapy.
介孔硅纳米壳(MSN)涂层已被证明是一种通用的表面修饰策略,可用于各种无机功能纳米粒子,如金纳米棒(GNRs),不仅可以提高纳米粒子的稳定性,还可以同时提高药物负载能力。然而,在体内,载药能力有限和肿瘤积累率低是 MSN 涂层 GNRs(GNR@MSN)生物医学应用的两个主要挑战。在这项研究中,通过在油-水双相反应体系中均匀包覆 MSN,我们成功合成了一种新型细菌样 GNR@MSN(即 bGNR@MSN),其孔径(4-8nm)和比表面积(470m/g)显著增大。经过 PEG 化和高效负载阿霉素(DOX,40.9%,w/w)后,bGNR@MSN 用于正电子发射断层扫描(PET,通过简便且无螯合剂的 Zr 标记)和光声成像引导的化疗-光热癌症治疗在体内。PET 成像显示,Zr 标记的 bGNR@MSN(DOX)-PEG 可以基于增强的通透性和保留效应,高效地(约 10%ID/g)被动靶向 4T1 荷瘤小鼠。由于 bGNR@MSN(DOX)-PEG 在肿瘤部位具有优异的光热效应和近红外光触发的药物释放,因此也实现了显著增强的化疗-光热联合治疗。这些有前景的结果表明,bGNR@MSN-PEG 纳米平台具有用于癌症诊断和治疗的巨大潜力。