Tianjin Key Laboratory of Drug Delivery & High-Efficiency, School of Pharmaceutical Science and Technology , Tianjin University , 300072 Tianjin , PR China.
Department of Nuclear Medicine , Tianjin Medical University General Hospital , 300052 Tianjin , PR China.
ACS Appl Mater Interfaces. 2019 Feb 20;11(7):6777-6788. doi: 10.1021/acsami.8b19565. Epub 2019 Feb 5.
Recently, rodlike nanomaterials with specific aspect ratio for efficient cellular uptake have received enormous attention. For functional nanomaterials, such as photothermal agents, large surface areas for their rod-shaped exterior that increase the amount of light absorbed would lead to a higher absorption coefficient as well as drug-loading property. In this project, we coated rodlike mesoporous silica with gold nanoshells (MSNR@Au hybrid), modifying them with ultrasmall gadolinium (Gd)-chelated supramolecular photosensitizers, TPPS (MSNR@Au-TPPS(Gd)), which could be applied to near-infrared fluorescence/multispectral optoacoustic tomography/computed tomography/magnetic resonance imaging and imaging-guided remotely controlled photothermal (PTT)/photodynamic (PDT) combined antitumor therapy. Gold nanoshells, as a perfect PTT agent, were used to assemble the rodlike mesoporous silica nanoparticles with larger superficial area and higher drug loading, thus obtaining the MSNR@Au hybrid. HS-β-CD, which was used as the host, was adsorbed on the gold nanoshell (MSNR@Au-β-CD) to link TPPS(Gd) through the host-guest reaction, thus forming CD-TPPS supramolecular photosensitizers (supraPSs). Compared with conventional PSs, supraPSs have host screens, which could reduce the self-aggregation of TPPS, and consequently generate O with high efficiency. The in vivo quadmodal imaging of MSNR@Au-TPPS(Gd) nanoparticles revealed an intensive tumor uptake effect after injection. The in vivo antitumor efficacy further testified that the synergistic therapy, which was more efficient than any other monotherapy, exhibited an excellent tumor inhibition therapeutic effect. As a result, this encourages to further explore multifunctional theranostic nanoparticles based on gold shells for combined cancer therapy.
最近,具有特定纵横比的棒状纳米材料因其高效的细胞摄取而受到广泛关注。对于功能性纳米材料,如光热剂,其棒状外表面具有较大的表面积,从而增加了吸收的光量,这将导致更高的吸收系数和药物负载性能。在这个项目中,我们用金纳米壳(MSNR@Au 杂化)涂覆棒状介孔硅,用超小的钆(Gd)螯合超分子光敏剂 TPPS(MSNR@Au-TPPS(Gd))对其进行修饰,可应用于近红外荧光/多光谱光声断层扫描/计算机断层扫描/磁共振成像以及成像引导的远程控制光热(PTT)/光动力(PDT)联合抗肿瘤治疗。金纳米壳作为一种完美的 PTT 剂,用于组装具有更大表面积和更高载药量的棒状介孔硅纳米粒子,从而获得 MSNR@Au 杂化。用作主体的 HS-β-CD 被吸附在金纳米壳(MSNR@Au-β-CD)上,通过主客体反应与 TPPS(Gd)连接,从而形成 CD-TPPS 超分子光敏剂(supraPSs)。与传统 PSs 相比,supraPSs 具有主体筛,可减少 TPPS 的自聚集,从而高效地生成 O。MSNR@Au-TPPS(Gd)纳米粒子的体内四模态成像显示,注射后肿瘤摄取效果强烈。体内抗肿瘤疗效进一步证明,协同治疗比任何单一治疗都更有效,表现出优异的肿瘤抑制治疗效果。因此,这鼓励进一步探索基于金壳的多功能治疗性纳米粒子,用于联合癌症治疗。