World Class University Program of Chemical Convergence for Energy & Environment, and School of Chemical and Biological Engineering, Seoul National University, Seoul 151-744, Korea.
Acc Chem Res. 2011 Oct 18;44(10):893-902. doi: 10.1021/ar2000259. Epub 2011 Aug 17.
Clever combinations of different types of functional nanostructured materials will enable the development of multifunctional nanomedical platforms for multimodal imaging or simultaneous diagnosis and therapy. Mesoporous silica nanoparticles (MSNs) possess unique structural features such as their large surface areas, tunable nanometer-scale pore sizes, and well-defined surface properties. Therefore, they are ideal platforms for constructing multifunctional materials that incorporate a variety of functional nanostructured materials. In this Account, we discuss recent progress by our group and other researchers in the design and fabrication of multifunctional nanocomposite nanoparticles based on mesoporous silica nanostructures for applications to simultaneous diagnosis and therapy. Versatile mesoporous silica-based nanocomposite nanoparticles were fabricated using various methods. Here, we highlight two synthetic approaches: the encapsulation of functional nanoparticles within a mesoporous silica shell and the assembly of nanoparticles on the surface of silica nanostructures. Various nanoparticles were encapsulated in MSNs using surfactants as both phase transfer agents and pore-generating templates. Using MSNs as a scaffold, functional components such as magnetic nanoparticles and fluorescent dyes have been integrated within these systems to generate multifunctional nanocomposite systems that maintain their individual functional characteristics. For example, uniform mesoporous dye-doped silica nanoparticles immobilized with multiple magnetite nanocrystals on their surfaces have been fabricated for their use as a vehicle capable of simultaneous magnetic resonance (MR) and fluorescence imaging and drug delivery. The resulting nanoparticle-incorporated MSNs were then tested in mice with tumors. These in vivo experiments revealed that these multifunctional nanocomposite nanoparticles were delivered to the tumor sites via passive targeting. These nanocomposite nanoparticles served as successful multimodal imaging probes and also delivered anticancer drugs to the tumor site. With innumerable combinations of imaging modalities and drug delivery available within these vehicles, multifunctional nanocomposite nanoparticles provide new opportunities for clinical diagnostics and therapeutics.
巧妙组合不同类型的功能纳米结构材料将能够开发用于多模式成像或同时诊断和治疗的多功能纳米医学平台。介孔硅纳米粒子(MSNs)具有独特的结构特征,例如大的表面积、可调节的纳米级孔径和明确的表面性质。因此,它们是构建包含各种功能纳米结构材料的多功能材料的理想平台。在本报告中,我们讨论了我们小组和其他研究人员在设计和制造基于介孔硅纳米结构的多功能纳米复合材料方面的最新进展,这些纳米复合材料可用于同时诊断和治疗。使用各种方法制备了多功能介孔硅基纳米复合材料纳米粒子。在这里,我们重点介绍两种合成方法:将功能纳米粒子封装在介孔硅壳内和将纳米粒子组装在硅纳米结构表面上。使用表面活性剂作为相转移剂和孔生成模板,将各种纳米粒子封装在 MSNs 中。使用 MSNs 作为支架,将磁性纳米粒子和荧光染料等功能组件整合到这些系统中,生成多功能纳米复合材料系统,保持其各自的功能特性。例如,制备了表面固定有多颗磁铁矿纳米晶的均匀介孔染料掺杂硅纳米粒子,用作能够同时进行磁共振(MR)和荧光成像以及药物递送的载体。然后在患有肿瘤的小鼠中测试了包含纳米粒子的 MSNs。这些体内实验表明,这些多功能纳米复合材料纳米粒子通过被动靶向递送至肿瘤部位。这些纳米复合材料纳米粒子作为成功的多模式成像探针,也将抗癌药物递送至肿瘤部位。这些多功能纳米复合材料纳米粒子提供了新的机会,可用于临床诊断和治疗,因为它们具有无数种成像模式和药物递送方式的组合。