State Key Laboratory of Chemical Resource Engineering, Key Laboratory of Carbon Fiber and Functional Polymers (Beijing University of Chemical Technology), Ministry of Education, Beijing Laboratory of Biomedical Materials, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Nanoscale. 2018 Apr 26;10(16):7649-7657. doi: 10.1039/c8nr00767e.
Self-assembly is a promising method for the construction of multifunctional nanohybrids for biomedical application. In this work, self-assembled multifunctional nanohybrids with a controllable disassembly property have been successfully fabricated. By modification with cyclodextrin (CD)-decorated ethylenediamine-functionalized poly(glycidyl methacrylate) (PGED), CD groups and polycations were conjugated onto Au nanorods (Au NRs) or Fe3O4 nanoparticles (denoted as Au-PGED-CD or Fe3O4-PGED-CD), and different SiO2@Fe3O4-PGED (SFP) or SiO2@Au-PGED (SAP) nanohybrids were readily fabricated by the host-guest interaction between Au-PGED-CD or Fe3O4-PGED-CD and adamantyl (Ad)-functionalized chiral silica NRs under mild conditions. The DNA condensation ability of the polycation, the photothermal effects of Au NRs or Fe3O4 nanoparticles, as well as the unique structure of chiral silica NRs were integrated into one nanohybrid. Such nanohybrids have high gene transfection efficiency and low cytotoxicity. The photothermal effects of the nanohybrids could be utilized for photothermal therapy, and also could induce the disassembly of the nanohybrids, which is beneficial for DNA release. The nanohybrids with good transfection performance and excellent photothermal effects were further applied for multimodal therapy. This work presents a flexible strategy for the fabrication of multifunctional nanoplatforms with integration of the advantages of various types of nanoparticles.
自组装是构建用于生物医学应用的多功能纳米杂化物的一种很有前途的方法。在这项工作中,成功制备了具有可控解组装性能的自组装多功能纳米杂化物。通过用环糊精(CD)修饰的乙二胺功能化聚(甲基丙烯酸缩水甘油酯)(PGED)进行修饰,CD 基团和聚阳离子被接枝到金纳米棒(Au NRs)或四氧化三铁纳米颗粒(分别表示为 Au-PGED-CD 或 Fe3O4-PGED-CD)上,并且不同的 SiO2@Fe3O4-PGED(SFP)或 SiO2@Au-PGED(SAP)纳米杂化物通过在温和条件下 Au-PGED-CD 或 Fe3O4-PGED-CD 与金刚烷基(Ad)功能化手性硅纳米棒之间的主客体相互作用很容易制备。聚阳离子的 DNA 缩合能力、Au NRs 或 Fe3O4 纳米颗粒的光热效应以及手性硅纳米棒的独特结构被集成到一个纳米杂化物中。这种纳米杂化物具有高基因转染效率和低细胞毒性。纳米杂化物的光热效应可用于光热治疗,并且还可以诱导纳米杂化物的解组装,这有利于 DNA 释放。具有良好转染性能和优异光热效应的纳米杂化物进一步用于多模式治疗。这项工作提出了一种灵活的策略,用于构建多功能纳米平台,整合了各种类型纳米颗粒的优势。