Department of Chemistry, University of British Columbia, 2036 Main Mall, Vancouver, British Columbia V6T 1Z1, Canada.
Département de chimie et Centre d'optique, photonique et laser (COPL), Université Laval, Québec G1V 0A6, Canada.
ACS Appl Mater Interfaces. 2020 Jul 29;12(30):33530-33540. doi: 10.1021/acsami.0c09553. Epub 2020 Jul 16.
There is a growing need for brighter luminescent materials to improve the detection and imaging of biomarkers. Relevant contexts include low-abundance biomarkers and technology-limited applications, where an example of the latter is the emerging use of smartphones and other nonoptimal but low-cost and portable devices for point-of-care diagnostics. One approach to achieving brighter luminescent materials is incorporating multiple copies of a luminescent material into a larger supra-nanoparticle (supra-NP) assembly. Here, we present a facile method for the preparation and immunoconjugation of supra-NP assemblies (SiO@QDs) that comprised many quantum dots (QDs) around a central silica nanoparticle (SiO NP). The assembly was entirely driven by spontaneous affinity interactions between the constituent materials, which included imidazoline-functionalized silica nanoparticles, ligand-coated QDs, imidazole-functionalized dextran, and tetrameric antibody complexes (TACs). The physical and optical properties of the SiO@QDs were characterized at both the ensemble and single-particle levels. Notably, the optical properties of the QDs were preserved upon assembly into supra-NPs, and single SiO@QDs were approximately an order of magnitude brighter than single QDs and nonblinking. In proof-of-concept applications, including selective immunolabeling of breast cancer cells, the SiO@QDs provided higher sensitivity and superior signal-to-background ratios whether using research-grade fluorescence microscopy or smartphone-based imaging. Overall, the SiO@QDs are promising materials for enhanced bioanalysis and imaging.
人们越来越需要更亮的发光材料来提高生物标志物的检测和成像能力。相关背景包括低丰度生物标志物和技术受限的应用,后者的一个例子是新兴的使用智能手机和其他非最佳但低成本和便携式设备进行即时诊断。实现更亮发光材料的一种方法是将多个发光材料的副本合并到一个更大的超纳米颗粒(supra-NP)组装体中。在这里,我们提出了一种简便的方法来制备和免疫偶联超纳米颗粒组装体(SiO@QDs),该组装体由围绕中心硅纳米颗粒(SiO NP)的多个量子点(QDs)组成。组装完全由组成材料之间的自发亲和相互作用驱动,这些组成材料包括咪唑啉功能化的硅纳米颗粒、配体涂覆的 QDs、咪唑功能化的葡聚糖和四聚体抗体复合物(TACs)。在整体和单粒子水平上对 SiO@QDs 的物理和光学性质进行了表征。值得注意的是,在组装成超 NPs 后,QDs 的光学性质得以保留,并且单个 SiO@QDs 的亮度比单个 QDs 高约一个数量级,且不闪烁。在概念验证应用中,包括乳腺癌细胞的选择性免疫标记,SiO@QDs 无论是使用研究级荧光显微镜还是基于智能手机的成像,都提供了更高的灵敏度和更好的信号与背景比。总的来说,SiO@QDs 是增强生物分析和成像的有前途的材料。