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葡聚糖包裹的纳米粒子和超纳米粒子组装体:量子点、荧光聚合物和磁性纳米粒子的制备及其在细胞免疫标记中的应用。

Dextran-Encapsulated Nanoparticles and Super-Nanoparticle Assemblies: Preparation from Quantum Dots, Fluorescent Polymers, and Magnetic Nanoparticles for Application to Cellular Immunolabeling.

机构信息

Department of Chemistry, University of British Columbia, Vancouver, British Columbia V6T 1Z1, Canada.

Department of Chemistry, University of Alberta, Edmonton, Alberta T6G 2G2, Canada.

出版信息

ACS Appl Mater Interfaces. 2024 Nov 27;16(47):64554-64567. doi: 10.1021/acsami.4c14719. Epub 2024 Nov 15.

DOI:10.1021/acsami.4c14719
PMID:39546415
Abstract

Nanoparticles (NPs) continue to be developed as labels for bioanalysis and imaging due to their small size and, in many cases, emergent properties such as photoluminescence (PL) and superparamagnetism. Some applications stand to benefit from amplification of the advantageous properties of a NP, but this amplification is not a simple matter of scaling for size-dependent properties. One promising approach to amplification is, therefore, to assemble many copies of a NP into a larger but still nanoscale and colloidal entity. Here, we use multiple types of hydrophobic nanocrystal to show that amphiphilic dextran is a versatile material for the preparation and surface functionalization of such super-NP assemblies: CdSe/CdS/ZnS quantum dots (QDs), InP/ZnS QDs, and Si QDs; iron oxide magnetic NPs (MNPs); composites of QDs and MNPs; and composites of QDs and MNPs with fluorene-based and phenylenevinylene-based conjugated polymers. The amphiphilic dextran was also useful for the preparation of conjugated polymer NPs (CPNs) without the inclusion of inorganic nanocrystals. The prepared super-NPs and CPNs were characterized, physically and photophysically, at both the ensemble and the single-particle levels. Per colloidal entity, the super-QDs were orders of magnitude brighter than the individual QDs. This enhancement enabled assemblies of nominally more benign InP/ZnS and Si QDs to be competitive alternative materials to CdSe/CdS/ZnS QDs, which are normally much brighter when compared as individual nanocrystals. The dextran functionalization imparted low nonspecific binding and enabled the use of tetrameric antibody complexes (TACs) for simple and selective immunolabeling of cells with all of the prepared super-NP, CPN, and composite materials. Labeling with the super-QDs provided significantly enhanced PL signals, the super-MNPs enabled magnetic pull-down of cells, and both capabilities were concurrently available with composite assemblies. Overall, this study demonstrates that the preparatory method and functional benefits of amphiphilic dextran extend to a range of hydrophobic materials and combinations thereof. There is strong potential for assembling a diverse set of property-amplified designer labels that are ready-made for applications in bioanalysis and imaging.

摘要

纳米粒子 (NPs) 因其体积小,并且在许多情况下具有新兴特性,如光致发光 (PL) 和超顺磁性,因此继续被开发为生物分析和成像的标记物。一些应用有望受益于纳米粒子有利特性的放大,但这种放大并非简单地按尺寸依赖性特性进行缩放。因此,一种有前途的放大方法是将许多纳米粒子组装成一个更大但仍处于纳米级和胶体状态的实体。在这里,我们使用多种类型的疏水性纳米晶体来表明,两亲性葡聚糖是一种用于制备和表面功能化这种超 NP 组装体的多功能材料:CdSe/CdS/ZnS 量子点 (QDs)、InP/ZnS QDs 和 Si QDs;氧化铁磁性 NPs (MNPs);QD 和 MNPs 的复合材料;以及 QD 和 MNPs 与芴基和苯并乙烯基共轭聚合物的复合材料。两亲性葡聚糖对于制备不包含无机纳米晶体的共轭聚合物 NPs (CPNs) 也很有用。通过物理和光物理方法对制备的超 NPs 和 CPN 进行了整体和单粒子水平的表征。对于每个胶体实体,超 QD 的亮度比单个 QD 高出几个数量级。这种增强使名义上更良性的 InP/ZnS 和 Si QDs 的组装体成为与 CdSe/CdS/ZnS QDs 竞争的替代材料,当将它们作为单个纳米晶体进行比较时,CdSe/CdS/ZnS QDs 的亮度通常要高得多。葡聚糖的官能化赋予其低非特异性结合,并使四聚体抗体复合物 (TAC) 能够用于简单且选择性地对所有制备的超 NP、CPN 和复合材料进行细胞免疫标记。用超 QD 进行标记可提供显著增强的 PL 信号,超 MNPs 可实现细胞的磁性下拉,并且这两种功能都可同时用于复合组装体。总的来说,这项研究表明,两亲性葡聚糖的制备方法和功能优势扩展到一系列疏水性材料及其组合。组装一组多样化的增强特性设计标签具有很大的潜力,这些标签已准备好用于生物分析和成像应用。

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