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动态单分子计数用于定量和优化纳米颗粒功能化方案。

Dynamic single-molecule counting for the quantification and optimization of nanoparticle functionalization protocols.

机构信息

Faculty of Applied Physics, Eindhoven University of Technology, 5600 MB, Eindhoven, The Netherlands.

出版信息

Nanoscale. 2020 Feb 14;12(6):4128-4136. doi: 10.1039/c9nr10218c. Epub 2020 Feb 5.

Abstract

Applications of colloidal particles in the fields of i.e. biosensors, molecular targeting, or drug-delivery require their functionalization with biologically active and specific molecular ligands. Functionalization protocols often result in a heterogeneous population of particles with a varying density, spatial distribution and orientation of the functional groups on the particle surface. A lack of methods to directly resolve these molecular properties of the particle's surface hampers optimization of functionalization protocols and applications. Here quantitative single-molecule interaction kinetics is used to count the number of ligands on the surface of hundreds of individual nanoparticles simultaneously. By analyzing the waiting-time between single-molecule binding events we quantify the particle functionalization both accurately and precisely for a large range of ligand densities. We observe significant particle-to-particle differences in functionalization which are dominated by the particle-size distribution for high molecular densities, but are substantially broadened for sparsely functionalized particles. From time-dependent studies we find that ligand reorganization on long timescales drastically reduces this heterogeneity, a process that has remained hidden up to now in ensemble-averaged studies. The quantitative single-molecule counting therefore provides a direct route to quantification and optimization of coupling protocols towards molecularly controlled colloidal interfaces.

摘要

胶体粒子在生物传感器、分子靶向或药物输送等领域的应用需要用具有生物活性和特异性的分子配体对其进行功能化。功能化方案通常会导致颗粒的异质群体,其颗粒表面的功能基团的密度、空间分布和取向各不相同。缺乏直接解析颗粒表面这些分子特性的方法,阻碍了功能化方案和应用的优化。在这里,我们使用定量单分子相互作用动力学技术同时对数百个单个纳米颗粒表面的配体数量进行计数。通过分析单分子结合事件之间的等待时间,我们可以准确而精确地定量分析大范围配体密度下的颗粒功能化。我们观察到功能化的颗粒间存在显著差异,对于高分子密度,这种差异主要由颗粒尺寸分布主导,但对于稀疏功能化的颗粒,这种差异会显著扩大。通过时变研究,我们发现长时程上配体的重排极大地降低了这种异质性,这一过程在目前的平均场研究中一直被隐藏。因此,定量单分子计数为定量和优化分子控制胶体界面的偶联方案提供了直接途径。

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