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Light-Scattering Detection below the Level of Single Fluorescent Molecules for High-Resolution Characterization of Functional Nanoparticles

机译:低于单个荧光分子水平的光散射检测用于功能纳米粒子的高分辨率表征

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摘要

Ultrasensitive detection and characterization of single nanoparticles (<100 nm) is important in nanotechnology and life sciences. Direct measurement of the elastically scattered light from individual nanoparticles represents the simplest and the most direct method for particle detection. However, the sixth-power dependence of scattering intensity on particle size renders very small particles indistinguishable from the background. Adopting strategies for single-molecule fluorescence detection in a sheathed flow, here we report the development of high sensitivity flow cytometry (HSFCM) that achieves real-time light-scattering detection of single silica and gold nanoparticles as small as 24 and 7 nm in diameter, respectively. This unprecedented sensitivity enables high-resolution sizing of single nanoparticles directly based on their scattered intensity. With a resolution comparable to that of TEM and the ease and speed of flow cytometric analysis, HSFCM is particularly suitable for nanoparticle size distribution analysis of polydisperse/heterogeneous/mixed samples. Through concurrent fluorescence detection, simultaneous insights into the size and payload variations of engineered nanoparticles are demonstrated with two forms of clinical nanomedicine. By offering quantitative multiparameter analysis of single nanoparticles in liquid suspensions at a throughput of up to 10 000 particles per minute, HSFCM represents a major advance both in light-scattering detection technology and in nanoparticle characterization.
机译:单个纳米颗粒(<100 nm)的超灵敏检测和表征在纳米技术和生命科学中很重要。直接测量来自各个纳米粒子的弹性散射光代表了最简单,最直接的粒子检测方法。然而,散射强度对颗粒大小的六次幂依赖性使得非常小的颗粒与背景无法区分。我们采用鞘层流中单分子荧光检测策略,在此我们报道了高灵敏度流式细胞术(HSFCM)的发展,该方法可实现对直径分别为24和7 nm的单个二氧化硅和金纳米颗粒的实时光散射检测, 分别。这种空前的灵敏度使直接基于单个纳米粒子的散射强度实现高分辨率的尺寸调整。 HSFCM具有与TEM相当的分辨率以及流式细胞术分析的简便性和速度,特别适用于多分散/非均质/混合样品的纳米粒度分布分析。通过同时进行的荧光检测,可以通过两种形式的临床纳米药物同时了解工程纳米颗粒的大小和有效载荷变化。通过提供液体悬浮液中单个纳米颗粒的定量多参数分析,其吞吐速率高达每分钟10 000个颗粒,HSFCM代表了光散射检测技术和纳米颗粒表征方面的重大进步。

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