Gadd Jennifer C, Kuyper Christopher L, Fujimoto Bryant S, Allen Richard W, Chiu Daniel T
Department of Chemistry, University of Washington, Box 351700, Seattle, Washington 98195-1700, USA.
Anal Chem. 2008 May 1;80(9):3450-7. doi: 10.1021/ac8000385. Epub 2008 Mar 26.
This article describes two complementary techniques, single-particle tracking and correlation spectroscopy, for accurately sizing nanoparticles confined within picoliter volume aqueous droplets. Single-particle tracking works well with bright particles that can be continuously illuminated and imaged, and we demonstrated this approach for sizing single fluorescent beads. Fluorescence correlation spectroscopy detects small intensity bursts from particles or molecules diffusing through the confocal probe volume, which works well with dim and rapidly diffusing particles or molecules; we demonstrated FCS for sizing synaptic vesicles confined in aqueous droplets. In combination with recent advances in droplet manipulations and analysis, we anticipate this capability to size single nanoparticles and molecules in free solution will complement existing tools for probing cellular systems, subcellular organelles, and nanoparticles.
本文介绍了两种互补技术,即单粒子追踪和相关光谱技术,用于精确测量皮升体积水滴中受限的纳米颗粒大小。单粒子追踪适用于可连续照明和成像的明亮颗粒,我们展示了这种方法用于测量单个荧光珠的大小。荧光相关光谱检测通过共聚焦探测体积扩散的颗粒或分子产生的小强度猝发,这对于暗淡且快速扩散的颗粒或分子效果良好;我们展示了用荧光相关光谱测量受限在水滴中的突触小泡大小。结合液滴操纵和分析方面的最新进展,我们预计这种在自由溶液中测量单个纳米颗粒和分子大小的能力将补充现有的用于探测细胞系统、亚细胞器和纳米颗粒的工具。