Foquet Mathieu, Korlach Jonas, Zipfel Warren R, Webb Watt W, Craighead Harold G
School of Applied & Engineering Physics, Cornell University, Ithaca, New York 14853, USA.
Anal Chem. 2004 Mar 15;76(6):1618-26. doi: 10.1021/ac035088o.
Microfluidic channels with two lateral dimensions smaller than 1 microm were fabricated in fused silica for high-sensitivity single-molecule detection and fluorescence correlation spectroscopy. The effective observation volumes created by these channels are approximately 100 times smaller than observation volumes using conventional confocal optics and thus enable single-fluorophore detection at higher concentrations. Increased signal-to-noise ratios are also attained because the molecules are restricted to diffuse through the central regions of the excitation volume. Depending on the channel geometries, the effective dimensionality of diffusion is reduced, which is taken into account by simple solutions to diffusion models with boundaries. Driven by electrokinetic forces, analytes could be flowed rapidly through the observation volume, drastically increasing the rate of detection events and reducing data acquisition times. The statistical accuracy of single-molecule characterization is improved because all molecules are counted and contribute to the analysis. Velocities as high as 0.1 m/s were reached, corresponding to average molecular residence times in the observation volume as short as 10 micros. Applications of these nanofabricated devices for high-throughput, single-molecule detection in drug screening and genomic analysis are discussed.
在熔融石英中制造了两个横向尺寸小于1微米的微流体通道,用于高灵敏度单分子检测和荧光相关光谱分析。这些通道产生的有效观察体积比使用传统共焦光学器件的观察体积小约100倍,因此能够在更高浓度下进行单荧光团检测。由于分子被限制在激发体积的中心区域扩散,信噪比也得以提高。根据通道几何形状,扩散的有效维度降低,这可通过具有边界的扩散模型的简单解来考虑。在电动驱动力的作用下,分析物可以快速流过观察体积,极大地提高了检测事件的速率并缩短了数据采集时间。由于对所有分子进行计数并用于分析,单分子表征的统计准确性得到了提高。达到了高达0.1 m/s的速度,这对应于分子在观察体积中的平均停留时间短至10微秒。讨论了这些纳米制造器件在药物筛选和基因组分析中的高通量单分子检测应用。