Department of Physics and Center for Soft Matter Research, New York University, New York, NY, 10003, USA.
Department of Physics and Astronomy, University of Pennsylvania, Philadelphia, PA, 19104, USA.
Sci Rep. 2020 Feb 6;10(1):1932. doi: 10.1038/s41598-020-58833-7.
We demonstrate that holographic particle characterization can directly detect binding of proteins to functionalized colloidal probe particles by monitoring the associated change in the particles' size. This label-free molecular binding assay uses in-line holographic video microscopy to measure the diameter and refractive index of individual probe spheres as they flow down a microfluidic channel. Pooling measurements on 10 particles yields the population-average diameter with an uncertainty smaller than 0.5 nm, which is sufficient to detect sub-monolayer coverage by bound proteins. We demonstrate this method by monitoring binding of NeutrAvidin to biotinylated spheres and binding of immunoglobulin G to spheres functionalized with protein A.
我们证明了全息粒子特征分析可以通过监测粒子大小的相关变化,直接检测蛋白质与功能化胶体探针粒子的结合。这种无标记的分子结合分析方法使用在线全息视频显微镜测量单个探针球在微流道中流动时的直径和折射率。对 10 个粒子进行测量,可以得到直径的群体平均值,其不确定度小于 0.5nm,足以检测到结合蛋白的亚单层覆盖率。我们通过监测中性亲和素与生物素化球体的结合以及免疫球蛋白 G 与蛋白 A 功能化球体的结合,演示了这种方法。