Biodesign Center for Biosensors and Bioelectronics, Arizona State University, Tempe, Arizona 85287, United States.
School of Electrical, Computer and Energy Engineering, Arizona State University, Tempe, Arizona 85287, United States.
ACS Sens. 2022 Sep 23;7(9):2625-2633. doi: 10.1021/acssensors.2c01008. Epub 2022 Aug 24.
Separation and identification of different proteins is one of the most fundamental tasks in biochemistry that is typically achieved by electrophoresis and Western blot techniques. Yet, it is challenging to perform such an analysis with a small sample size. Using a principle analogous to these conventional approaches, we present a label-free, single-molecule technique to identify different proteins based on the difference in their size, charge, and antibody binding. We tether single protein molecules to a sensor surface with a flexible polymer and drive them into oscillation by applying an alternating electric field. By tracking the nanometer-scale oscillation of each protein molecule via high-resolution scattering microscopy, the size and charge of each protein molecule can be determined simultaneously. Changes induced by varying the buffer pH and antibody binding are also investigated, which allows us to further expand the separation ability and identify two different proteins in a mixture. We anticipate our technique will contribute to single protein analysis and biosensing.
分离和鉴定不同的蛋白质是生物化学中最基本的任务之一,通常通过电泳和 Western blot 技术来实现。然而,对于小样本量的分析,这是具有挑战性的。利用类似于这些传统方法的原理,我们提出了一种无标记的单分子技术,可以根据它们的大小、电荷和抗体结合的差异来识别不同的蛋白质。我们将单个蛋白质分子与传感器表面上的柔性聚合物连接,并通过施加交变电场使其进入振荡。通过通过高分辨率散射显微镜跟踪每个蛋白质分子的纳米级振荡,可以同时确定每个蛋白质分子的大小和电荷。还研究了由缓冲液 pH 值变化和抗体结合引起的变化,这使我们能够进一步扩展分离能力,并在混合物中识别两种不同的蛋白质。我们预计我们的技术将有助于单蛋白质分析和生物传感。