Department of Biomedical Engineering, Yonsei University , Wonju 220-710, Korea.
Mechanical Engineering Department, University of Wisconsin-Milwaukee , Milwaukee, Wisconsin 53211, United States.
ACS Nano. 2016 Apr 26;10(4):4011-9. doi: 10.1021/acsnano.5b05286. Epub 2016 Mar 23.
The direct quantification of weak intermolecular binding interactions is very important for many applications in biology and medicine. Techniques that can be used to investigate such interactions under a controlled environment, while varying different parameters such as loading rate, pulling direction, rupture event measurements, and the use of different functionalized probes, are still lacking. Herein, we demonstrate a biaxial dielectrophoresis force spectroscopy (BDFS) method that can be used to investigate weak unbinding events in a high-throughput manner under controlled environments and by varying the pulling direction (i.e., transverse and/or vertical axes) as well as the loading rate. With the BDFS system, we can quantitatively analyze binding interactions related to hydrogen bonding or ionic attractions between functionalized microbeads and a surface within a microfluidic device. Our BDFS system allowed for the characterization of the number of bonds involved in an interaction, bond affinity, kinetic rates, and energy barrier heights and widths from different regimes of the energy landscape.
直接量化弱分子间相互作用对于生物学和医学中的许多应用非常重要。在受控环境下研究此类相互作用的技术仍然缺乏,这些技术可以改变不同的参数,如加载速率、拉伸方向、断裂事件测量以及使用不同功能化探针。在此,我们展示了一种双轴介电泳力谱(BDFS)方法,该方法可用于在受控环境中以高通量方式研究弱解吸事件,并可通过改变拉伸方向(即横向和/或纵向轴)以及加载速率来实现。使用 BDFS 系统,我们可以定量分析与功能化微球和微流控装置表面之间的氢键或离子吸引相关的结合相互作用。我们的 BDFS 系统允许从不同能量景观区域定量分析相互作用中涉及的键数、键亲和力、动力学速率以及能量势垒高度和宽度。