Department of Chemistry and Biochemistry, Kent State University, Kent, OH, 44242, USA.
Department of Biotechnology and Life Science Faculty of Technology, Tokyo University of Agriculture and Technology (TUAT), 2-14-16 Naka-cho, Koganeishi, Tokyo, 184-8588, Japan.
Anal Biochem. 2022 Jul 15;649:114693. doi: 10.1016/j.ab.2022.114693. Epub 2022 Apr 29.
Binding between a ligand and a receptor is a fundamental step in many natural or synthetic processes. In biosensing, a tight binding with a small dissociation constant (K) between the probe and analyte can lead to superior specificity and sensitivity. Owing to their capability of evaluating competitors, displacement assays have been used to estimate K at the ensemble average level. At the more sensitive single-molecule level, displacement assays are yet to be established. Here, we developed a single-molecule displacement assay (smDA) in an optical tweezers instrument and used this innovation to evaluate the binding of the L2H2-6OTD ligands to human telomeric DNA G-quadruplexes. After measuring K of linear and dendrimer L2H2-6OTD ligands, we found that dendrimer ligands have enhanced binding affinity to the G-quadruplexes due to their polyvalent geometry. This increased binding affinity enhanced inhibition of telomerase elongation on a telomere template in a Telomerase Repeated Amplification Protocol (TRAP). Our experiments demonstrate that the smDA approach can efficiently evaluate binding processes in chemical and biological processes.
配体与受体的结合是许多自然或合成过程的基本步骤。在生物传感中,探针与分析物之间具有较小解离常数(K)的紧密结合可以导致更高的特异性和灵敏度。由于它们能够评估竞争者,因此置换测定法已被用于在总体平均水平上估计 K。在更敏感的单分子水平上,尚未建立置换测定法。在这里,我们在光学镊子仪器中开发了一种单分子置换测定法(smDA),并利用这一创新来评估 L2H2-6OTD 配体与人端粒 DNA G-四链体的结合。在测量了线性和树枝状大分子 L2H2-6OTD 配体的 K 之后,我们发现树枝状大分子配体由于其多价几何形状而具有增强的与 G-四链体的结合亲和力。这种结合亲和力的增强增强了在端粒重复扩增方案(TRAP)中对端粒模板上端粒酶延伸的抑制作用。我们的实验表明,smDA 方法可以有效地评估化学和生物过程中的结合过程。