Department of Chemistry and Biochemistry and School of Biomedical Sciences, Kent State University, Kent, Ohio 44242, USA.
Nat Chem. 2011 Aug 28;3(10):782-7. doi: 10.1038/nchem.1126.
Ligands that stabilize the formation of telomeric DNA G-quadruplexes have potential as cancer treatments, because the G-quadruplex structure cannot be extended by telomerase, an enzyme over-expressed in many cancer cells. Understanding the kinetic, thermodynamic and mechanical properties of small-molecule binding to these structures is therefore important, but classical ensemble assays are unable to measure these simultaneously. Here, we have used a laser tweezers method to investigate such interactions. With a force jump approach, we observe that pyridostatin promotes the folding of telomeric G-quadruplexes. The increased mechanical stability of pyridostatin-bound G-quadruplex permits the determination of a dissociation constant K(d) of 490 ± 80 nM. The free-energy change of binding obtained from a Hess-like process provides an identical K(d) for pyridostatin and a K(d) of 42 ± 3 µM for a weaker ligand RR110. We anticipate that this single-molecule platform can provide detailed insights into the mechanical, kinetic and thermodynamic properties of liganded bio-macromolecules, which have biological relevance.
稳定端粒 DNA G-四链体形成的配体具有作为癌症治疗的潜力,因为 G-四链体结构不能被端粒酶延伸,端粒酶在许多癌细胞中过度表达。因此,了解小分子与这些结构的结合的动力学、热力学和力学性质非常重要,但经典的整体测定法无法同时测量这些性质。在这里,我们使用激光镊子方法研究了这些相互作用。通过力跳跃方法,我们观察到吡啶硫酮促进端粒 G-四链体的折叠。吡啶硫酮结合的 G-四链体的机械稳定性增加,使得能够确定解离常数 K(d)为 490 ± 80 nM。从 Hess 样过程获得的结合自由能变化为吡啶硫酮提供了相同的 K(d),为较弱的配体 RR110 提供了 42 ± 3 µM 的 K(d)。我们预计,这个单分子平台可以为配体生物大分子的力学、动力学和热力学性质提供详细的见解,这些性质与生物学相关。