School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou, People's Republic of China.
Org Biomol Chem. 2011 Sep 21;9(18):6422-36. doi: 10.1039/c1ob05884c. Epub 2011 Aug 2.
G-quadruplex structures are a new class of attractive targets for DNA-interactive anticancer agents. The primary building block of this structure is the G-quartet, which is composed of four coplanar guanines and serves as the major binding site for small molecules. NMR studies and molecular dynamics simulations have suggested that the planarity of G-quartet surface has been highly dynamic in solution. To better investigate how the planarity of unfused aromatic ligand impacts on its quadruplex binding properties, a variety of planarity controllable isaindigotone derivatives were designed and synthesized. The interaction of G-quadruplex DNA with these designed ligands was systematically explored using a series of biophysical studies. The FRET-melting, SPR, and CD spectroscopy results showed that reducing the planarity of their unfused aromatic core resulted in their decreased binding affinity and stabilization ability for G-quadruplex. NMR studies also suggested that these compounds could stack on the G-quartet surface. Such results are in parallel with subsequent molecular modeling studies. A detailed binding energy analysis indicated that van der Waals energy (ΔE(vdw)) and entropy (TΔS) are responsible for their decreased quadruplex binding and stabilization effect. All these results provided insight information about how quadruplex recognition could be controlled by adjusting the planarity of ligands, which shed light on further development of unfused aromatic molecules as optimal G-quadruplex binding ligands.
G-四链体结构是一类有吸引力的新型 DNA 相互作用抗癌药物靶标。该结构的基本构建块是 G-四联体,它由四个共面的鸟嘌呤组成,是小分子的主要结合位点。NMR 研究和分子动力学模拟表明,溶液中 G-四联体表面的平面性具有高度动态性。为了更好地研究未融合芳环配体的平面性如何影响其四链体结合特性,设计并合成了各种平面性可控的异吲哚酮衍生物。通过一系列生物物理研究系统地研究了 G-四链体 DNA 与这些设计的配体的相互作用。FRET 融解、SPR 和 CD 光谱结果表明,降低其未融合芳环核心的平面性会导致它们对 G-四链体的结合亲和力和稳定能力降低。NMR 研究还表明,这些化合物可以堆积在 G-四联体表面。这些结果与随后的分子建模研究一致。详细的结合能分析表明,范德华能 (ΔE(vdw)) 和熵 (TΔS) 是导致它们四链体结合和稳定作用降低的原因。所有这些结果提供了关于如何通过调节配体的平面性来控制四链体识别的深入信息,这为进一步开发未融合芳环分子作为最佳 G-四链体结合配体提供了思路。