Mulholland Kelly, Siddiquei Farzana, Wu Chun
College of Science and Mathematics, Rowan University, Glassboro, NJ 08028, USA.
Phys Chem Chem Phys. 2017 Jul 19;19(28):18685-18694. doi: 10.1039/c7cp03313c.
RHPS4, a potent binder to human telomeric DNA G-quadruplex, shows high efficacy in tumor cell growth inhibition. However, it's preferential binding to DNA G-quadruplex over DNA duplex (about 10 fold) remains to be improved toward its clinical application. A high resolution structure of the single-stranded telomeric DNA G-quadruplexes, or B-DNA duplex, in complex with RHPS4 is not available yet, and the binding nature of this ligand to these DNA forms remains to be elusive. In this study, we carried out 40 μs molecular dynamics binding simulations with a free ligand to decipher the binding pathway of RHPS4 to a DNA duplex and three G-quadruplex folders (parallel, antiparallel and hybrid) of the human telomeric DNA sequence. The most stable binding mode identified for the duplex, parallel, antiparallel and hybrid G-quadruplexes is an intercalation, bottom stacking, top intercalation and bottom intercalation mode, respectively. The intercalation mode with similar binding strength to both the duplex and the G-quadruplexes, explains the lack of binding selectivity of RHPS4 to the G-quadruplex form. Therefore, a ligand modification that destabilizes the duplex intercalation mode but stabilizes the G-quadruplex intercalation mode will improve the binding selectivity toward G-quadruplex. The intercalation mode of RHPS4 to both the duplex and the antiparallel and the hybrid G-quadruplex follows a base flipping-insertion mechanism rather than an open-insertion mechanism. The groove binding, the side binding and the intercalation with flipping out of base were observed to be intermediate states before the full intercalation state with paired bases.
RHPS4是一种与人类端粒DNA G-四链体有强结合力的物质,在抑制肿瘤细胞生长方面显示出高效性。然而,其对DNA G-四链体的优先结合能力相较于DNA双链(约10倍),在临床应用方面仍有待提高。目前尚无与RHPS4复合的单链端粒DNA G-四链体或B-DNA双链的高分辨率结构,该配体与这些DNA形式的结合性质仍不明确。在本研究中,我们对游离配体进行了40微秒的分子动力学结合模拟,以解析RHPS4与人类端粒DNA序列的DNA双链以及三种G-四链体折叠形式(平行、反平行和混合)的结合途径。确定的双链、平行、反平行和混合G-四链体最稳定的结合模式分别为插入、底部堆积、顶部插入和底部插入模式。与双链和G-四链体具有相似结合强度的插入模式,解释了RHPS4对G-四链体形式缺乏结合选择性的原因。因此,一种能使双链插入模式不稳定但使G-四链体插入模式稳定的配体修饰,将提高对G-四链体的结合选择性。RHPS4与双链以及反平行和混合G-四链体的插入模式遵循碱基翻转插入机制而非开放插入机制。在与配对碱基的完全插入状态之前,观察到沟槽结合、侧面结合以及碱基翻转的插入是中间状态。