Luo Di, Mu Yuguang
School of Biological Sciences, Nanyang Technological University, Singapore 637551, Singapore.
J Phys Chem B. 2015 Apr 16;119(15):4955-67. doi: 10.1021/acs.jpcb.5b01107. Epub 2015 Apr 6.
Ligand-stabilized human telomeric G-quadruplex DNA is believed to be an anticancer agent, as it can impede the continuous elongation of telomeres by telomerase in cancer cells. In this study, five well-established human telomeric G-quadruplex DNA models were probed on their binding behaviors with thioflavin T (ThT) via both conventional molecular dynamics (MD) and well-tempered metadynamics (WT-MetaD) simulations. Novel dynamics and characteristic binding patterns were disclosed by the MD simulations. It was observed that the K(+) promoted parallel and hybridized human telomeric G-quadruplex conformations pose higher binding affinities to ThT than the Na(+) and K(+) promoted basket conformations. It is the end, sandwich, and base stacking driven by π-π interactions that are identified as the major binding mechanisms. As the most energy favorable binding mode, the sandwich stacking observed in (3 + 1) hybridized form 1 G-quadruplex conformation is triggered by reversible conformational change of the G-quadruplex. To further examine the free energy landscapes, WT-MetaD simulations were utilized on G-quadruplex-ThT systems. It is found that all of the major binding modes predicted by the MD simulations are confirmed by the WT-MetaD simulations. The results in this work not only accord with existing experimental findings, but also reinforce our understanding on the dynamics of G-quadruplexes and aid future drug developments for G-quadruplex stabilization ligands.
配体稳定的人类端粒G-四链体DNA被认为是一种抗癌剂,因为它可以阻碍癌细胞中端粒酶对端粒的持续延长。在本研究中,通过传统分子动力学(MD)和加权元动力学(WT-MetaD)模拟,对五个成熟的人类端粒G-四链体DNA模型与硫黄素T(ThT)的结合行为进行了探究。MD模拟揭示了新的动力学和特征性结合模式。观察到,K(+)促进的平行和杂交人类端粒G-四链体构象对ThT的结合亲和力高于Na(+)和K(+)促进的篮状构象。由π-π相互作用驱动的末端、夹心和碱基堆积被确定为主要结合机制。作为最有利的能量结合模式,在(3 + 1)杂交形式1 G-四链体构象中观察到的夹心堆积是由G-四链体的可逆构象变化触发的。为了进一步研究自由能景观,在G-四链体-ThT系统上进行了WT-MetaD模拟。发现MD模拟预测的所有主要结合模式都得到了WT-MetaD模拟的证实。这项工作的结果不仅与现有的实验结果一致,而且加强了我们对G-四链体动力学的理解,并有助于未来G-四链体稳定配体的药物开发。