Department of Drug Discovery and Development, Istituto Italiano di Tecnologia, via Morego, 30, I-16163 Genoa, Italy.
Department of Pharmacy, University of Naples "Federico II", via D. Montesano, 49, I-80131 Naples, Italy.
Nucleic Acids Res. 2014 May;42(9):5447-55. doi: 10.1093/nar/gku247. Epub 2014 Apr 21.
Specific guanine-rich regions in human genome can form higher-order DNA structures called G-quadruplexes, which regulate many relevant biological processes. For instance, the formation of G-quadruplex at telomeres can alter cellular functions, inducing apoptosis. Thus, developing small molecules that are able to bind and stabilize the telomeric G-quadruplexes represents an attractive strategy for antitumor therapy. An example is 3-(benzo[d]thiazol-2-yl)-7-hydroxy-8-((4-(2-hydroxyethyl)piperazin-1-yl)methyl)-2H-chromen-2-one (compound 1: ), recently identified as potent ligand of the G-quadruplex [d(TGGGGT)]4 with promising in vitro antitumor activity. The experimental observations are suggestive of a complex binding mechanism that, despite efforts, has defied full characterization. Here, we provide through metadynamics simulations a comprehensive understanding of the binding mechanism of 1: to the G-quadruplex [d(TGGGGT)]4. In our calculations, the ligand explores all the available binding sites on the DNA structure and the free-energy landscape of the whole binding process is computed. We have thus disclosed a peculiar hopping binding mechanism whereas 1: is able to bind both to the groove and to the 3' end of the G-quadruplex. Our results fully explain the available experimental data, rendering our approach of great value for further ligand/DNA studies.
人类基因组中的特定鸟嘌呤富集区域可以形成称为 G-四链体的高级 DNA 结构,这些结构调节许多相关的生物学过程。例如,端粒处 G-四链体的形成可以改变细胞功能,诱导细胞凋亡。因此,开发能够结合并稳定端粒 G-四链体的小分子代表了抗肿瘤治疗的一种有吸引力的策略。一个例子是 3-(苯并[d]噻唑-2-基)-7-羟基-8-((4-(2-羟乙基)哌嗪-1-基)甲基)-2H-色烯-2-酮(化合物 1:),最近被确定为 G-四链体[d(TGGGGT)]4 的有效配体,具有有前途的体外抗肿瘤活性。实验观察表明存在一种复杂的结合机制,尽管进行了努力,但仍未完全表征。在这里,我们通过元动力学模拟提供了对 1:与 G-四链体[d(TGGGGT)]4 结合机制的全面理解。在我们的计算中,配体探索了 DNA 结构上所有可用的结合位点,并计算了整个结合过程的自由能景观。因此,我们揭示了一种特殊的跳跃结合机制,其中 1:能够与 G-四链体的沟槽和 3'端结合。我们的结果完全解释了现有的实验数据,为进一步的配体/DNA 研究提供了很大的价值。