Marchetti Chiara, Minarini Anna, Tumiatti Vincenzo, Moraca Federica, Parrotta Lucia, Alcaro Stefano, Rigo Riccardo, Sissi Claudia, Gunaratnam Mekala, Ohnmacht Stephan A, Neidle Stephen, Milelli Andrea
Department of Pharmacy and Biotechnology, University of Bologna, via Belmeloro 6, 40126 Bologna, Italy; School of Pharmacy, University College London, London WC1N 1AX, UK.
Department of Pharmacy and Biotechnology, University of Bologna, via Belmeloro 6, 40126 Bologna, Italy.
Bioorg Med Chem. 2015 Jul 1;23(13):3819-30. doi: 10.1016/j.bmc.2015.03.076. Epub 2015 Apr 11.
The synthesis, biological and molecular modeling evaluation of a series of macrocyclic naphthalene diimides is reported. The present investigation expands on the study of structure-activity relationships of prototype compound 2 by constraining the molecule into a macrocyclic structure with the aim of improving its G-quadruplex binding activity and selectivity. The new derivatives, compounds 4-7 carry spermidine- and spermine-like linkers while in compound 8 the inner basic nitrogen atoms of spermine have been replaced with oxygen atoms. The design strategy has led to potent compounds stabilizing both human telomeric (F21T) and c-KIT2 quadruplex sequences, and high selectivity for quadruplex in comparison to duplex DNA. Antiproliferative effects of the new derivatives 4-8 have been evaluated in a panel of cancer cell lines and all the tested compounds showed activity in the low micromolar or sub-micromolar range of concentrations. In order to rationalize the molecular basis of the DNA G-quadruplex versus duplex recognition preference, docking and molecular dynamics studies have been performed. The computational results support the observation that the main driving force in the recognition is due to electrostatic factors.
报道了一系列大环萘二亚胺的合成、生物学及分子模拟评估。本研究通过将原型化合物2构建成大环结构以改善其G-四链体结合活性和选择性,从而拓展了对其构效关系的研究。新衍生物化合物4-7带有亚精胺和精胺样连接基团,而在化合物8中,精胺的内部碱性氮原子被氧原子取代。该设计策略已产生了能够稳定人类端粒(F21T)和c-KIT2四链体序列的强效化合物,并且相较于双链DNA,对四链体具有高选择性。新衍生物4-8的抗增殖作用已在一组癌细胞系中进行了评估,所有测试化合物在低微摩尔或亚微摩尔浓度范围内均表现出活性。为了阐明DNA G-四链体与双链识别偏好的分子基础,已开展对接和分子动力学研究。计算结果支持了如下观察结果:识别过程中的主要驱动力源于静电因素。