Institute of Organic Chemistry with Centre of Phytochemistry, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria.
Institute of Molecular Biology "R. Tsanev", Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria.
Molecules. 2022 Nov 4;27(21):7577. doi: 10.3390/molecules27217577.
G-quadruplexes (GQs) have become valid targets for anticancer studies in recent decades due to their multifaceted biological function. Herewith, we aim to quantify interactions of potential heterocyclic ligands (Ls) with model GQs. For seven 4-aminoquinazolines and three 2-heteroaryl perimidines, seven of this ten-membered group so far unknown, we use routine quantum chemical modeling. As shown in the literature, a preferred mode of interaction of heterocycles with cellular structures is stacking to exposable faces of G-quadruplexes. To exploit the energy of this interaction as a molecular descriptor and achieve the necessary chemical precision, we use state of the art large-scale density functional theory (DFT) calculations of stacked heterocycles to a GQ. Actually, the GQ has been simplified for the computation by stripping it off all pentose phosphate residues into a naked model of stacked guanine quartets. The described model thus becomes computable. The obtained heterocyclic ligand GQ.L stacking energies, that is, their GQ affinities, are the necessary ligand descriptors. Using the ligand biological inhibitory activities (IC) on a human malignant melanoma A375 cell line, we obtain a good linear relationship between computed ligand stacking affinities to GQ, and experimental log (IC) values. Based on the latter relationship, we discuss a putative mechanism of anticancer activity of heterocyclic ligands via stacking interactions with GQs and thereby controlling cell regulatory activity. This mechanism may tentatively be applied to other condensed five- and six-membered small heterocycles as well.
G-四链体 (GQs) 由于其多方面的生物学功能,在最近几十年已成为癌症研究的有效靶点。在此,我们旨在定量研究潜在杂环配体 (Ls) 与模型 GQs 的相互作用。对于七个 4-氨基喹唑啉和三个 2-杂芳基嘧啶,这十个成员中目前有七个是未知的,我们使用常规量子化学建模。正如文献所示,杂环与细胞结构相互作用的首选模式是堆积到 G-四链体的暴露面上。为了利用这种相互作用的能量作为分子描述符,并实现必要的化学精度,我们使用最先进的大型密度泛函理论 (DFT) 计算来研究堆积杂环与 GQ 的相互作用。实际上,为了计算,GQ 已被简化为去除所有戊糖磷酸残基的裸露堆积鸟嘌呤四联体模型。因此,该模型变得可计算。所得的杂环配体 GQ.L 堆积能,即它们的 GQ 亲和力,是必要的配体描述符。使用配体对人恶性黑色素瘤 A375 细胞系的生物抑制活性 (IC),我们在计算的配体堆积亲和力与实验 log(IC) 值之间获得了良好的线性关系。基于后一种关系,我们讨论了杂环配体通过与 GQs 堆积相互作用并由此控制细胞调节活性的抗癌活性的假设机制。这种机制可能可以暂时应用于其他缩合的五元和六元小杂环。