Scott Lily, Chalikian Tigran V
Department of Pharmaceutical Sciences, Leslie Dan Faculty of Pharmacy, University of Toronto, 144 College Street, Toronto, ON M5S 3M2, Canada.
Life (Basel). 2022 Apr 18;12(4):597. doi: 10.3390/life12040597.
Once it had been realized that G-quadruplexes exist in the cell and are involved in regulation of genomic processes, the quest for ligands recognizing these noncanonical structures was underway. Many organic compounds that tightly associate with G-quadruplexes have been identified. However, the specificity of G-quadruplex-binding ligands towards individual structures remains problematic, as the common recognition element of these ligands is the G-tetrad. In this paper, we focus on G-quadruplex-duplex hybrids (QDH) containing a hairpin duplex incorporated as a stem-loop into the G-quadruplex core. The presence of a stem-loop renders QDH amenable to sequence-specific recognition by duplex-binding drugs. Should the thermodynamic crosstalk between the stem-loop and the tetraplex core be sufficiently strong, the drug binding to the loop would lead to the stabilization of the entire structure. We studied the stabilizing influence of the minor groove-binders netropsin and Hoechst 33258 on a family of QDH structures, as well as a G-quadruplex and a hairpin modeling the G-quadruplex core and the stem-loop of the QDH's. We found that the binding of either drug results in an enhancement of the thermal stability of all DNA structures, as expressed by increases in the melting temperature, T. Analysis of the hierarchical order of increases in T revealed that the drug-induced stabilization arises from drug binding to the G-quadruplex domain of a QDH and the stem-loop, if the latter contains an all-AT binding site. This result attests to the thermodynamic crosstalk between the stem-loop and the tetraplex core of a QDH. Given the existing library of minor groove-binding drugs recognizing mixed A·T and G·C DNA sequences, our results point to an untapped avenue for sequence-specific recognition of QDH structures in vitro and, possibly, in vivo; thereby, opening the way for selective stabilization of four-stranded DNA structures at predetermined genomic loci, with implications for the control of genomic events.
一旦人们认识到G-四链体存在于细胞中并参与基因组过程的调控,寻找识别这些非经典结构的配体的工作就开始了。许多与G-四链体紧密结合的有机化合物已被鉴定出来。然而,G-四链体结合配体对单个结构的特异性仍然存在问题,因为这些配体的共同识别元件是G-四联体。在本文中,我们专注于G-四链体-双链体杂合体(QDH),其中包含一个发夹双链体作为茎环掺入G-四链体核心。茎环的存在使QDH能够被双链体结合药物进行序列特异性识别。如果茎环与四链体核心之间的热力学串扰足够强,药物与环的结合将导致整个结构的稳定。我们研究了小沟结合剂纺锤菌素和Hoechst 33258对一系列QDH结构以及模拟QDH的G-四链体核心和茎环的G-四链体和发夹的稳定作用。我们发现,两种药物的结合都会导致所有DNA结构的热稳定性增强,表现为解链温度T的升高。对T升高的层次顺序分析表明,如果茎环包含一个全AT结合位点,药物诱导的稳定作用源于药物与QDH的G-四链体结构域和茎环的结合。这一结果证明了QDH的茎环与四链体核心之间存在热力学串扰。鉴于现有的识别混合A·T和G·C DNA序列的小沟结合药物文库,我们的结果指出了一条在体外乃至可能在体内对QDH结构进行序列特异性识别的未开发途径;从而为在预定基因组位点选择性稳定四链DNA结构开辟了道路,这对基因组事件的控制具有重要意义。