Department of Organic Chemistry, Indian Institute of Science, Bangalore, 560012, India.
School of Applied & Interdisciplinary Sciences, Indian Association for the Cultivation of Science, Kolkata, 700032, India.
ChemMedChem. 2022 Nov 18;17(22):e202200436. doi: 10.1002/cmdc.202200436. Epub 2022 Oct 13.
Anthraquinone-based compounds are well-known as duplex DNA as well as G-quadruplex DNA binders. Implications of various anthraquinone derivatives for specific recognition of G-quadruplex DNA over duplex DNA is a 'challenging' research work that requires adequate experience with molecular design. To address this important issue, we designed and synthesized ten new 2,6-disubstituted anthraquinone-based derivatives with different functionalized piperazinyl side-chains. Among these, particular compounds with certain distant groups have shown selective and significant binding affinities toward the c-MYC and c-KIT G-quadruplex DNA over the duplex DNA, as noticed from various biophysical experiments. The structural difference of quadruplex and duplex DNA was utilized to probe these derivatives for the end-stacking mode of binding with G-quadruplex DNA. The ability of the ligands to halt DNA synthesis by stabilizing G-quadruplex structures is one of the crucial points to further apply them for quadruplex-mediated anti-cancer therapeutics. Interestingly, these ligands trigger apoptosis to exhibit selective cytotoxicity toward cancer cells over normal cells. This was further evidenced by ligand-induced cell cycle arrest as well as cellular apoptotic morphological changes. These blood-compatible ligands provided detailed structure-activity relationship approaches for the molecular design of anthraquinone-based G-quadruplex binders.
蒽醌类化合物是众所周知的双链 DNA 以及 G-四链体 DNA 结合物。各种蒽醌衍生物对 G-四链体 DNA 与双链 DNA 的特异性识别的影响是一项具有挑战性的研究工作,需要有足够的分子设计经验。为了解决这个重要问题,我们设计并合成了十个具有不同官能化哌嗪侧链的新型 2,6-取代蒽醌基衍生物。在这些化合物中,某些具有特定距离基团的化合物对 c-MYC 和 c-KIT G-四链体 DNA 具有选择性和显著的结合亲和力,这是从各种生物物理实验中观察到的。我们利用四链体和双链体 DNA 的结构差异来研究这些衍生物与 G-四链体 DNA 的末端堆积结合模式。配体稳定 G-四链体结构以阻止 DNA 合成的能力是进一步将其应用于四链体介导的抗癌治疗的关键要点之一。有趣的是,这些配体引发细胞凋亡,对癌细胞表现出选择性细胞毒性,而对正常细胞则没有毒性。这进一步通过配体诱导的细胞周期停滞以及细胞凋亡形态学变化得到证实。这些血液相容性配体为基于蒽醌的 G-四链体结合物的分子设计提供了详细的构效关系方法。