Flexible Versus Rigid G-Quadruplex DNA Ligands: Synthesis of Two Series of Bis-indole Derivatives and Comparison of Their Interactions with G-Quadruplex DNA

被引:14
|
作者
Prasad, Bagineni [1 ]
Jamroskovic, Jan [2 ]
Bhowmik, Sudipta [1 ,3 ]
Kumar, Rajendra [1 ]
Romell, Tajanena [1 ]
Sabouri, Nasim [2 ]
Chorell, Erik [1 ]
机构
[1] Umea Univ, Dept Chem, S-90187 Umea, Sweden
[2] Umea Univ, Dept Med Biochem & Biophys, S-90187 Umea, Sweden
[3] Univ Calcutta, Dept Biophys Mol Biol & Bioinformat, Kolkata 700009, India
关键词
bis-indoles; DNA structures; drug design; G-quadruplexes; nitrogen heterocycles; DISPLACEMENT ASSAY; MOLECULAR-DYNAMICS; THIOFLAVIN T; SEQUENCES;
D O I
10.1002/chem.201800078
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Small molecules that target G-quadruplex (G4) DNA structures are not only valuable to study G4 biology but also for their potential as therapeutics. This work centers around how different design features of small molecules can affect the interactions with G4 DNA structures, exemplified by the development of synthetic methods to bis-indole scaffolds. Our synthesized series of bis-indole scaffolds are structurally very similar but differ greatly in the flexibility of their core structures. The flexibility of the molecules proved to be an advantage compared to locking the compounds in the presumed bioactive G4 conformation. The flexible derivatives demonstrated similar or even improved G4 binding and stabilization in several orthogonal assays even though their entropic penalty of binding is higher. In addition, molecular dynamics simulations with the c-MYC G4 structure showed that the flexible compounds adapt better to the surrounding. This was reflected by an increased number of both stacking and polar interactions with both the residues in the G4 DNA structure and the DNA residues just upstream of the G4 structure.
引用
下载
收藏
页码:7926 / 7938
页数:13
相关论文
共 50 条
  • [11] How to split a G-quadruplex for DNA detection: new insight into the formation of DNA split G-quadruplex
    Zhu, Jinbo
    Zhang, Libing
    Dong, Shaojun
    Wang, Erkang
    CHEMICAL SCIENCE, 2015, 6 (08) : 4822 - 4827
  • [12] Alkylating probes for the G-quadruplex structure and evaluation of the properties of the alkylated G-quadruplex DNA
    Sato, Norihiro
    Takahashi, Shuntaro
    Tateishi-Karimata, Hisae
    Hazemi, Madoka E.
    Chikuni, Tomoko
    Onizuka, Kazumitsu
    Sugimoto, Naoki
    Nagatsugi, Fumi
    ORGANIC & BIOMOLECULAR CHEMISTRY, 2018, 16 (09) : 1436 - 1441
  • [13] Synthesis and biophysical evaluation of thiazole orange derivatives as DNA G-quadruplex binding ligands
    Yang, Dazhou
    Liu, Wanbo
    Xue, Liang
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 243
  • [14] G-quadruplex DNA for construction of biosensors
    Yang, Hualin
    Zhou, Yu
    Liu, Juewen
    TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 2020, 132
  • [15] G-quadruplex DNA binding by a series of carbocyanine dyes
    Kerwin, SM
    Sun, D
    Kern, JT
    Rangan, A
    Thomas, PW
    BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 2001, 11 (18) : 2411 - 2414
  • [16] Methods for investigating G-quadruplex DNA/ligand interactions
    Murat, Pierre
    Singh, Yashveer
    Defrancq, Eric
    CHEMICAL SOCIETY REVIEWS, 2011, 40 (11) : 5293 - 5307
  • [17] G-quadruplex DNA: A Longer Story
    Monsen, Robert C.
    Trent, John O.
    Chaires, Jonathan B.
    ACCOUNTS OF CHEMICAL RESEARCH, 2022, : 3242 - 3252
  • [18] Mapping DNA G-quadruplex structures
    Eytan Zlotorynski
    Nature Reviews Molecular Cell Biology, 2015, 16 (9) : 518 - 518
  • [19] G-quadruplex DNA: myth or reality?
    Riou, JF
    Gomez, D
    Lemarteleur, T
    Trentesaux, C
    BULLETIN DU CANCER, 2003, 90 (04) : 305 - 313
  • [20] Responsive DNA G-quadruplex micelles
    Cozzoli, Liliana
    Gjonaj, Lorina
    Stuart, Marc C. A.
    Poolman, Bert
    Roelfes, Gerard
    CHEMICAL COMMUNICATIONS, 2018, 54 (03) : 260 - 263