• Spectroscopy and Spectral Analysis
  • Vol. 36, Issue 3, 896 (2016)
LIU Ting-ting1、*, ZHOU Shuang1, JIA Qian-lan1, WANG Wen-shu1、2, YAN Xiao-qian1, ZHANG Wen-hao3, WANG Shuai-qi1, and JIAO Yu-guo1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • show less
    DOI: 10.3964/j.issn.1000-0593(2016)03-0896-07 Cite this Article
    LIU Ting-ting, ZHOU Shuang, JIA Qian-lan, WANG Wen-shu, YAN Xiao-qian, ZHANG Wen-hao, WANG Shuai-qi, JIAO Yu-guo. Spectral Analysis of Interaction between Human Telomeric G-Quadruplex and Liliflorin A, the First Lignan Derivative Interacted with G-Quadruplex DNA[J]. Spectroscopy and Spectral Analysis, 2016, 36(3): 896 Copy Citation Text show less

    Abstract

    Human telomeric G-quadruplex is a four-stranded structure folded by guanines (G) via Hoogsteen hydrogen bonding. The ligands which stabilize the G-quadruplex are often telomerase inhibitors and may become antitumor agents. Here, the interaction between a lignan derivative liliflorin A and human telomeric sequence dGGG(TTAGGG)3G-quadruplex HTG21 were examined by CD, FRET, and NMR spectroscopic methods. In addition, Molecular Docking was used to study the binding of liliflorin A to dTAGGG(TTAGGG)3G-quadruplex HTG23. The CD data showed that liliflorin A enhanced HTG21 Tm. The Tm value of G-quadruplex was enhanced 3.2 ℃ by 4.0 μmol·L-1 liliflorin A in FRET. The NMR spectra of HTG21 showed vivid alteration after reacting with liliflorin A in 3 hours. Molecular Docking suggested liliflorin A bound to the wide groove of HTG23 at G9, G10, G16 and G17. Liliflorin A was the first lignan derivative that could stabilize HTG21 selectively and provided a new candidate for antitumor drug design targeting on human telomeric G-quadruplex.
    LIU Ting-ting, ZHOU Shuang, JIA Qian-lan, WANG Wen-shu, YAN Xiao-qian, ZHANG Wen-hao, WANG Shuai-qi, JIAO Yu-guo. Spectral Analysis of Interaction between Human Telomeric G-Quadruplex and Liliflorin A, the First Lignan Derivative Interacted with G-Quadruplex DNA[J]. Spectroscopy and Spectral Analysis, 2016, 36(3): 896
    Download Citation