a College of Chemical Engineering , Sichuan University , Chengdu 610065 , Sichuan , China.
J Biomol Struct Dyn. 2019 Apr;37(6):1451-1463. doi: 10.1080/07391102.2018.1461137. Epub 2018 Apr 16.
The interaction mechanism and binding mode of capecitabine with ctDNA was extensively investigated using docking and molecular dynamics simulations, fluorescence and circular dichroism (CD) spectroscopy, DNA thermal denaturation studies, and viscosity measurements. The possible binding mode and acting forces on the combination between capecitabine and DNA had been predicted through molecular simulation. Results indicated that capecitabine could relatively locate stably in the G-C base-pairs-rich DNA minor groove by hydrogen bond and several weaker nonbonding forces. Fluorescence spectroscopy and fluorescence lifetime measurements confirmed that the quenching was static caused by ground state complex formation. This phenomenon indicated the formation of a complex between capecitabine and ctDNA. Fluorescence data showed that the binding constants of the complex were approximately 2 × 10 M. Calculated thermodynamic parameters suggested that hydrogen bond was the main force during binding, which were consistent with theoretical results. Moreover, CD spectroscopy, DNA melting studies, and viscosity measurements corroborated a groove binding mode of capecitabine with ctDNA. This binding had no effect on B-DNA conformation.
使用对接和分子动力学模拟、荧光和圆二色性(CD)光谱、DNA 热变性研究和粘度测量广泛研究了卡培他滨与 ctDNA 的相互作用机制和结合模式。通过分子模拟预测了卡培他滨与 DNA 结合的可能结合模式和作用力。结果表明,卡培他滨可以通过氢键和几种较弱的非键作用力在富含 G-C 碱基对的 DNA 小沟中相对稳定地定位。荧光光谱和荧光寿命测量证实,猝灭是由基态复合物形成引起的静态猝灭。这一现象表明卡培他滨与 ctDNA 形成了复合物。荧光数据表明,复合物的结合常数约为 2×10^M。计算的热力学参数表明,氢键是结合过程中的主要作用力,这与理论结果一致。此外,CD 光谱、DNA 热变性研究和粘度测量证实了卡培他滨与 ctDNA 的沟槽结合模式。这种结合对 B-DNA 构象没有影响。