Biophysics Unit, Department of Physics, DDU Gorakhpur University, Gorakhpur 273009, Uttar Pradesh, India.
J Comput Aided Mol Des. 2012 Mar;26(3):289-99. doi: 10.1007/s10822-012-9548-z. Epub 2012 Mar 29.
Telomeric ends of chromosomes, which comprise noncoding repeat sequences of guanine-rich DNA, which are the fundamental in protecting the cell from recombination and degradation. Telomeric DNA sequences can form four stranded quadruplex structures, which are involved in the structure of telomere ends. The formation and stabilization of telomeric quadruplexes has been shown to inhibit the activity of telomerase, thus establishing telomeric DNA quadrulex as an attractive target for cancer therapeutic intervention. Molecular dynamic simulation offers the prospects of detailed description of the dynamical structure with ion and water at molecular level. In this work we have taken a oligomeric part of human telomeric DNA, d(TAGGGT) to form different monomeric quadruplex structures d(TAGGGT)₄. Here we report the relative stabilities of these structures under K⁺ ion conditions and binding interaction between the strands, as determined by molecular dynamic simulations followed by energy calculation. We have taken locked nucleic acid (LNA) in this study. The free energy molecular mechanics Poission Boltzman surface area calculations are performed for the determination of most stable complex structure between all modified structures. We calculated binding free energy for the combination of different strands as the ligand and receptor for all structures. The energetic study shows that, a mixed hybrid type quadruplex conformation in which two parallel strands are bind with other two antiparallel strands, are more stable than other conformations. The possible mechanism for the inhibition of the cancerous growth has been discussed. Such studies may be helpful for the rational drug designing.
染色体的端粒由富含鸟嘌呤的 DNA 非编码重复序列组成,是保护细胞免受重组和降解的基本结构。端粒 DNA 序列可以形成四链螺旋结构,参与端粒末端的结构。已经表明,端粒四链螺旋的形成和稳定可以抑制端粒酶的活性,从而使端粒 DNA 四链螺旋成为癌症治疗干预的有吸引力的靶点。分子动力学模拟提供了在分子水平上详细描述离子和水的动态结构的前景。在这项工作中,我们采用了人类端粒 DNA 的寡聚部分 d(TAGGGT),以形成不同的单体四链螺旋结构 d(TAGGGT)₄。在这里,我们报告了在 K⁺离子条件下这些结构的相对稳定性,以及通过分子动力学模拟和能量计算确定的链间结合相互作用。在这项研究中,我们采用了锁核酸(LNA)。自由能分子力学泊松-玻尔兹曼表面面积计算是为了确定所有修饰结构之间最稳定的复合物结构。我们计算了不同链作为配体和受体的所有结构的结合自由能。能量研究表明,两种平行链与其他两种反平行链结合的混合杂交型四链螺旋构象比其他构象更稳定。讨论了抑制癌细胞生长的可能机制。这些研究可能有助于合理的药物设计。