College of Chemical Engineering and Material Science, Quanzhou Normal University, Quanzhou, China.
College of Chemical Engineering and Material Science, Quanzhou Normal University, Quanzhou, China.
Biochem Biophys Res Commun. 2019 Jun 4;513(3):753-759. doi: 10.1016/j.bbrc.2019.04.025. Epub 2019 Apr 13.
Thrombin-binding aptamer (TBA) can fold into a G-quadruplex structure necessary for interacting with thrombin. When one thymidine residue of the TGT loop at position 7 is replaced with unlocked uracil (UNA), d-isothymidine (D-isoT) or l-isothymidine (L-isoT), these modified sequences display different activities. To date, the mechanisms of how D/L-isoT and UNA influence the biological properties of TBA have not been illustrated in the literature. In this paper, we fill this gap by probing the structure variations and binding modes of these modified TBAs via molecular dynamics (MD) simulation and free energy calculation. Comparative structural analyses demonstrated that both D-IsoT and UNA changed the local conformation of TGT loop and formed stronger interactions with the target protein. Particularly, D-IsoT and UNA adopted similar conformation which can well explain their similar biological activities. In addition, the flexibility of the two TT loops were described clearly. In contrast, L-IsoT at position 7 led to an obvious tendency to unfold. Free energy calculation and the analysis of key residues energy contributions eventually provide a clear picture of interactions for further understanding of the structure-activity relationships. Collectively, our findings open the way for a rational design of modified aptamers.
凝血酶结合适体(TBA)可以折叠成 G-四链体结构,这是与凝血酶相互作用所必需的。当位置 7 的 TGT 环中的一个胸腺嘧啶被未锁定的尿嘧啶(UNA)、d-异胸腺嘧啶(D-isoT)或 l-异胸腺嘧啶(L-isoT)取代时,这些修饰的序列显示出不同的活性。迄今为止,D/L-isoT 和 UNA 如何影响 TBA 生物学特性的机制尚未在文献中阐明。在本文中,我们通过分子动力学(MD)模拟和自由能计算来探测这些修饰的 TBA 的结构变化和结合模式,从而填补了这一空白。比较结构分析表明,D-IsoT 和 UNA 均改变了 TGT 环的局部构象,并与靶蛋白形成更强的相互作用。特别是,D-IsoT 和 UNA 采用了相似的构象,可以很好地解释它们相似的生物学活性。此外,还清楚地描述了两个 TT 环的柔韧性。相比之下,位置 7 的 L-IsoT 导致明显的展开趋势。自由能计算和关键残基能量贡献的分析最终为相互作用提供了清晰的画面,有助于进一步理解结构-活性关系。总的来说,我们的发现为修饰适体的合理设计开辟了道路。