Shandong Provincial Key Laboratory of Biophysics, Institute of Biophysics, Dezhou University, Dezhou, China.
Shandong Provincial Key Laboratory of Biophysics, Institute of Biophysics, Dezhou University, Dezhou, China.
Biophys J. 2018 Apr 10;114(7):1529-1538. doi: 10.1016/j.bpj.2018.02.021.
G-quadruplex structures participate in many important cellular processes. For a better understanding of their functions, knowledge of the mechanism by which they fold into the functional native structures is necessary. In this work, we studied the folding process of the thrombin-binding aptamer G-quadruplex. Enabled by a computational paradigm that couples an advanced sampling method and a Markov state model, four folding intermediates were identified, including an antiparallel G-hairpin, two G-triplex structures, and a double-hairpin conformation. Likewise, a misfolded structure with a nonnative distribution of syn/anti guanines was also observed. Based on these states, a transition path analysis revealed three fast-folding pathways, along which the thrombin-binding aptamer would fold to the native state directly, with no evidence of potential nonnative competing conformations. The results also showed that the TGT-loop plays an important role in the folding process. The findings of this research may provide general insight about the folding of other G-quadruplex structures.
G-四链体结构参与许多重要的细胞过程。为了更好地了解它们的功能,有必要了解它们折叠成功能天然结构的机制。在这项工作中,我们研究了凝血酶结合适体 G-四链体的折叠过程。通过一种将高级采样方法和马科夫状态模型相结合的计算范例,确定了四个折叠中间体,包括一个反平行 G-发夹、两个 G-三聚体结构和一个双发夹构象。同样,也观察到了一种具有非天然分布的 syn/anti 鸟嘌呤的错误折叠结构。基于这些状态,通过转移路径分析揭示了三条快速折叠途径,凝血酶结合适体可以沿着这些途径直接折叠到天然状态,没有潜在的非天然竞争构象的证据。研究结果还表明,TGT 环在折叠过程中起着重要作用。这项研究的结果可能为其他 G-四链体结构的折叠提供一般性的见解。