High Magnetic Field Laboratory, Chinese Academy of Sciences, Hefei 230031, China.
University of Science and Technology of China, Hefei 230026, China.
Nucleic Acids Res. 2021 Feb 26;49(4):2306-2316. doi: 10.1093/nar/gkab028.
Vast G-quadruplexes (GQs) are primarily folded by one, two, or four G-rich oligomers, rarely with an exception. Here, we present the first NMR solution structure of a trimolecular GQ (tri-GQ) that is solely assembled by the self-trimerization of d(GTTAGG), preferentially in Na+ solution tolerant to an equal amount of K+ cation. Eight guanines from three asymmetrically folded strands of d(GTTAGG) are organized into a two-tetrad core, which features a broken G-column and two width-irregular grooves. Fast strand exchanges on a timescale of second at 17°C spontaneously occur between folded tri-GQ and unfolded single-strand of d(GTTAGG) that both species coexist in dynamic equilibrium. Thus, this tri-GQ is not just simply a static assembly but rather a dynamic assembly. Moreover, another minor tetra-GQ that has putatively tetrameric (2+2) antiparallel topology becomes noticeable only at an extremely high strand concentration above 18 mM. The major tri-GQ and minor tetra-GQ are considered to be mutually related, and their reversible interconversion pathways are proposed accordingly. The sequence d(GTTAGG) could be regarded as either a reading frame shifted single repeat of human telomeric DNA or a 1.5 repeat of Bombyx mori telomeric DNA. Overall, our findings provide new insight into GQs and expect more functional applications.
大量的 G-四链体(GQs)主要通过一个、两个或四个富含 G 的寡聚物折叠形成,很少有例外。在这里,我们展示了第一个由 d(GTTAGG) 自三聚体组装而成的三聚体 GQ(tri-GQ)的 NMR 溶液结构,该三聚体在耐受等量 K+阳离子的 Na+溶液中优先形成。三个不对称折叠链的 8 个鸟嘌呤形成一个双四联体核心,其特征是一个断裂的 G-列和两个宽度不规则的沟道。在 17°C 下,折叠的 tri-GQ 和未折叠的 d(GTTAGG) 单链之间的快速链交换在秒级尺度上自发发生,这两种物质在动态平衡中共存。因此,这种 tri-GQ 不仅仅是一个静态的组装体,而是一个动态的组装体。此外,另一个假定具有四聚体(2+2)反平行拓扑的小四聚体仅在高于 18 mM 的极高链浓度下才变得明显。主要的 tri-GQ 和次要的 tetra-GQ 被认为是相互关联的,因此提出了它们的可逆转化途径。序列 d(GTTAGG) 可以被视为人类端粒 DNA 的读码框移位的单个重复,或者是家蚕端粒 DNA 的 1.5 个重复。总的来说,我们的发现为 GQs 提供了新的见解,并期望有更多的功能应用。