Department of Materials Science and Engineering, University of Maryland, College Park, Maryland 20742, USA.
J Am Chem Soc. 2010 Jul 28;132(29):10148-54. doi: 10.1021/ja103867p.
Ribozymes must fold into compact, native structures to function properly in the cell. The first step in forming the RNA tertiary structure is the neutralization of the phosphate charge by cations, followed by collapse of the unfolded molecules into more compact structures. The specificity of the collapse transition determines the structures of the folding intermediates and the folding time to the native state. However, the forces that enable specific collapse in RNA are not understood. Using time-resolved SAXS, we report that upon addition of 5 mM Mg(2+) to the Azoarcus group I ribozyme up to 80% of chains form compact structures in less than 1 ms. In 1 mM Mg(2+), the collapse transition produces extended structures that slowly approach the folded state, while > or = 1.5 mM Mg(2+) leads to an ensemble of random coils that fold with multistage kinetics. Increased flexibility of molecules in the intermediate ensemble correlates with a Mg(2+)-dependent increase in the fast folding population and a previously unobserved crossover in the collapse kinetics. Partial denaturation of the unfolded RNA with urea also increases the fraction of chains following the fast-folding pathway. These results demonstrate that the preferred collapse mechanism depends on the extent of Mg(2+)-dependent charge neutralization and that non-native interactions within the unfolded ensemble contribute to the heterogeneity of the ribozyme folding pathways at the very earliest stages of tertiary structure formation.
核酶必须折叠成紧凑的天然结构,才能在细胞中正常发挥功能。形成 RNA 三级结构的第一步是通过阳离子中和磷酸电荷,然后使未折叠的分子塌陷成更紧凑的结构。塌陷转变的特异性决定了折叠中间体的结构和折叠到天然状态的时间。然而,使 RNA 特异性塌陷的力尚不清楚。我们使用时间分辨的小角 X 射线散射(SAXS)报告说,在向 Azoarcus 组 I 核酶中添加 5 mM Mg(2+)时,多达 80%的链在不到 1 ms 内形成紧凑结构。在 1 mM Mg(2+)中,塌陷转变产生延伸结构,这些结构缓慢接近折叠状态,而 >或= 1.5 mM Mg(2+)导致随机卷曲的集合,这些集合以多步动力学折叠。中间集合中分子的柔韧性增加与 Mg(2+)-依赖性快速折叠群体的增加以及塌陷动力学中以前未观察到的交叉相关。用脲部分变性未折叠的 RNA 也会增加沿快速折叠途径的链的分数。这些结果表明,首选的塌陷机制取决于 Mg(2+)-依赖性电荷中和的程度,并且未折叠集合内的非天然相互作用导致三级结构形成的最早阶段核酶折叠途径的异质性。