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Tertiary Interactions Determine the Accuracy of RNA Folding

机译:三次相互作用决定了RNA折叠的准确性

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RNAs must fold into unique three-dimensional structures to function in the cell, but how each polynucleotide finds its native structure is not understood. To investigate whether the stability of the tertiary structure determines the speed and accuracy of RNA folding, docking of a tetraloop with its receptor in a bacterial group I ribozyme was perturbed by site-directed mutagenesis. Disruption of the tetraloop or its receptor destabilizes tertiary interactions throughout the ribozyme by 2-3 kcal/mol, demonstrating that tertiary interactions form cooperatively in the transition from a native-like intermediate to the native state. Nondenaturing PAGE and RNase T1 digestion showed that base pairs form less homogeneously in the mutant RNAs during the transition from the unfolded state to the intermediate. Thus, tertiary interactions between helices bias the ensemble of secondary structures toward native-like conformations. Time-resolved hydroxyl radical footprinting showed that the wild-type ribozyme folds completely within 5-20 ms. By contrast, only 40-60% of a tetraloop mutant ribozyme folds in 30-40 ms, with the remainder folding in 30-200 s via nonnative intermediates. Therefore, destabilization of tetraloop-receptor docking introduces an alternate folding pathway in the otherwise smooth energy landscape of the wild-type ribozyme. Our results show that stable tertiary structure increases the flux through folding pathways that lead directly and rapidly to the native structure.
机译:RNA必须折叠成独特的三维结构才能在细胞中发挥功能,但是尚不清楚每个多核苷酸如何找到其天然结构。为了研究三级结构的稳定性是否决定了RNA折叠的速度和准确性,定点诱变干扰了四环与其受体在细菌I类核酶中的对接。四环或其受体的破坏使整个核酶的三级相互作用失去稳定性,为2-3 kcal / mol,这表明三级相互作用是在从天然样中间体到天然状态的过渡过程中协同形成的。非变性PAGE和RNase T1消化显示,在从未折叠状态过渡到中间体的过程中,突变对RNA中碱基对的形成较不均匀。因此,螺旋之间的三级相互作用使二级结构的整体偏向于天然结构。时间分辨的羟基自由基足迹表明,野生型核酶在5-20毫秒内完全折叠。相比之下,四环突变体核酶中只有40-60%在30-40 ms内折叠,其余通过非天然中间体在30-200 s内折叠。因此,不稳定的四环受体对接会在野生型核酶原本较为平稳的能量环境中引入另一种折叠途径。我们的结果表明,稳定的三级结构通过折叠路径增加通量,该折叠路径直接且迅速地导致天然结构。

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