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Structural Dynamics as a Contributor to Error-prone Replication by an RNA-dependent RNA Polymerase

机译:结构动力学作为RNA依赖的RNA聚合酶易错复制的贡献者

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摘要

RNA viruses encoding high- or low-fidelity RNA-dependent RNA polymerases (RdRp) are attenuated. The ability to predict residues of the RdRp required for faithful incorporation of nucleotides represents an essential step in any pipeline intended to exploit perturbed fidelity as the basis for rational design of vaccine candidates. We used x-ray crystallography, molecular dynamics simulations, NMR spectroscopy, and pre-steady-state kinetics to compare a mutator (H273R) RdRp from poliovirus to the wild-type (WT) enzyme. We show that the nucleotide-binding site toggles between the nucleotide binding-occluded and nucleotide binding-competent states. The conformational dynamics between these states were enhanced by binding to primed template RNA. For the WT, the occluded conformation was favored; for H273R, the competent conformation was favored. The resonance for Met-187 in our NMR spectra reported on the ability of the enzyme to check the correctness of the bound nucleotide. Kinetic experiments were consistent with the conformational dynamics contributing to the established pre-incorporation conformational change and fidelity checkpoint. For H273R, residues comprising the active site spent more time in the catalytically competent conformation and were more positively correlated than the WT. We propose that by linking the equilibrium between the binding-occluded and binding-competent conformations of the nucleotide-binding pocket and other active-site dynamics to the correctness of the bound nucleotide, faithful nucleotide incorporation is achieved. These studies underscore the need to apply multiple biophysical and biochemical approaches to the elucidation of the physical basis for polymerase fidelity.
机译:编码高或低保真RNA依赖性RNA聚合酶(RdRp)的RNA病毒被减毒。预测忠实地掺入核苷酸所需的RdRp残基的能力代表了旨在利用扰动的保真度作为合理设计候选疫苗的基础的任何管道中的重要步骤。我们使用了X射线晶体学,分子动力学模拟,NMR光谱和稳态前动力学来比较脊髓灰质炎病毒的突变体(H273R)RdRp和野生型(WT)酶。我们表明,核苷酸结合位点在核苷酸结合-封闭状态和核苷酸结合能力状态之间切换。这些状态之间的构象动力学通过结合至引发的模板RNA而得以增强。对于WT来说,封闭的构象是有利的。对于H273R,胜任构型受到青睐。在我们的NMR光谱中,Met-187的共振表明了该酶检查结合核苷酸的正确性的能力。动力学实验与构象动力学一致,该构象动力学有助于建立的掺入前构象变化和保真度检查点。对于H273R,与WT相比,包含活性位点的残基在催化感受态构象上花费的时间更多,并且正相关性更高。我们提出,通过将核苷酸结合口袋的结合被闭和结合能的构象之间的平衡与其他活性位点动力学连接到结合核苷酸的正确性上,可以实现忠实的核苷酸掺入。这些研究强调需要应用多种生物物理和生化方法来阐明聚合酶保真度的物理基础。

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