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Multiscale Ensemble Modeling of Intrinsically Disordered Proteins: p53 N-Terminal Domain

机译:固有紊乱蛋白质的多尺度集合建模:p53 N末端结构域

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摘要

Intrinsically disordered proteins (IDPs) are ubiquitous and play key roles in transcriptional regulations and other cellular processes. To characterize diverse structural ensembles of IDPs, combinations of NMR and computational modeling showed some promise, but they need further improvements. Here, for accurate and efficient modeling of IDPs, we propose a systematic multiscale computational method. We first perform all-atom replica-exchange molecular dynamics (MD) simulations of a few fragments selected from a target IDP. These results together with generic knowledge-based local potentials are fed into the iterative Boltzmann inversion method to obtain an accurate coarse-grained potential. Then coarse-grained MD simulations provide the IDP ensemble. We tested the new method for the disordered N-terminal domain of p53 showing that the method reproduced the residual dipolar coupling and x-ray scattering profile very accurately. Further local structure analyses revealed that, guided by all-atom MD ensemble of fragments, the p53 N-terminal domain ensemble was biased to kinked structures in the AD1 region and biased to extended conformers in a proline-rich region and these biases contributed to improvement of the reproduction of the experiments.
机译:固有的无序蛋白(IDP)普遍存在,并在转录调控和其他细胞过程中发挥关键作用。为了表征IDP的各种结构整体,NMR和计算模型的组合显示出一定的前景,但还需要进一步的改进。在此,为准确有效地对IDP建模,我们提出了一种系统的多尺度计算方法。我们首先对从目标IDP中选择的几个片段进行全原子复制-交换分子动力学(MD)模拟。这些结果与基于通用知识的局部势一起被输入到迭代Boltzmann反演方法中,以获得准确的粗粒度势。然后,粗粒度的MD模拟提供了IDP集成。我们针对p53的无序N末端结构域测试了新方法,结果表明该方法非常准确地重现了残留的偶极耦合和x射线散射图。进一步的局部结构分析表明,在片段的全原子MD集成的指导下,p53 N末端域集成偏向于AD1区的纽结结构,偏向于脯氨酸丰富的区域中的扩展构象异构体,这些偏向有助于改善实验的复制。

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