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部分取向体系中基于N-HN偶极耦合的蛋白质主链动力学:结构噪声存在下运动模型的比较

Protein backbone dynamics from N-HN dipolar couplings in partially aligned systems: a comparison of motional models in the presence of structural noise.

作者信息

Bouvignies Guillaume, Bernadó Pau, Blackledge Martin

机构信息

Institut de Biologie Structurale Jean-Pierre Ebel, U.J.F.-C.N.R.S.-C.E.A., 41 rue Jules Horowitz, 38027 Grenoble Cedex, France.

出版信息

J Magn Reson. 2005 Apr;173(2):328-38. doi: 10.1016/j.jmr.2005.01.001.

Abstract

Residual dipolar couplings (RDCs) provide excellent probes for the exploration of dynamics in biomolecules on biologically relevant time-scales. Applying geometric motional models in combination with high-resolution structures to fit experimental RDCs allows the extraction of local dynamic amplitudes of peptide planes in proteins using only a limited number of data points. Here we compare the behaviour of three simple and intuitive dynamic modes: the Gaussian axial fluctuation model (1D-GAF), the two-site jump model, and a model supposing axially symmetric motion about a mean orientation. The requirement of a structural model makes this kind of methodology potentially very sensitive to structural imprecision. Numerical simulations of RDC dynamic averaging under different regimes show that the anisotropic motional models are more geometrically stringent than the axially symmetric model making it more difficult to alias structural noise as artificial dynamic amplitudes. Indeed, it appears that the model extracts accurate motional amplitudes even in the presence of significant structural error. We also show that a two-site jump model, also assuming the (alpha)C(i-1)-(alpha)C(i) as rotation axis, can only be distinguished from the previously developed GAF model beyond amplitude/jumps of around 40 degrees. The importance of appropriate estimation of the molecular alignment tensor for determination of local motional amplitudes is also illustrated here. We demonstrate a systematic scaling of extracted dynamic amplitudes if a static structure is assumed when determining the alignment tensor from dynamically averaged RDCs. As an example an artificial increase of 0.14 (0.85 compared to the expected 0.71) is observed in the extracted S2 if a pervasive 20 degrees GAF motion is present that is ignored in the tensor determination. Finally we apply a combined approach using the most appropriate motional model, to complete the analysis of dynamic motions from protein G.

摘要

剩余偶极耦合(RDCs)为探索生物分子在生物学相关时间尺度上的动力学提供了极佳的探针。将几何运动模型与高分辨率结构相结合以拟合实验RDCs,仅使用有限数量的数据点就能提取蛋白质中肽平面的局部动态幅度。在此,我们比较三种简单直观的动态模式的行为:高斯轴向涨落模型(1D - GAF)、两点跳跃模型以及假设围绕平均取向进行轴对称运动的模型。结构模型的要求使得这种方法可能对结构不精确非常敏感。在不同条件下对RDC动态平均的数值模拟表明,各向异性运动模型在几何上比轴对称模型更严格,使得将结构噪声误判为人工动态幅度的难度更大。实际上,即使存在显著的结构误差,该模型似乎也能提取准确的运动幅度。我们还表明,同样假设(α)C(i - 1) - (α)C(i)为旋转轴的两点跳跃模型,只有在幅度/跳跃约40度以上时才能与先前开发的GAF模型区分开来。这里还说明了适当估计分子排列张量对于确定局部运动幅度的重要性。我们证明,如果在从动态平均的RDCs确定排列张量时假设一个静态结构,提取的动态幅度会有系统的缩放。例如,如果存在一个普遍的20度GAF运动而在张量确定中被忽略,在提取的S2中会观察到人工增加0.14(与预期的0.71相比为0.85)。最后,我们应用一种结合最合适运动模型的方法来完成对来自蛋白G的动态运动的分析。

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