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具有中等旋转各向异性的蛋白质的整体和局部动力学表征:区分蛋白质G的B3结构域中的构象交换和各向异性扩散。

Characterization of the overall and local dynamics of a protein with intermediate rotational anisotropy: Differentiating between conformational exchange and anisotropic diffusion in the B3 domain of protein G.

作者信息

Hall Jennifer B, Fushman David

机构信息

Department of Chemistry and Biochemistry, Center for Biomolecular Structure and Organization, University of Maryland, College Park, MD 20742, U.S.A.

出版信息

J Biomol NMR. 2003 Nov;27(3):261-75. doi: 10.1023/a:1025467918856.

Abstract

Because the overall tumbling provides a major contribution to protein spectral densities measured in solution, the choice of a proper model for this motion is critical for accurate analysis of protein dynamics. Here we study the overall and backbone dynamics of the B3 domain of protein G using (15)N relaxation measurements and show that the picture of local motions is markedly dependent on the model of overall tumbling. The main difference is in the interpretation of the elevated R(2) values in the alpha-helix: the isotropic model results in conformational exchange throughout the entire helix, whereas no exchange is predicted by anisotropic models that place the longitudinal axis of diffusion tensor almost parallel to the helix axis. Due to small size (fast tumbling) of the protein, the T(1) values have low sensitivity to NH bond orientation. The diffusion tensor derived from orientation dependence of R(2)/R(1) is anisotropic (D(par)/D(perp)=1.4), with a small rhombic component. In order to distinguish the correct picture of motion, we apply model-independent methods that are sensitive to conformational exchange and do not require knowledge of protein structure or assumptions about its dynamics. A comparison of the CSA/dipolar cross-correlation rate constants with (15)N relaxation rates and the estimation of R(ex) terms from relaxation data at 9.4 and 14.1 T indicate no conformational exchange in the helix, in support of the anisotropic models. The experimentally derived diffusion tensor is in excellent agreement with theoretical predictions from hydrodynamic calculations; a detailed comparison with various hydrodynamic models revealed optimal parameters for hydrodynamic calculations.

摘要

由于整体翻滚对溶液中测量的蛋白质光谱密度有主要贡献,因此选择合适的该运动模型对于准确分析蛋白质动力学至关重要。在这里,我们使用(15)N弛豫测量研究了蛋白G的B3结构域的整体和主链动力学,并表明局部运动的情况明显取决于整体翻滚模型。主要差异在于对α-螺旋中升高的R(2)值的解释:各向同性模型导致整个螺旋中的构象交换,而将扩散张量的纵轴几乎与螺旋轴平行放置的各向异性模型预测没有交换。由于蛋白质尺寸小(翻滚快),T(1)值对NH键取向的敏感性较低。从R(2)/R(1)的取向依赖性导出的扩散张量是各向异性的(D(par)/D(perp)=1.4),具有小的菱形分量。为了区分正确的运动情况,我们应用对构象交换敏感且不需要蛋白质结构知识或其动力学假设的与模型无关的方法。CSA/偶极交叉相关速率常数与(15)N弛豫速率的比较以及从9.4和14.1 T的弛豫数据估计R(ex)项表明螺旋中没有构象交换,支持各向异性模型。实验得出的扩散张量与流体动力学计算的理论预测非常吻合;与各种流体动力学模型的详细比较揭示了流体动力学计算的最佳参数。

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