首页> 外文期刊>Biophysical Chemistry: An International Journal Devoted to the Physical Chemistry of Biological Phenomena >Protein effective rotational correlation times from translational self-diffusion coefficients measured by PFG-NMR.
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Protein effective rotational correlation times from translational self-diffusion coefficients measured by PFG-NMR.

机译:由PFG-NMR测定的翻译自扩散系数得出的蛋白质有效旋转相关时间。

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摘要

Molecular rotational correlation times are of interest for many studies carried out in solution, including characterization of biomolecular structure and interactions. Here we have evaluated the estimates of protein effective rotational correlation times from their translational self-diffusion coefficients measured by pulsed-field gradient NMR against correlation times determined from both collective and residue-specific (15)N relaxation analyses and those derived from 3D structure-based hydrodynamic calculations. The results show that, provided the protein diffusive behavior is coherent with the Debye-Stokes-Einstein model, translational diffusion coefficients provide rapid estimates with reasonable accuracy of their effective rotational correlation times. Effective rotational correlation times estimated from translational diffusion coefficients may be particularly beneficial in cases where i) isotopically labelled material is not available, ii) collective backbone (15)N relaxation rates are difficultto interpret because of the presence of flexible termini or loops, or iii) a full relaxation analysis is practically difficult because of limited sensitivity owing to low protein concentration, high molecular mass or low temperatures.
机译:分子旋转相关时间是许多在溶液中进行的研究所关注的时间,包括生物分子结构和相互作用的表征。在这里,我们已经评估了蛋白质有效旋转相关时间的估算值,这些值是通过脉冲场梯度NMR测量的转化自扩散系数与从集体和残基特异性(15)N弛豫分析以及从3D结构推导的相关时间确定的相关时间得出的。基础的水动力计算。结果表明,只要蛋白质的扩散行为与Debye-Stokes-Einstein模型一致,则平移扩散系数就可以有效地快速估计其有效旋转相关时间。在以下情况下,根据平移扩散系数估算的有效旋转相关时间可能特别有益:i)没有同位素标记的材料; ii)由于存在柔性末端或环而难以解释集体骨架(15)N弛豫率,或iii )由于蛋白质浓度低,分子量高或温度低导致灵敏度有限,因此很难进行全面的弛豫分析。

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