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Protein proton–proton dynamics from amide proton spin flip rates

机译:酰胺质子自旋翻转速率产生的蛋白质质子-质子动力学

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Residue-specific amide proton spin-flip rates K were measured for peptide-free and peptide-bound calmodulin. K approximates the sum of NOE build-up rates between the amide proton and all other protons. This work outlines the theory of multi-proton relaxation, cross relaxation and cross correlation, and how to approximate it with a simple model based on a variable number of equidistant protons. This model is used to extract the sums of K-rates from the experimental data. Error in K is estimated using bootstrap methodology. We define a parameter Q as the ratio of experimental K-rates to theoretical K-rates, where the theoretical K-rates are computed from atomic coordinates. Q is 1 in the case of no local motion, but decreases to values as low as 0.5 with increasing domination of sidechain protons of the same residue to the amide proton flips. This establishes Q as a monotonous measure of local dynamics of the proton network surrounding the amide protons. The method is applied to the study of proton dynamics in Ca2+-saturated calmodulin, both free in solution and bound to smMLCK peptide. The mean Q is 0.81 ± 0.02 for free calmodulin and 0.88 ± 0.02 for peptide-bound calmodulin. This novel methodology thus reveals the presence of significant interproton disorder in this protein, while the increase in Q indicates rigidification of the proton network upon peptide binding, confirming the known high entropic cost of this process.
机译:测量了无肽和结合肽的钙调蛋白的残基特异性酰胺质子自旋翻转率K。 K近似为酰胺质子和所有其他质子之间的NOE积累速率之和。这项工作概述了多质子弛豫,交叉弛豫和互相关的理论,以及如何使用基于可变数目的等距质子的简单模型对其进行近似。该模型用于从实验数据中提取K速率之和。使用引导程序方法估计K的误差。我们将参数Q定义为实验K速率与理论K速率的比率,其中理论K速率是根据原子坐标计算得出的。在没有局部运动的情况下,Q为1,但是随着酰胺残基的侧链质子对酰胺质子翻转的增加,Q值降低至0.5。这将Q确定为酰胺质子周围质子网络局部动力学的单调度量。该方法用于Ca 2 + 饱和钙调蛋白中质子动力学的研究,该溶液在溶液中游离并与smMLCK肽结合。游离钙调蛋白的平均Q为0.81±0.02,与肽结合的钙调蛋白的平均Q为0.88±0.02。因此,这种新颖的方法揭示了该蛋白质中存在明显的质子间紊乱,而Q值的增加表明在肽结合后质子网络硬化,从而确认了该过程的已知高熵成本。

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