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Internal protein dynamics on ps to ls timescales as studied by multi-frequency ~(15)N solid-state NMR relaxation

机译:通过多频〜(15)N固态NMR弛豫研究在ps到ls时标上的内部蛋白质动力学

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A comprehensive analysis of the dynamics of the SH3 domain of chicken alpha-spectrin is presented, based upon ~(15)N T_1 and on- and off-resonance T_(1q) relaxation times obtained on deuterated samples with a partial back-exchange of labile protons under a variety of the experimental conditions, taking explicitly into account the dipolar order parameters calculated from ~(15)N-~1H dipole- dipole couplings. It is demonstrated that such a multi-frequency approach enables access to motional correlation times spanning about 6 orders of magnitude. We asses the validity of different motional models based upon orientation autocorrelation functions with a different number of motional components. We find that for many residues a "two components" model is not sufficient for a good description of the data and more complicated fitting models must be considered. We show that slow motions with correlation times on the order of 1-10 μs can be determined reliably in spite of rather low apparent amplitudes (below 1 %), and demonstrate that the distribution of the protein backbone mobility along the time scale axis is pronouncedly non-uniform and non-monotonic: two domains of fast (τ<10~(-10) s) and intermediate (10~(-9) s<τ<10~(-7) s) motions are separated by a gap of one order of magnitude in time with almost no motions. For slower motions (τ<10~(-6) s) we observe a sharp ~1 order of magnitude decrease of the apparent motional amplitudes. Such a distribution obviously reflects different nature of backbone motions on different time scales, where the slow end may be attributed to weakly populated "excited states." Surprisingly, our data reveal no clearly evident correlations between secondary structure of the protein and motional parameters. We also could not notice any unambiguous correlations between motions in different time scales along the protein backbone emphasizing the importance of the inter-residue interactions and the cooperative nature of protein dynamics.
机译:基于〜(15)N T_1以及氘代样品的氘代样品获得的开和关共振T_(1q)弛豫时间,对鸡α-血影蛋白SH3结构域的动力学进行了全面分析。显着考虑从〜(15)N-〜1H偶极-偶极耦合计算出的偶极级参数,可以在各种实验条件下获得不稳定的质子。证明了这种多频率方法使得能够访问跨越大约6个数量级的运动相关时间。我们基于具有不同数量运动分量的方向自相关函数来评估不同运动模型的有效性。我们发现,对于许多残基,“两个成分”模型不足以很好地描述数据,必须考虑更复杂的拟合模型。我们显示,尽管表观振幅相当低(低于1%),但可以可靠地确定相关时间在1-10μs量级的慢动作,并且证明了蛋白质骨架迁移率沿时间轴的分布非常明显非均匀和非单调:快速运动(τ<10〜(-10)s)和中间运动(10〜(-9)s <τ<10〜(-7)s)的两个域之间被间隙隔开时间几乎没有运动的一个数量级。对于较慢的运动(τ<10〜(-6)s),我们观察到了明显的运动幅度的〜1个数量级的急剧下降。这样的分布显然反映了不同时间尺度上骨干运动的不同性质,其中迟端可能归因于人口稀少的“激发态”。出人意料的是,我们的数据显示蛋白质的二级结构与运动参数之间没有明显明显的相关性。我们还没有注意到沿着蛋白质主链在不同时间尺度上的运动之间的任何明确关联,强调残基间相互作用的重要性和蛋白质动力学的协同性质。

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