From the Department of Chemistry, University of Colorado, Denver, Colorado 80204.
Department of Mathematics, University of Colorado, Denver, Colorado 80204.
J Biol Chem. 2019 Apr 12;294(15):5840-5853. doi: 10.1074/jbc.RA118.006559. Epub 2019 Feb 8.
Amyloid fibril deposits observed in Alzheimer's disease comprise amyloid-β (Aβ) protein possessing a structured hydrophobic core and a disordered N-terminal domain (residues 1-16). The internal flexibility of the disordered domain is likely essential for Aβ aggregation. Here, we used H static solid-state NMR methods to probe the dynamics of selected side chains of the N-terminal domain of Aβ fibrils. Line shape and relaxation data suggested a two-state model in which the domain's free state undergoes a diffusive motion that is quenched in the bound state, likely because of transient interactions with the structured C-terminal domain. At 37 °C, we observed freezing of the dynamics progressively along the Aβ sequence, with the fraction of the bound state increasing and the rate of diffusion decreasing. We also found that without solvation, the diffusive motion is quenched. The solvent acted as a plasticizer reminiscent of its role in the onset of global dynamics in globular proteins. As the temperature was lowered, the fraction of the bound state exhibited sigmoidal behavior. The midpoint of the freezing curve coincided with the bulk solvent freezing for the N-terminal residues and increased further along the sequence. Using H measurements, we determined the conformational exchange rate constant between the free and bound states under physiological conditions. Zinc-induced aggregation leads to the enhancement of the dynamics, manifested by the faster conformational exchange, faster diffusion, and lower freezing-curve midpoints.
在阿尔茨海默病中观察到的淀粉样纤维沉积物包含具有结构化疏水性核心和无序 N 端结构域(残基 1-16)的淀粉样β(Aβ)蛋白。无序结构域的内部灵活性可能对 Aβ聚集至关重要。在这里,我们使用 H 静态固态 NMR 方法来探测 Aβ纤维中 N 端结构域选定侧链的动力学。线形和弛豫数据表明存在两种状态模型,其中该结构域的自由状态经历扩散运动,在结合状态下被猝灭,可能是由于与结构化 C 端结构域的瞬时相互作用。在 37°C 下,我们观察到随着 Aβ 序列的进行,动力学逐渐冻结,结合状态的分数增加,扩散速率降低。我们还发现,如果没有溶剂化,扩散运动就会被猝灭。溶剂起到了增塑剂的作用,类似于其在球状蛋白中引发整体动力学的作用。随着温度的降低,结合状态的分数表现出 S 形行为。冻结曲线的中点与 N 端残基的主体溶剂冻结重合,并沿着序列进一步增加。使用 H 测量,我们确定了在生理条件下自由和结合状态之间的构象交换速率常数。锌诱导的聚集导致动力学增强,表现为更快的构象交换、更快的扩散和更低的冻结曲线中点。